SlideShare ist ein Scribd-Unternehmen logo
1 von 8
Downloaden Sie, um offline zu lesen
IOSR Journal of Electrical and Electronics Engineering (IOSR-JEEE)
e-ISSN: 2278-1676,p-ISSN: 2320-3331, Volume 11, Issue 1 Ver. I (Jan – Feb. 2016), PP 01-08
www.iosrjournals.org
DOI: 10.9790/1676-11110108 www.iosrjournals.org 1 | Page
Modeling and Implementation of Closed Loop PI Controller for
3 Phase to 3 Phase Power Conversion Using Matrix Converter
1
B.Muthuvel, 2
Dr.T.S.Anandhi, 3
Dr.P.Sivagnanam, 4
M.Janani raj
1
Department of EEE, AKT Memorial college of Engineering and Technology, Villupuram, India.
2
Electronics & Instrumentation Engineering, Annamalai University, Annamalai Nagar, India.
3
Principal, Krishnasamy college of Engineering and Technology, Cuddalore, India.
4
Department of EEE, Vivekananda Polytechnic College, Cuddalore, India.
Abstract: This paper proposes a simulation of modeling and implementation of PI controller for a 3 phase to 3
phase power conversion using matrix converter. Closed loop PI controller is used to achieve real time control
for 3 phase to 3 phase matrix converter. The entire matrix converter circuits are developed by Mathematical
model so as to achieve less computational time and performances of the PI controller are evaluated using
MATLAB/SIMULINK for RL Load. The mathematical expressions of the three phase matrix converter are
implemented by using simulink block set. The duty cycles of the matrix converter bidirectional switches are
calculated using modified venturini algorithm for maximum voltage transfer ratio.
Key Words: 3 phase to 3 phase converter, AC to AC conversion, closed loop Matrix converter, Matrix
converter, PI Controller.
I. Introduction
The matrix converter (MC) is a single-stage power converter, capable of feeding an m-phase load
from a n-phase source without using energy storage components. It is a direct frequency conversion device that
generates variable magnitude variable frequency output voltage from the ac line. It has high power quality and it
is fully regenerative.. Recently, direct ac/ac converters have been studied in an attempt to realize high
efficiencies, long lifetime, size reduction, and unity power factors. The benefits of using direct ac/ac converters
are even greater for medium voltage converters as direct ac/ac converters do not require electrolytic capacitors,
which account for most of the volume and cost of medium-voltage converters. The matrix converter presents a
promising topology that needs to overcome certain barriers like complexity of modulation and control
techniques, protection systems etc, in order to gain a foothold in the industry. Traditionally, the MC has Matrix
converters have some advantages when compared to conventional back to back Pulse width modulation voltage-
source converters. The MC may be considered more reliable and is smaller because the bulky dc capacitor is
eliminated from the topology. Therefore, when MCs are used in ac–ac power conversion, the size and weight of
the whole generation system is reduced. To interface a MC-based generation system to an unbalanced three-
phase stand-alone load, a four-leg MC is required to provide an electrical path for the zero-sequence load
current. Hence the application of resonant controllers to four-leg matrix converters feeding unbalanced or
nonlinear loads has been proposed [1]. A new technique improved space vector modulation using amplitude
coefficient on a capacitor-clamped multilevel matrix converter. The MMC utilizes a multilevel structure on a
conventional matrix converter, which allows direct ac-ac conversion without large energy store elements has
been introduced [2].For a common mode voltage reduction and the power quality of matrix converters for a low-
voltage transfer ratio of less than 0.5, a direct space vector modulation method has been focused [3].
Fig.1. Basic block diagram of 3pase to 3 phase Matrix converter
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 2 | Page
For various industrial adjustable speed ac drives and applications, various analysis and mathematical
model is introduced in matrix converter. By varying the Modulation Index (MI), the outputs of the matrix
converter are controlled and in ac drives, speeds of the drive were controlled. To reduce the computational time
and low memory requirement, a mathematical model has been developed [4]-[11].To achieve real time control
with quick speed and fast response, new designs of controllers are needed. PI controllers are the one to sense the
output continuously and correct the output at the instant if any disturbance occurred.
In this paper, PI controllers are designed and implemented for the 3 phase to 3 phase matrix converter
in closed loop configuration and the power circuit in closed loop are implemented by the mathematical
modeling along with the PI controllers. The duty cycle calculation is taken into account for Maximum voltage
transfer ratios and the mathematical model is realized with the RL load. The entire power circuit is modeled
with MATLAB/SIMULINK. Implementation of PI controller in mathematical modeling includes the modeling
of power circuit, switching algorithm, load and the controller. Merits of Mathematical model over conventional
power circuit are less computation time and low memory requirement. The proposed model is very simple,
flexible and can be accommodated with any type of load. Fig. 1 refers the Basic block diagram of the proposed
3pase to 3 phase Matrix converter.
II. Matrix Converter
The Matrix converter (MC) is a single stage direct ac to ac converter, which has an array of m x n bi-
directional switches that can directly connect m phase voltage source into n phase load. A 3 phase matrix
converter consists of 3x3 switches arranged in matrix form. The arrangement of bi-directional switches is such
that any of the input phases R, Y, B is connected to any of the output phases r, y, b at any instant. The average
output voltage with desired frequency and amplitude can be controlled by the bi-directional switches. The bi-
directional 3x3 switches (29
) give 512 combinations of the switching states. But only 27 switching combinations
are allowed to produce the output line voltages and input phase currents.
The attractive characteristics of a Matrix converter are as follows:
 Controllable input power factor
 Bidirectional energy flow capability
 Compact design
 Sinusoidal input and output waveforms with minimal higher order harmonics and no sub harmonics;
 Minimal energy storage requirements
 Long life due to absence of a bulky electrolytic capacitor
 Unity input power factor at the power supply side
Fig.2. circuit scheme of 3 phase to 3 phase matrix converter
Limitations of Matrix converter are
 The voltage transfer ratio limitation has a maximum value of 0.866
 Sensitive to the power source distortion due to the direct connection between input and output sides.
Input filter is needed in order to eliminate the harmonic components of the input current and reduce the
input voltage distortion supplied to the Matrix Converter as shown in fig.2.
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 3 | Page
III. Control Algorithm
When 3 phase to 3 phase converter operated with 9 bi-directional switches, the following two basic
rules have to be satisfied [10].
 Two or three input lines should not be connected to the same output line – to avoid short circuit
 At least one of the switches in each phase should be connected to the output – to avoid open circuit.
The switching function of single switch as
SKj = {
1, switch SKj closed
0, switch SKj opened
(1)
Where, K = {r, y, b), j = {R, Y, B}
The above constraints can be expressed by
Srj + Syj + Sbj = 1, j = {R, Y, B} (2)
With these restrictions, the 3 x 3 matrix converter has 27 possible switching states.
The input or source voltage vector of the 3 phase to 3 phase Matrix converter is
Vi =
𝑉𝑅
𝑉𝑌
𝑉𝐵
=
𝑉𝑖𝑚 cos(𝜔𝑖 𝑡)
𝑉𝑖𝑚 cos⁡(𝜔𝑖 𝑡 +
2𝜋
3
)
𝑉𝑖𝑚 cos⁡(𝜔𝑖 𝑡 +
4𝜋
3
)
(3)
The output voltage vector of the 3 phase to 3 phase Matrix converter is
Vo =
𝑉𝑟
𝑉𝑦
𝑉𝑏
=
𝑉𝑜𝑚 cos(𝜔𝑜 𝑡)
𝑉𝑜𝑚 cos⁡(𝜔𝑜 𝑡 +
2𝜋
3
)
𝑉𝑜𝑚 cos⁡(𝜔𝑜 𝑡 +
4𝜋
3
)
(4)
The input or source current vector of the 3 phase to 3 phase Matrix converter is
Ii =
𝐼 𝑅
𝐼 𝑌
𝐼 𝐵
=
𝐼𝑖𝑚 cos(𝜔𝑖 𝑡)
𝐼𝑖𝑚 cos⁡(𝜔𝑖 𝑡 +
2𝜋
3
)
𝐼𝑖𝑚 cos⁡(𝜔𝑖 𝑡 +
4𝜋
3
)
(5)
The output current vector of the 3 phase to 3 phase Matrix converter is
Io =
𝐼𝑟
𝐼𝑦
𝐼𝑏
=
𝐼𝑜𝑚 cos(𝜔𝑜 𝑡)
𝐼𝑜𝑚 cos⁡(𝜔𝑜 𝑡 +
2𝜋
3
)
𝐼𝑜𝑚 cos⁡(𝜔𝑜 𝑡 +
4𝜋
3
)
(6)
Where, 𝜔𝑖 - frequency of input voltage and
𝜔𝑜 - frequency of output voltage
The relationship between output and input voltage is given as 𝑉𝑜 (t) = M (t). 𝑉𝑖(t) (7)
Where 𝑀𝑡 is the transfer Matrix and is given by
M (t) =
𝑀 𝑅𝑟 𝑀 𝑌𝑟 𝑀 𝐵𝑟
𝑀 𝑅𝑦 𝑀 𝑌𝑦 𝑀 𝐵𝑦
𝑀 𝑅𝑏 𝑀 𝑌𝑏 𝑀 𝐵𝑏
(8)
where,
MRr = tRr / Ts, duty cycle switch SRr, Ts is the sampling period.
The input current is given by I in = MT
Io (9)
Duty cycle must satisfy the following condition in order to avoid short circuit on the input side.
𝑀 𝑅𝑟 + 𝑀 𝑌𝑟 + 𝑀 𝐵𝑟 = 1 (10)
𝑀 𝑅𝑦 + 𝑀 𝑌𝑦 + 𝑀 𝐵𝑦 = 1 (11)
𝑀 𝑅𝑏 + 𝑀 𝑌𝑏 + 𝑀 𝐵𝑏 = 1 (12)
The above condition is fulfilled by calculation of duty cycle using modified venturini algorithm. In
venturini switching algorithm, the maximum voltage transfer ratio is restricted to 0.5.This limit can be overcome
by using modified venturini algorithm [16]. The maximum possible output voltage can be achieved by injecting
third harmonics of the input and output frequencies into the output waveform [11]. This will increase the
available output voltage range to 0.75 of the input when third harmonics has a peak value of Vi/4. Further
increasing of the transfer ratio can be achieved by subtracting a third harmonic at the output frequency from all
target output voltages. Hence the maximum transfer ratio of 0.75/0.866 = 0.866 of Vi when this third harmonic
has a peak value of Vo/6.
Therefore the output voltage becomes
𝑉𝑜𝛾 =𝑞𝑉𝑖𝑚 𝑐𝑜𝑠(𝜔𝑜 𝑡 + 𝜓𝛾 )–
𝑞
6
𝑉𝑖𝑚 𝑐𝑜𝑠(3𝜔𝑜 𝑡)+
1
4𝑞 𝑚
𝑉𝑖𝑚 (3𝜔𝑖 𝑡) (13)
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 4 | Page
Where, 𝜓𝛾 = 0, 2π/3, 4π/3 corresponding to the output phase r, y, b [11], [15], [16].
IV. Modeling of Matrix Converter
The actual MATLAB/SIMULINK model of 3 phase to 3 phase Matrix converter is shown in fig.3. it
comprises normally 4 sections.
4.1 Modeling of Control Algorithm
Fig.3. Mathematical Modeling of 3 phase to 3 phase Matrix converter.
The required voltage transfer ratio (q), output frequency (fo) and switching frequency (fs) are the inputs
required for calculation of duty cycle matrix M. the duty cycle calculations for voltage transfer ratio of 0.5 and
0.866 are realized in the form of m-file in Matlab. Duty cycles for 0.5 & 0.866 voltage transfer ratio are;
𝑀 𝑅𝑟 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (14)
𝑀 𝑌𝑟 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
2𝜋
3
)) (15)
𝑀 𝐵𝑟 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
4𝜋
3
)) (16)
𝑀 𝑅𝑦 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
4𝜋
3
)) (17)
𝑀 𝑌𝑦 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (18)
𝑀 𝐵𝑦 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
2𝜋
3
)) (19)
𝑀 𝑅𝑏 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
2𝜋
3
)) (20)
𝑀 𝑌𝑏 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 −
4𝜋
3
)) (21)
𝑀 𝐵𝑏 =
1
3
(1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (22)
Where, 𝜔 𝑚 = 𝜔𝑜 − 𝜔𝑖 = modulation frequency,
θ = relative phase of output, q =voltage transfer ratio
Switching time for voltage transfer ratio of 0.866 are;
𝑇𝛽𝛾 =
𝑇𝑠
3
1 +
2𝑉𝑜 𝛾 𝑉 𝑖𝛽
𝑉𝑖𝑚
2 +
2 𝑞
3𝑞 𝑚
sin 𝜔𝑖 𝑡 + 𝜓 𝛽 sin(3𝜔𝑖 𝑡) (23)
Where, 𝜓 𝛽 = 0, 2π/3, 4π/3 corresponding to the input phases R, Y, B, 𝑞 𝑚 = maximum voltage transfer ratio,
q = required voltage ratio, 𝑉𝑖𝑚 =input voltage vector magnitude, 𝑇𝑠 = sampling period.
4.2 Modeling of power circuit
The modeling of power circuit is derived from basic output voltage equations [17], [18].
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 5 | Page
𝑉𝑟 (t) = 𝑀 𝑅𝑟 𝑉𝑅(t) + 𝑀 𝑌𝑟 𝑉𝑌(t) + 𝑀 𝐵𝑟 𝑉𝐵(t) (24)
𝑉𝑦 (t) = 𝑀 𝑅𝑦 𝑉𝑅(t) + 𝑀 𝑌𝑦 𝑉𝑌(t) + 𝑀 𝐵𝑦 𝑉𝐵(t) (25)
𝑉𝑏 (t) = 𝑀 𝑅𝑏 𝑉𝑅(t) + 𝑀 𝑌𝑏 𝑉𝑌(t) + 𝑀 𝐵𝑏 𝑉𝐵(t) (26)
Fig.4. Modeling block of power circuit of „r‟ phase in 3 phase to 3 phase Matrix converter.
Fig.4 shows the realization of modeling block of power circuit of „r‟ phase in 3 phase to 3 phase Matrix
converter. The switching pulses for the bi-directional switches are realized by comparing the duty cycles with a
saw tooth waveform having very high switching frequency
4.3 Modeling of Load
The transfer function of mathematical modeling of RL load is
𝐼(𝑆)
𝑉(𝑆)
=
1
𝐿𝑠+𝑅
(27)
4.4 Modeling of PI Controller
The proportional plus integral controller produces an output signal, u(t) consisting of two terms-one
proportional to input signal, e(t) and the other proportional to the integral of input signal, e(t). The PI controller
reduces the Steady state error. The PI controller model was developed using Simulink Blockset.
In PI controller, u(t) α [e(t) + ʃ e(t) dt] (28)
u(t) = Kp e(t) + Ki ʃ e(t) dt (29)
Where, Kp is the proportional gain = -ω1 sinθ /A1 and Ki is the integral constant or gain = cosθ / A1
Transfer function of PI Controller is Gc (s) = U(s)/E(s) = Kp + Ki/s (30)
V. Simulation Results and Discussion
The simulation of 3 phase to 3 phase Matrix converter for closed loop PI controller are carried out
using simulink blockset. In closed loop configuration, PI controller was realized as real time controller.
Simulations results are performed for a reference current of 7 Amps and Amplitude =325.26V and time
limit is 0.1 m.sec. The output is realized with 3 phase passive RL load for R= 10 Ω and L= 20 mH. The
reference current is set to 7 Amps. The output is again feedback to the input of the matrix converter through PI
controller to achieve the real time control. Fig. 5-7 shows the results of control waveform for all the 9 Bi-
directional Switches from „SRr‟ to „SBb
‟
( MRr to MBb) with „Iref‟=7 amps. Fig. 8 shows the Input waveform for
„Iref‟=7 amps and Amplitude =325.26V in „r‟ Phase. The Output Voltage and current waveforms in „r‟ Phase for
„Iref‟=7 amps as shown in Fig.9&10. The Output Voltage and current waveforms in „y‟ Phase for „Iref‟=7 amps as
shown in Fig.11&12. The Output Voltage and current waveforms in „b‟ Phase for „Iref‟=7 amps as shown in
Fig.13&14. Fig.15. shows the Simulation waveform for „THD‟ in „r‟ Phase. Fig.16 shows the. Simulation
waveform for reference Current „Iref‟=7 amps. Fig.17. shows the Average Output Voltage waveform for 3 phase
to 3 phase Matrix converter (for „r‟, „y‟, „b‟ Phases). Similarly, Fig.18 shows the Output Current waveform for 3
phase to 3 phase Matrix converter (for „r‟, „y‟, „b‟ Phases). The average output voltage is =325.26V and the
average output current is 7 Amps.
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 6 | Page
Fig.5. Duty cycle for MRr, MYr, MBr Phases.
Fig.6. Duty cycle for MYy, MRy, MBy Phases.
Fig.7. Duty cycle for MRb, MYb, MBb Phases.
Fig.8. Input waveform for „Iref‟=7 amps and Amplitude =325.26V in „r‟ Phase
Fig.9. Output Voltage waveform for „Iref‟=7 amps in „r‟ Phase.
Fig.10. Output Current waveform for „Iref‟=7 amps in „r‟ Phase.
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.2
0.25
0.3
0.35
0.4
0.45
0.5
0.55
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-0.2
-0.1
0
0.1
0.2
0.3
0.4
0.5
0.6
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.2
0.25
0.3
0.35
0.4
0.45
0.5
0.55
Time in m.SecAmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-0.2
-0.1
0
0.1
0.2
0.3
0.4
0.5
0.6
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-0.2
-0.1
0
0.1
0.2
0.3
0.4
0.5
0.6
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
0.2
0.25
0.3
0.35
0.4
0.45
0.5
0.55
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-400
-300
-200
-100
0
100
200
300
400
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-400
-300
-200
-100
0
100
200
300
400
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-8
-6
-4
-2
0
2
4
6
8
Time in m.Sec
CurrentinAmps
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 7 | Page
Fig.11. Output Voltage waveform for „Iref‟=7 amps in „y‟ Phase.
Fig.12. Output Current waveform for „Iref‟=7 amps in y„‟ Phase.
Fig.13. Output Voltage waveform for „„Iref‟=7 amps in „b‟ Phase.
Fig.14. Output Current waveform for „Iref‟=7 amps in „b‟ Phase.
Fig.15. Simulation waveform for „THD‟ in „r‟ Phase.
Fig.16. Simulation waveform for reference current „Iref‟=7 amps
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-400
-300
-200
-100
0
100
200
300
400
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-8
-6
-4
-2
0
2
4
6
8
Time in m.Sec
CurrentinAmps
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-400
-300
-200
-100
0
100
200
300
400
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-8
-6
-4
-2
0
2
4
6
8
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-3.5
-3
-2.5
-2
-1.5
-1
-0.5
0
0.5
x 10
17
Time in m.Sec
MagnitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
6
6.5
7
7.5
8
Time in m.Sec
CurrentinAmps
Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power…
DOI: 10.9790/1676-11110108 www.iosrjournals.org 8 | Page
Fig.17. Output Voltage waveform for 3 phase to 3 phase Matrix converter („r‟, „y‟, „b‟ Phases)
Fig.18. Output Current waveform for 3 phase to 3 phase Matrix converter („r‟, „y‟, „b‟ Phases)
VI. Conclusion
Simulation of mathematical modeling and implementation of closed loop PI controller for 3 phase to 3
phase power conversion using matrix converter has been presented in this paper. A mathematical model is
developed for Matrix converter using MATLAB/Simulink which is also utilized for closed loop PI controller
configuration. In closed loop configuration, a real time control has been achieved for PI controller with less
computational time. The output was realized by RL load and the simulation results are taken for maximum
voltage transfer ratio. The simulation output results are satisfactory and the future extension of this paper is
possible for closed loop Fuzzy logic control in three phase to „n‟ phase Matrix converter with various passive
loads and different voltage transfer ratio.
References
[1] Kiwoo Park, Kyo-Beum Lee and Frede Blaabjerg, “Improving output performance of a Z-source sparse matrix converter under
unbalanced input-voltage conditions”, IEEE Transactions on Power Electronics, Vol.27, No.4, April 2012.
[2] Xu Lie, Li Yongdong, Wang Kui, Jon C.Clare and Patrick W.Wheeler, “Research on the amplitude coefficient for multilevel matrix
converter space vector modulation”, IEEE Transactions on Power Electronics, Vol.27, No.8, August 2012.
[3] “Modeling and simulation of single-phase AC-AC matrix converter using SPWM”, Student conference on Research and
Development proceedings, Malaysia, 2002, pp. 286-289.
[4] B.Muthuvel, T.S.Anandhi, P.Sivagnanam and K.Ramash kumar, “Simulation of 3 Phase to 3 Phase Power Conversion Using Matrix
Converter with Maximum and Minimum Voltage Transfer Ratio”, International Journal of Engineering Research and applications
(IJERA) ISSN: 2248-9622, Vol. 5, Issue 11, (Part - 2) November 2015.
[5] Imayavaramban, K.Latha and G.Uma, Analysis of different schemes of matrix converter with maximum voltage conversion
ratio”, IEEE MELECON'04MAY12-15,2004, pp1137 1140.
[6] A. Alesina and M.G.B. Venturini, “Analysis and design of optimum amplitude nine-switch direct AC-AC converters”, IEEE
Trans. Power Electron. vol.4, pp.101-112, Jan. 1989.
[7] P.W. Wheeler, J. Clare and A. Weinstein, “Matrix Converters: A Technology Review”, IEEE Industrial Electronics Vol.
49, No. 2, April 2002,pp. 276-287.
[8] Zuckerberger, A., Weingstock, D. and Alexandrovitz A, “ Single - phase matrix converter”, IEE proc. Electric
Power Application,Vol144(4), July 1997, pp235-240.
[9] P.W. Wheeler, Jon C. Clare and M. Bland, Gate drive level intelligence and current sensing for matrix converter current
commutation”, IEEE Industrial Electronics, Vol. 49, No. 2, April 2002, pp. 383-389.
[10] Sedat Sunter and Tatar Y, “Pspice modelling and design of a snubber circuit for the matrix converter”, International Journal of
Engineering Model 13, 2000, pp.41-46.
[11] Zuckerberger, A., Weinstock, D. and Alexandrovitz, A.,“Simulation of three- phase loaded matrix converter”, Electric Power
Applications, IEE Proceedings, Vol.143, Issue: 4, July 1996, pp. 294 - 300
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-400
-300
-200
-100
0
100
200
300
400
Time in m.Sec
AmplitudeinVolts
0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1
-10
-5
0
5
10
Time in m.Sec
CurrentinAmps

Weitere ähnliche Inhalte

Was ist angesagt?

Convergence analysis of the triangular-based power flow method for AC distribu...
Convergence analysis of the triangular-based power flow method for AC distribu...Convergence analysis of the triangular-based power flow method for AC distribu...
Convergence analysis of the triangular-based power flow method for AC distribu...IJECEIAES
 
96 manuscript-579-1-10-20210211
96  manuscript-579-1-10-2021021196  manuscript-579-1-10-20210211
96 manuscript-579-1-10-20210211Mellah Hacene
 
Enhancement of upfc performance with matrix
Enhancement of upfc performance with matrixEnhancement of upfc performance with matrix
Enhancement of upfc performance with matrixeSAT Publishing House
 
199833536 ee2404-lab-manual
199833536 ee2404-lab-manual199833536 ee2404-lab-manual
199833536 ee2404-lab-manualhomeworkping4
 
1 ijaems oct-2015-3-design and development of novel matrix converter performance
1 ijaems oct-2015-3-design and development of novel matrix converter performance1 ijaems oct-2015-3-design and development of novel matrix converter performance
1 ijaems oct-2015-3-design and development of novel matrix converter performanceINFOGAIN PUBLICATION
 
Practical of Power System Analysis (PSA)
Practical of Power System Analysis (PSA)Practical of Power System Analysis (PSA)
Practical of Power System Analysis (PSA)Aneel-k Suthar
 
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power System
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power SystemAnalysis of Design, and Control of Sustainable Energy Based Hybrid Power System
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power SystemIJSRED
 
Power System Simulation Laboratory Manual
Power System Simulation Laboratory Manual Power System Simulation Laboratory Manual
Power System Simulation Laboratory Manual Santhosh Kumar
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentIJERD Editor
 
International Journal of Computational Engineering Research(IJCER)
International Journal of Computational Engineering Research(IJCER)International Journal of Computational Engineering Research(IJCER)
International Journal of Computational Engineering Research(IJCER)ijceronline
 
Modelling design and control of an electromechanical mass lifting system usin...
Modelling design and control of an electromechanical mass lifting system usin...Modelling design and control of an electromechanical mass lifting system usin...
Modelling design and control of an electromechanical mass lifting system usin...Mustefa Jibril
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentIJERD Editor
 
Sensor-less DC-Voltage Control for Grid-Connected Inverters
Sensor-less DC-Voltage Control for Grid-Connected InvertersSensor-less DC-Voltage Control for Grid-Connected Inverters
Sensor-less DC-Voltage Control for Grid-Connected InvertersIJAEMSJORNAL
 
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...IJMER
 

Was ist angesagt? (19)

22057 44311-1-pb
22057 44311-1-pb22057 44311-1-pb
22057 44311-1-pb
 
Convergence analysis of the triangular-based power flow method for AC distribu...
Convergence analysis of the triangular-based power flow method for AC distribu...Convergence analysis of the triangular-based power flow method for AC distribu...
Convergence analysis of the triangular-based power flow method for AC distribu...
 
96 manuscript-579-1-10-20210211
96  manuscript-579-1-10-2021021196  manuscript-579-1-10-20210211
96 manuscript-579-1-10-20210211
 
Enhancement of upfc performance with matrix
Enhancement of upfc performance with matrixEnhancement of upfc performance with matrix
Enhancement of upfc performance with matrix
 
199833536 ee2404-lab-manual
199833536 ee2404-lab-manual199833536 ee2404-lab-manual
199833536 ee2404-lab-manual
 
IEEEpaper.
IEEEpaper.IEEEpaper.
IEEEpaper.
 
B1102030610
B1102030610B1102030610
B1102030610
 
1 ijaems oct-2015-3-design and development of novel matrix converter performance
1 ijaems oct-2015-3-design and development of novel matrix converter performance1 ijaems oct-2015-3-design and development of novel matrix converter performance
1 ijaems oct-2015-3-design and development of novel matrix converter performance
 
Practical of Power System Analysis (PSA)
Practical of Power System Analysis (PSA)Practical of Power System Analysis (PSA)
Practical of Power System Analysis (PSA)
 
Control of PMSG based variable speed wind energy conversion system connected ...
Control of PMSG based variable speed wind energy conversion system connected ...Control of PMSG based variable speed wind energy conversion system connected ...
Control of PMSG based variable speed wind energy conversion system connected ...
 
G1102034148
G1102034148G1102034148
G1102034148
 
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power System
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power SystemAnalysis of Design, and Control of Sustainable Energy Based Hybrid Power System
Analysis of Design, and Control of Sustainable Energy Based Hybrid Power System
 
Power System Simulation Laboratory Manual
Power System Simulation Laboratory Manual Power System Simulation Laboratory Manual
Power System Simulation Laboratory Manual
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and Development
 
International Journal of Computational Engineering Research(IJCER)
International Journal of Computational Engineering Research(IJCER)International Journal of Computational Engineering Research(IJCER)
International Journal of Computational Engineering Research(IJCER)
 
Modelling design and control of an electromechanical mass lifting system usin...
Modelling design and control of an electromechanical mass lifting system usin...Modelling design and control of an electromechanical mass lifting system usin...
Modelling design and control of an electromechanical mass lifting system usin...
 
International Journal of Engineering Research and Development
International Journal of Engineering Research and DevelopmentInternational Journal of Engineering Research and Development
International Journal of Engineering Research and Development
 
Sensor-less DC-Voltage Control for Grid-Connected Inverters
Sensor-less DC-Voltage Control for Grid-Connected InvertersSensor-less DC-Voltage Control for Grid-Connected Inverters
Sensor-less DC-Voltage Control for Grid-Connected Inverters
 
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...
Simulation of three-phase bridge rectifier using MATLAB/ SIMULINK for harmoni...
 

Andere mochten auch

A Review on Concept Drift
A Review on Concept DriftA Review on Concept Drift
A Review on Concept DriftIOSR Journals
 
Large Span Lattice Frame Industrial Roof Structure
Large Span Lattice Frame Industrial Roof StructureLarge Span Lattice Frame Industrial Roof Structure
Large Span Lattice Frame Industrial Roof StructureIOSR Journals
 
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...Dynamic Programming approach in Two Echelon Inventory System with Repairable ...
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...IOSR Journals
 
Spectral Continuity: (p, r) - Α P And (p, k) - Q
Spectral Continuity: (p, r) - Α P And (p, k) - QSpectral Continuity: (p, r) - Α P And (p, k) - Q
Spectral Continuity: (p, r) - Α P And (p, k) - QIOSR Journals
 
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...Practical Investigation of the Environmental Hazards of Idle Time and Speed o...
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...IOSR Journals
 
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...IOSR Journals
 
Design, Construction and Operation of a 4-Bit Counting Circuit
Design, Construction and Operation of a 4-Bit Counting CircuitDesign, Construction and Operation of a 4-Bit Counting Circuit
Design, Construction and Operation of a 4-Bit Counting CircuitIOSR Journals
 
DBMS-A Toll for Attaining Sustainability of Eco Systems
DBMS-A Toll for Attaining Sustainability of Eco SystemsDBMS-A Toll for Attaining Sustainability of Eco Systems
DBMS-A Toll for Attaining Sustainability of Eco SystemsIOSR Journals
 
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver Disease
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver DiseaseCore Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver Disease
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver DiseaseIOSR Journals
 

Andere mochten auch (20)

A Review on Concept Drift
A Review on Concept DriftA Review on Concept Drift
A Review on Concept Drift
 
Large Span Lattice Frame Industrial Roof Structure
Large Span Lattice Frame Industrial Roof StructureLarge Span Lattice Frame Industrial Roof Structure
Large Span Lattice Frame Industrial Roof Structure
 
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...Dynamic Programming approach in Two Echelon Inventory System with Repairable ...
Dynamic Programming approach in Two Echelon Inventory System with Repairable ...
 
Spectral Continuity: (p, r) - Α P And (p, k) - Q
Spectral Continuity: (p, r) - Α P And (p, k) - QSpectral Continuity: (p, r) - Α P And (p, k) - Q
Spectral Continuity: (p, r) - Α P And (p, k) - Q
 
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...Practical Investigation of the Environmental Hazards of Idle Time and Speed o...
Practical Investigation of the Environmental Hazards of Idle Time and Speed o...
 
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...
Numerical Solution for the Design of a Traditional Aerospike Nozzle using Met...
 
Design, Construction and Operation of a 4-Bit Counting Circuit
Design, Construction and Operation of a 4-Bit Counting CircuitDesign, Construction and Operation of a 4-Bit Counting Circuit
Design, Construction and Operation of a 4-Bit Counting Circuit
 
DBMS-A Toll for Attaining Sustainability of Eco Systems
DBMS-A Toll for Attaining Sustainability of Eco SystemsDBMS-A Toll for Attaining Sustainability of Eco Systems
DBMS-A Toll for Attaining Sustainability of Eco Systems
 
A1803060110
A1803060110A1803060110
A1803060110
 
J012637178
J012637178J012637178
J012637178
 
I012517285
I012517285I012517285
I012517285
 
E012552428
E012552428E012552428
E012552428
 
O1303048890
O1303048890O1303048890
O1303048890
 
E017263040
E017263040E017263040
E017263040
 
H017665256
H017665256H017665256
H017665256
 
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver Disease
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver DiseaseCore Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver Disease
Core Components of the Metabolic Syndrome in Nonalcohlic Fatty Liver Disease
 
O010528791
O010528791O010528791
O010528791
 
A012130105
A012130105A012130105
A012130105
 
B010120913
B010120913B010120913
B010120913
 
F0333040
F0333040F0333040
F0333040
 

Ähnlich wie A011110108

A Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converter
A Review of Matrix Converter and Novel Control Method of DC-AC Matrix ConverterA Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converter
A Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converteridescitation
 
Modified Single Stage AC-AC Converter
Modified Single Stage AC-AC ConverterModified Single Stage AC-AC Converter
Modified Single Stage AC-AC ConverterIAES-IJPEDS
 
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...iosrjce
 
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...IJTET Journal
 
Three phase diode.pdf
Three phase diode.pdfThree phase diode.pdf
Three phase diode.pdfRajatRaj47
 
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...IJPEDS-IAES
 
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...ijiert bestjournal
 
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter Topology
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter TopologyApplication of SVM Technique for Three Phase Three Leg Ac/Ac Converter Topology
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter TopologyIOSR Journals
 
Novel Direct Switching Power Control Method of UPFC by Using Matrix Converte...
Novel Direct Switching Power Control Method of UPFC by Using  Matrix Converte...Novel Direct Switching Power Control Method of UPFC by Using  Matrix Converte...
Novel Direct Switching Power Control Method of UPFC by Using Matrix Converte...IJMER
 
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...IJPEDS-IAES
 
Control of Wind Energy Conversion System and Power Quality Improvement in the...
Control of Wind Energy Conversion System and Power Quality Improvement in the...Control of Wind Energy Conversion System and Power Quality Improvement in the...
Control of Wind Energy Conversion System and Power Quality Improvement in the...ijeei-iaes
 

Ähnlich wie A011110108 (20)

A Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converter
A Review of Matrix Converter and Novel Control Method of DC-AC Matrix ConverterA Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converter
A Review of Matrix Converter and Novel Control Method of DC-AC Matrix Converter
 
Modified Single Stage AC-AC Converter
Modified Single Stage AC-AC ConverterModified Single Stage AC-AC Converter
Modified Single Stage AC-AC Converter
 
J010627885
J010627885J010627885
J010627885
 
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...
Optimum Amplitude Venturini ModulationBased Matrix Converter Fed Induction Mo...
 
Soft Switching of Three-Phase AC to DC CIHRC with Wireless Power Transfer (WP...
Soft Switching of Three-Phase AC to DC CIHRC with Wireless Power Transfer (WP...Soft Switching of Three-Phase AC to DC CIHRC with Wireless Power Transfer (WP...
Soft Switching of Three-Phase AC to DC CIHRC with Wireless Power Transfer (WP...
 
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...
Wind Energy Conversion System Using PMSG with T-Source Three Phase Matrix Con...
 
24 547-558
24 547-55824 547-558
24 547-558
 
Three phase diode.pdf
Three phase diode.pdfThree phase diode.pdf
Three phase diode.pdf
 
Implementation on the dSPACE 1104 of VOC-SVM based anti-windup PI Controller ...
Implementation on the dSPACE 1104 of VOC-SVM based anti-windup PI Controller ...Implementation on the dSPACE 1104 of VOC-SVM based anti-windup PI Controller ...
Implementation on the dSPACE 1104 of VOC-SVM based anti-windup PI Controller ...
 
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...
A Novel Control Strategy of Indirect Matrix Converter Using Space Vector Modu...
 
Finite-Control-Set Predictive Current Control Based Real and Reactive Power C...
Finite-Control-Set Predictive Current Control Based Real and Reactive Power C...Finite-Control-Set Predictive Current Control Based Real and Reactive Power C...
Finite-Control-Set Predictive Current Control Based Real and Reactive Power C...
 
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...
Performance & Analysis of Single-Phase Inverter Fed Three-phase Induction Mot...
 
Ct4201633637
Ct4201633637Ct4201633637
Ct4201633637
 
Small-Signal AC Model and Closed Loop Control of Interleaved Three-Phase Boos...
Small-Signal AC Model and Closed Loop Control of Interleaved Three-Phase Boos...Small-Signal AC Model and Closed Loop Control of Interleaved Three-Phase Boos...
Small-Signal AC Model and Closed Loop Control of Interleaved Three-Phase Boos...
 
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter Topology
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter TopologyApplication of SVM Technique for Three Phase Three Leg Ac/Ac Converter Topology
Application of SVM Technique for Three Phase Three Leg Ac/Ac Converter Topology
 
Novel Direct Switching Power Control Method of UPFC by Using Matrix Converte...
Novel Direct Switching Power Control Method of UPFC by Using  Matrix Converte...Novel Direct Switching Power Control Method of UPFC by Using  Matrix Converte...
Novel Direct Switching Power Control Method of UPFC by Using Matrix Converte...
 
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...
A Novel Optimal PI Parameter Tuning Strategy to Improve Constant Switching Pe...
 
Control of Wind Energy Conversion System and Power Quality Improvement in the...
Control of Wind Energy Conversion System and Power Quality Improvement in the...Control of Wind Energy Conversion System and Power Quality Improvement in the...
Control of Wind Energy Conversion System and Power Quality Improvement in the...
 
F0443847
F0443847F0443847
F0443847
 
An Analysis of Virtual Flux Direct Power Control of Three-Phase AC-DC Converter
An Analysis of Virtual Flux Direct Power Control of Three-Phase AC-DC ConverterAn Analysis of Virtual Flux Direct Power Control of Three-Phase AC-DC Converter
An Analysis of Virtual Flux Direct Power Control of Three-Phase AC-DC Converter
 

Mehr von IOSR Journals (20)

A011140104
A011140104A011140104
A011140104
 
M0111397100
M0111397100M0111397100
M0111397100
 
L011138596
L011138596L011138596
L011138596
 
K011138084
K011138084K011138084
K011138084
 
J011137479
J011137479J011137479
J011137479
 
I011136673
I011136673I011136673
I011136673
 
G011134454
G011134454G011134454
G011134454
 
H011135565
H011135565H011135565
H011135565
 
F011134043
F011134043F011134043
F011134043
 
E011133639
E011133639E011133639
E011133639
 
D011132635
D011132635D011132635
D011132635
 
C011131925
C011131925C011131925
C011131925
 
B011130918
B011130918B011130918
B011130918
 
A011130108
A011130108A011130108
A011130108
 
I011125160
I011125160I011125160
I011125160
 
H011124050
H011124050H011124050
H011124050
 
G011123539
G011123539G011123539
G011123539
 
F011123134
F011123134F011123134
F011123134
 
E011122530
E011122530E011122530
E011122530
 
D011121524
D011121524D011121524
D011121524
 

Kürzlich hochgeladen

Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...apidays
 
Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...Enterprise Knowledge
 
Boost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivityBoost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivityPrincipled Technologies
 
Exploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone ProcessorsExploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone Processorsdebabhi2
 
2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...Martijn de Jong
 
Slack Application Development 101 Slides
Slack Application Development 101 SlidesSlack Application Development 101 Slides
Slack Application Development 101 Slidespraypatel2
 
Developing An App To Navigate The Roads of Brazil
Developing An App To Navigate The Roads of BrazilDeveloping An App To Navigate The Roads of Brazil
Developing An App To Navigate The Roads of BrazilV3cube
 
The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024Rafal Los
 
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...Igalia
 
Workshop - Best of Both Worlds_ Combine KG and Vector search for enhanced R...
Workshop - Best of Both Worlds_ Combine  KG and Vector search for  enhanced R...Workshop - Best of Both Worlds_ Combine  KG and Vector search for  enhanced R...
Workshop - Best of Both Worlds_ Combine KG and Vector search for enhanced R...Neo4j
 
Automating Google Workspace (GWS) & more with Apps Script
Automating Google Workspace (GWS) & more with Apps ScriptAutomating Google Workspace (GWS) & more with Apps Script
Automating Google Workspace (GWS) & more with Apps Scriptwesley chun
 
GenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day PresentationGenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day PresentationMichael W. Hawkins
 
🐬 The future of MySQL is Postgres 🐘
🐬  The future of MySQL is Postgres   🐘🐬  The future of MySQL is Postgres   🐘
🐬 The future of MySQL is Postgres 🐘RTylerCroy
 
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...gurkirankumar98700
 
Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Allon Mureinik
 
How to convert PDF to text with Nanonets
How to convert PDF to text with NanonetsHow to convert PDF to text with Nanonets
How to convert PDF to text with Nanonetsnaman860154
 
Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024The Digital Insurer
 
04-2024-HHUG-Sales-and-Marketing-Alignment.pptx
04-2024-HHUG-Sales-and-Marketing-Alignment.pptx04-2024-HHUG-Sales-and-Marketing-Alignment.pptx
04-2024-HHUG-Sales-and-Marketing-Alignment.pptxHampshireHUG
 
08448380779 Call Girls In Diplomatic Enclave Women Seeking Men
08448380779 Call Girls In Diplomatic Enclave Women Seeking Men08448380779 Call Girls In Diplomatic Enclave Women Seeking Men
08448380779 Call Girls In Diplomatic Enclave Women Seeking MenDelhi Call girls
 
A Call to Action for Generative AI in 2024
A Call to Action for Generative AI in 2024A Call to Action for Generative AI in 2024
A Call to Action for Generative AI in 2024Results
 

Kürzlich hochgeladen (20)

Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
 
Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...
 
Boost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivityBoost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivity
 
Exploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone ProcessorsExploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone Processors
 
2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...
 
Slack Application Development 101 Slides
Slack Application Development 101 SlidesSlack Application Development 101 Slides
Slack Application Development 101 Slides
 
Developing An App To Navigate The Roads of Brazil
Developing An App To Navigate The Roads of BrazilDeveloping An App To Navigate The Roads of Brazil
Developing An App To Navigate The Roads of Brazil
 
The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024
 
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...
Raspberry Pi 5: Challenges and Solutions in Bringing up an OpenGL/Vulkan Driv...
 
Workshop - Best of Both Worlds_ Combine KG and Vector search for enhanced R...
Workshop - Best of Both Worlds_ Combine  KG and Vector search for  enhanced R...Workshop - Best of Both Worlds_ Combine  KG and Vector search for  enhanced R...
Workshop - Best of Both Worlds_ Combine KG and Vector search for enhanced R...
 
Automating Google Workspace (GWS) & more with Apps Script
Automating Google Workspace (GWS) & more with Apps ScriptAutomating Google Workspace (GWS) & more with Apps Script
Automating Google Workspace (GWS) & more with Apps Script
 
GenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day PresentationGenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day Presentation
 
🐬 The future of MySQL is Postgres 🐘
🐬  The future of MySQL is Postgres   🐘🐬  The future of MySQL is Postgres   🐘
🐬 The future of MySQL is Postgres 🐘
 
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...
Kalyanpur ) Call Girls in Lucknow Finest Escorts Service 🍸 8923113531 🎰 Avail...
 
Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)Injustice - Developers Among Us (SciFiDevCon 2024)
Injustice - Developers Among Us (SciFiDevCon 2024)
 
How to convert PDF to text with Nanonets
How to convert PDF to text with NanonetsHow to convert PDF to text with Nanonets
How to convert PDF to text with Nanonets
 
Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024
 
04-2024-HHUG-Sales-and-Marketing-Alignment.pptx
04-2024-HHUG-Sales-and-Marketing-Alignment.pptx04-2024-HHUG-Sales-and-Marketing-Alignment.pptx
04-2024-HHUG-Sales-and-Marketing-Alignment.pptx
 
08448380779 Call Girls In Diplomatic Enclave Women Seeking Men
08448380779 Call Girls In Diplomatic Enclave Women Seeking Men08448380779 Call Girls In Diplomatic Enclave Women Seeking Men
08448380779 Call Girls In Diplomatic Enclave Women Seeking Men
 
A Call to Action for Generative AI in 2024
A Call to Action for Generative AI in 2024A Call to Action for Generative AI in 2024
A Call to Action for Generative AI in 2024
 

A011110108

  • 1. IOSR Journal of Electrical and Electronics Engineering (IOSR-JEEE) e-ISSN: 2278-1676,p-ISSN: 2320-3331, Volume 11, Issue 1 Ver. I (Jan – Feb. 2016), PP 01-08 www.iosrjournals.org DOI: 10.9790/1676-11110108 www.iosrjournals.org 1 | Page Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power Conversion Using Matrix Converter 1 B.Muthuvel, 2 Dr.T.S.Anandhi, 3 Dr.P.Sivagnanam, 4 M.Janani raj 1 Department of EEE, AKT Memorial college of Engineering and Technology, Villupuram, India. 2 Electronics & Instrumentation Engineering, Annamalai University, Annamalai Nagar, India. 3 Principal, Krishnasamy college of Engineering and Technology, Cuddalore, India. 4 Department of EEE, Vivekananda Polytechnic College, Cuddalore, India. Abstract: This paper proposes a simulation of modeling and implementation of PI controller for a 3 phase to 3 phase power conversion using matrix converter. Closed loop PI controller is used to achieve real time control for 3 phase to 3 phase matrix converter. The entire matrix converter circuits are developed by Mathematical model so as to achieve less computational time and performances of the PI controller are evaluated using MATLAB/SIMULINK for RL Load. The mathematical expressions of the three phase matrix converter are implemented by using simulink block set. The duty cycles of the matrix converter bidirectional switches are calculated using modified venturini algorithm for maximum voltage transfer ratio. Key Words: 3 phase to 3 phase converter, AC to AC conversion, closed loop Matrix converter, Matrix converter, PI Controller. I. Introduction The matrix converter (MC) is a single-stage power converter, capable of feeding an m-phase load from a n-phase source without using energy storage components. It is a direct frequency conversion device that generates variable magnitude variable frequency output voltage from the ac line. It has high power quality and it is fully regenerative.. Recently, direct ac/ac converters have been studied in an attempt to realize high efficiencies, long lifetime, size reduction, and unity power factors. The benefits of using direct ac/ac converters are even greater for medium voltage converters as direct ac/ac converters do not require electrolytic capacitors, which account for most of the volume and cost of medium-voltage converters. The matrix converter presents a promising topology that needs to overcome certain barriers like complexity of modulation and control techniques, protection systems etc, in order to gain a foothold in the industry. Traditionally, the MC has Matrix converters have some advantages when compared to conventional back to back Pulse width modulation voltage- source converters. The MC may be considered more reliable and is smaller because the bulky dc capacitor is eliminated from the topology. Therefore, when MCs are used in ac–ac power conversion, the size and weight of the whole generation system is reduced. To interface a MC-based generation system to an unbalanced three- phase stand-alone load, a four-leg MC is required to provide an electrical path for the zero-sequence load current. Hence the application of resonant controllers to four-leg matrix converters feeding unbalanced or nonlinear loads has been proposed [1]. A new technique improved space vector modulation using amplitude coefficient on a capacitor-clamped multilevel matrix converter. The MMC utilizes a multilevel structure on a conventional matrix converter, which allows direct ac-ac conversion without large energy store elements has been introduced [2].For a common mode voltage reduction and the power quality of matrix converters for a low- voltage transfer ratio of less than 0.5, a direct space vector modulation method has been focused [3]. Fig.1. Basic block diagram of 3pase to 3 phase Matrix converter
  • 2. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 2 | Page For various industrial adjustable speed ac drives and applications, various analysis and mathematical model is introduced in matrix converter. By varying the Modulation Index (MI), the outputs of the matrix converter are controlled and in ac drives, speeds of the drive were controlled. To reduce the computational time and low memory requirement, a mathematical model has been developed [4]-[11].To achieve real time control with quick speed and fast response, new designs of controllers are needed. PI controllers are the one to sense the output continuously and correct the output at the instant if any disturbance occurred. In this paper, PI controllers are designed and implemented for the 3 phase to 3 phase matrix converter in closed loop configuration and the power circuit in closed loop are implemented by the mathematical modeling along with the PI controllers. The duty cycle calculation is taken into account for Maximum voltage transfer ratios and the mathematical model is realized with the RL load. The entire power circuit is modeled with MATLAB/SIMULINK. Implementation of PI controller in mathematical modeling includes the modeling of power circuit, switching algorithm, load and the controller. Merits of Mathematical model over conventional power circuit are less computation time and low memory requirement. The proposed model is very simple, flexible and can be accommodated with any type of load. Fig. 1 refers the Basic block diagram of the proposed 3pase to 3 phase Matrix converter. II. Matrix Converter The Matrix converter (MC) is a single stage direct ac to ac converter, which has an array of m x n bi- directional switches that can directly connect m phase voltage source into n phase load. A 3 phase matrix converter consists of 3x3 switches arranged in matrix form. The arrangement of bi-directional switches is such that any of the input phases R, Y, B is connected to any of the output phases r, y, b at any instant. The average output voltage with desired frequency and amplitude can be controlled by the bi-directional switches. The bi- directional 3x3 switches (29 ) give 512 combinations of the switching states. But only 27 switching combinations are allowed to produce the output line voltages and input phase currents. The attractive characteristics of a Matrix converter are as follows:  Controllable input power factor  Bidirectional energy flow capability  Compact design  Sinusoidal input and output waveforms with minimal higher order harmonics and no sub harmonics;  Minimal energy storage requirements  Long life due to absence of a bulky electrolytic capacitor  Unity input power factor at the power supply side Fig.2. circuit scheme of 3 phase to 3 phase matrix converter Limitations of Matrix converter are  The voltage transfer ratio limitation has a maximum value of 0.866  Sensitive to the power source distortion due to the direct connection between input and output sides. Input filter is needed in order to eliminate the harmonic components of the input current and reduce the input voltage distortion supplied to the Matrix Converter as shown in fig.2.
  • 3. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 3 | Page III. Control Algorithm When 3 phase to 3 phase converter operated with 9 bi-directional switches, the following two basic rules have to be satisfied [10].  Two or three input lines should not be connected to the same output line – to avoid short circuit  At least one of the switches in each phase should be connected to the output – to avoid open circuit. The switching function of single switch as SKj = { 1, switch SKj closed 0, switch SKj opened (1) Where, K = {r, y, b), j = {R, Y, B} The above constraints can be expressed by Srj + Syj + Sbj = 1, j = {R, Y, B} (2) With these restrictions, the 3 x 3 matrix converter has 27 possible switching states. The input or source voltage vector of the 3 phase to 3 phase Matrix converter is Vi = 𝑉𝑅 𝑉𝑌 𝑉𝐵 = 𝑉𝑖𝑚 cos(𝜔𝑖 𝑡) 𝑉𝑖𝑚 cos⁡(𝜔𝑖 𝑡 + 2𝜋 3 ) 𝑉𝑖𝑚 cos⁡(𝜔𝑖 𝑡 + 4𝜋 3 ) (3) The output voltage vector of the 3 phase to 3 phase Matrix converter is Vo = 𝑉𝑟 𝑉𝑦 𝑉𝑏 = 𝑉𝑜𝑚 cos(𝜔𝑜 𝑡) 𝑉𝑜𝑚 cos⁡(𝜔𝑜 𝑡 + 2𝜋 3 ) 𝑉𝑜𝑚 cos⁡(𝜔𝑜 𝑡 + 4𝜋 3 ) (4) The input or source current vector of the 3 phase to 3 phase Matrix converter is Ii = 𝐼 𝑅 𝐼 𝑌 𝐼 𝐵 = 𝐼𝑖𝑚 cos(𝜔𝑖 𝑡) 𝐼𝑖𝑚 cos⁡(𝜔𝑖 𝑡 + 2𝜋 3 ) 𝐼𝑖𝑚 cos⁡(𝜔𝑖 𝑡 + 4𝜋 3 ) (5) The output current vector of the 3 phase to 3 phase Matrix converter is Io = 𝐼𝑟 𝐼𝑦 𝐼𝑏 = 𝐼𝑜𝑚 cos(𝜔𝑜 𝑡) 𝐼𝑜𝑚 cos⁡(𝜔𝑜 𝑡 + 2𝜋 3 ) 𝐼𝑜𝑚 cos⁡(𝜔𝑜 𝑡 + 4𝜋 3 ) (6) Where, 𝜔𝑖 - frequency of input voltage and 𝜔𝑜 - frequency of output voltage The relationship between output and input voltage is given as 𝑉𝑜 (t) = M (t). 𝑉𝑖(t) (7) Where 𝑀𝑡 is the transfer Matrix and is given by M (t) = 𝑀 𝑅𝑟 𝑀 𝑌𝑟 𝑀 𝐵𝑟 𝑀 𝑅𝑦 𝑀 𝑌𝑦 𝑀 𝐵𝑦 𝑀 𝑅𝑏 𝑀 𝑌𝑏 𝑀 𝐵𝑏 (8) where, MRr = tRr / Ts, duty cycle switch SRr, Ts is the sampling period. The input current is given by I in = MT Io (9) Duty cycle must satisfy the following condition in order to avoid short circuit on the input side. 𝑀 𝑅𝑟 + 𝑀 𝑌𝑟 + 𝑀 𝐵𝑟 = 1 (10) 𝑀 𝑅𝑦 + 𝑀 𝑌𝑦 + 𝑀 𝐵𝑦 = 1 (11) 𝑀 𝑅𝑏 + 𝑀 𝑌𝑏 + 𝑀 𝐵𝑏 = 1 (12) The above condition is fulfilled by calculation of duty cycle using modified venturini algorithm. In venturini switching algorithm, the maximum voltage transfer ratio is restricted to 0.5.This limit can be overcome by using modified venturini algorithm [16]. The maximum possible output voltage can be achieved by injecting third harmonics of the input and output frequencies into the output waveform [11]. This will increase the available output voltage range to 0.75 of the input when third harmonics has a peak value of Vi/4. Further increasing of the transfer ratio can be achieved by subtracting a third harmonic at the output frequency from all target output voltages. Hence the maximum transfer ratio of 0.75/0.866 = 0.866 of Vi when this third harmonic has a peak value of Vo/6. Therefore the output voltage becomes 𝑉𝑜𝛾 =𝑞𝑉𝑖𝑚 𝑐𝑜𝑠(𝜔𝑜 𝑡 + 𝜓𝛾 )– 𝑞 6 𝑉𝑖𝑚 𝑐𝑜𝑠(3𝜔𝑜 𝑡)+ 1 4𝑞 𝑚 𝑉𝑖𝑚 (3𝜔𝑖 𝑡) (13)
  • 4. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 4 | Page Where, 𝜓𝛾 = 0, 2π/3, 4π/3 corresponding to the output phase r, y, b [11], [15], [16]. IV. Modeling of Matrix Converter The actual MATLAB/SIMULINK model of 3 phase to 3 phase Matrix converter is shown in fig.3. it comprises normally 4 sections. 4.1 Modeling of Control Algorithm Fig.3. Mathematical Modeling of 3 phase to 3 phase Matrix converter. The required voltage transfer ratio (q), output frequency (fo) and switching frequency (fs) are the inputs required for calculation of duty cycle matrix M. the duty cycle calculations for voltage transfer ratio of 0.5 and 0.866 are realized in the form of m-file in Matlab. Duty cycles for 0.5 & 0.866 voltage transfer ratio are; 𝑀 𝑅𝑟 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (14) 𝑀 𝑌𝑟 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 2𝜋 3 )) (15) 𝑀 𝐵𝑟 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 4𝜋 3 )) (16) 𝑀 𝑅𝑦 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 4𝜋 3 )) (17) 𝑀 𝑌𝑦 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (18) 𝑀 𝐵𝑦 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 2𝜋 3 )) (19) 𝑀 𝑅𝑏 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 2𝜋 3 )) (20) 𝑀 𝑌𝑏 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃 − 4𝜋 3 )) (21) 𝑀 𝐵𝑏 = 1 3 (1 + 2𝑞 𝑐𝑜𝑠(𝜔 𝑚 𝑡 + 𝜃)) (22) Where, 𝜔 𝑚 = 𝜔𝑜 − 𝜔𝑖 = modulation frequency, θ = relative phase of output, q =voltage transfer ratio Switching time for voltage transfer ratio of 0.866 are; 𝑇𝛽𝛾 = 𝑇𝑠 3 1 + 2𝑉𝑜 𝛾 𝑉 𝑖𝛽 𝑉𝑖𝑚 2 + 2 𝑞 3𝑞 𝑚 sin 𝜔𝑖 𝑡 + 𝜓 𝛽 sin(3𝜔𝑖 𝑡) (23) Where, 𝜓 𝛽 = 0, 2π/3, 4π/3 corresponding to the input phases R, Y, B, 𝑞 𝑚 = maximum voltage transfer ratio, q = required voltage ratio, 𝑉𝑖𝑚 =input voltage vector magnitude, 𝑇𝑠 = sampling period. 4.2 Modeling of power circuit The modeling of power circuit is derived from basic output voltage equations [17], [18].
  • 5. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 5 | Page 𝑉𝑟 (t) = 𝑀 𝑅𝑟 𝑉𝑅(t) + 𝑀 𝑌𝑟 𝑉𝑌(t) + 𝑀 𝐵𝑟 𝑉𝐵(t) (24) 𝑉𝑦 (t) = 𝑀 𝑅𝑦 𝑉𝑅(t) + 𝑀 𝑌𝑦 𝑉𝑌(t) + 𝑀 𝐵𝑦 𝑉𝐵(t) (25) 𝑉𝑏 (t) = 𝑀 𝑅𝑏 𝑉𝑅(t) + 𝑀 𝑌𝑏 𝑉𝑌(t) + 𝑀 𝐵𝑏 𝑉𝐵(t) (26) Fig.4. Modeling block of power circuit of „r‟ phase in 3 phase to 3 phase Matrix converter. Fig.4 shows the realization of modeling block of power circuit of „r‟ phase in 3 phase to 3 phase Matrix converter. The switching pulses for the bi-directional switches are realized by comparing the duty cycles with a saw tooth waveform having very high switching frequency 4.3 Modeling of Load The transfer function of mathematical modeling of RL load is 𝐼(𝑆) 𝑉(𝑆) = 1 𝐿𝑠+𝑅 (27) 4.4 Modeling of PI Controller The proportional plus integral controller produces an output signal, u(t) consisting of two terms-one proportional to input signal, e(t) and the other proportional to the integral of input signal, e(t). The PI controller reduces the Steady state error. The PI controller model was developed using Simulink Blockset. In PI controller, u(t) α [e(t) + ʃ e(t) dt] (28) u(t) = Kp e(t) + Ki ʃ e(t) dt (29) Where, Kp is the proportional gain = -ω1 sinθ /A1 and Ki is the integral constant or gain = cosθ / A1 Transfer function of PI Controller is Gc (s) = U(s)/E(s) = Kp + Ki/s (30) V. Simulation Results and Discussion The simulation of 3 phase to 3 phase Matrix converter for closed loop PI controller are carried out using simulink blockset. In closed loop configuration, PI controller was realized as real time controller. Simulations results are performed for a reference current of 7 Amps and Amplitude =325.26V and time limit is 0.1 m.sec. The output is realized with 3 phase passive RL load for R= 10 Ω and L= 20 mH. The reference current is set to 7 Amps. The output is again feedback to the input of the matrix converter through PI controller to achieve the real time control. Fig. 5-7 shows the results of control waveform for all the 9 Bi- directional Switches from „SRr‟ to „SBb ‟ ( MRr to MBb) with „Iref‟=7 amps. Fig. 8 shows the Input waveform for „Iref‟=7 amps and Amplitude =325.26V in „r‟ Phase. The Output Voltage and current waveforms in „r‟ Phase for „Iref‟=7 amps as shown in Fig.9&10. The Output Voltage and current waveforms in „y‟ Phase for „Iref‟=7 amps as shown in Fig.11&12. The Output Voltage and current waveforms in „b‟ Phase for „Iref‟=7 amps as shown in Fig.13&14. Fig.15. shows the Simulation waveform for „THD‟ in „r‟ Phase. Fig.16 shows the. Simulation waveform for reference Current „Iref‟=7 amps. Fig.17. shows the Average Output Voltage waveform for 3 phase to 3 phase Matrix converter (for „r‟, „y‟, „b‟ Phases). Similarly, Fig.18 shows the Output Current waveform for 3 phase to 3 phase Matrix converter (for „r‟, „y‟, „b‟ Phases). The average output voltage is =325.26V and the average output current is 7 Amps.
  • 6. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 6 | Page Fig.5. Duty cycle for MRr, MYr, MBr Phases. Fig.6. Duty cycle for MYy, MRy, MBy Phases. Fig.7. Duty cycle for MRb, MYb, MBb Phases. Fig.8. Input waveform for „Iref‟=7 amps and Amplitude =325.26V in „r‟ Phase Fig.9. Output Voltage waveform for „Iref‟=7 amps in „r‟ Phase. Fig.10. Output Current waveform for „Iref‟=7 amps in „r‟ Phase. 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.2 0.25 0.3 0.35 0.4 0.45 0.5 0.55 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -0.2 -0.1 0 0.1 0.2 0.3 0.4 0.5 0.6 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.2 0.25 0.3 0.35 0.4 0.45 0.5 0.55 Time in m.SecAmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -0.2 -0.1 0 0.1 0.2 0.3 0.4 0.5 0.6 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -0.2 -0.1 0 0.1 0.2 0.3 0.4 0.5 0.6 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 0.2 0.25 0.3 0.35 0.4 0.45 0.5 0.55 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -400 -300 -200 -100 0 100 200 300 400 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -400 -300 -200 -100 0 100 200 300 400 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -8 -6 -4 -2 0 2 4 6 8 Time in m.Sec CurrentinAmps
  • 7. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 7 | Page Fig.11. Output Voltage waveform for „Iref‟=7 amps in „y‟ Phase. Fig.12. Output Current waveform for „Iref‟=7 amps in y„‟ Phase. Fig.13. Output Voltage waveform for „„Iref‟=7 amps in „b‟ Phase. Fig.14. Output Current waveform for „Iref‟=7 amps in „b‟ Phase. Fig.15. Simulation waveform for „THD‟ in „r‟ Phase. Fig.16. Simulation waveform for reference current „Iref‟=7 amps 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -400 -300 -200 -100 0 100 200 300 400 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -8 -6 -4 -2 0 2 4 6 8 Time in m.Sec CurrentinAmps 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -400 -300 -200 -100 0 100 200 300 400 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -8 -6 -4 -2 0 2 4 6 8 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -3.5 -3 -2.5 -2 -1.5 -1 -0.5 0 0.5 x 10 17 Time in m.Sec MagnitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 6 6.5 7 7.5 8 Time in m.Sec CurrentinAmps
  • 8. Modeling and Implementation of Closed Loop PI Controller for 3 Phase to 3 Phase Power… DOI: 10.9790/1676-11110108 www.iosrjournals.org 8 | Page Fig.17. Output Voltage waveform for 3 phase to 3 phase Matrix converter („r‟, „y‟, „b‟ Phases) Fig.18. Output Current waveform for 3 phase to 3 phase Matrix converter („r‟, „y‟, „b‟ Phases) VI. Conclusion Simulation of mathematical modeling and implementation of closed loop PI controller for 3 phase to 3 phase power conversion using matrix converter has been presented in this paper. A mathematical model is developed for Matrix converter using MATLAB/Simulink which is also utilized for closed loop PI controller configuration. In closed loop configuration, a real time control has been achieved for PI controller with less computational time. The output was realized by RL load and the simulation results are taken for maximum voltage transfer ratio. The simulation output results are satisfactory and the future extension of this paper is possible for closed loop Fuzzy logic control in three phase to „n‟ phase Matrix converter with various passive loads and different voltage transfer ratio. References [1] Kiwoo Park, Kyo-Beum Lee and Frede Blaabjerg, “Improving output performance of a Z-source sparse matrix converter under unbalanced input-voltage conditions”, IEEE Transactions on Power Electronics, Vol.27, No.4, April 2012. [2] Xu Lie, Li Yongdong, Wang Kui, Jon C.Clare and Patrick W.Wheeler, “Research on the amplitude coefficient for multilevel matrix converter space vector modulation”, IEEE Transactions on Power Electronics, Vol.27, No.8, August 2012. [3] “Modeling and simulation of single-phase AC-AC matrix converter using SPWM”, Student conference on Research and Development proceedings, Malaysia, 2002, pp. 286-289. [4] B.Muthuvel, T.S.Anandhi, P.Sivagnanam and K.Ramash kumar, “Simulation of 3 Phase to 3 Phase Power Conversion Using Matrix Converter with Maximum and Minimum Voltage Transfer Ratio”, International Journal of Engineering Research and applications (IJERA) ISSN: 2248-9622, Vol. 5, Issue 11, (Part - 2) November 2015. [5] Imayavaramban, K.Latha and G.Uma, Analysis of different schemes of matrix converter with maximum voltage conversion ratio”, IEEE MELECON'04MAY12-15,2004, pp1137 1140. [6] A. Alesina and M.G.B. Venturini, “Analysis and design of optimum amplitude nine-switch direct AC-AC converters”, IEEE Trans. Power Electron. vol.4, pp.101-112, Jan. 1989. [7] P.W. Wheeler, J. Clare and A. Weinstein, “Matrix Converters: A Technology Review”, IEEE Industrial Electronics Vol. 49, No. 2, April 2002,pp. 276-287. [8] Zuckerberger, A., Weingstock, D. and Alexandrovitz A, “ Single - phase matrix converter”, IEE proc. Electric Power Application,Vol144(4), July 1997, pp235-240. [9] P.W. Wheeler, Jon C. Clare and M. Bland, Gate drive level intelligence and current sensing for matrix converter current commutation”, IEEE Industrial Electronics, Vol. 49, No. 2, April 2002, pp. 383-389. [10] Sedat Sunter and Tatar Y, “Pspice modelling and design of a snubber circuit for the matrix converter”, International Journal of Engineering Model 13, 2000, pp.41-46. [11] Zuckerberger, A., Weinstock, D. and Alexandrovitz, A.,“Simulation of three- phase loaded matrix converter”, Electric Power Applications, IEE Proceedings, Vol.143, Issue: 4, July 1996, pp. 294 - 300 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -400 -300 -200 -100 0 100 200 300 400 Time in m.Sec AmplitudeinVolts 0 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1 -10 -5 0 5 10 Time in m.Sec CurrentinAmps