SlideShare ist ein Scribd-Unternehmen logo

Diode circuits-analysis

Rahmat Dani
Rahmat Dani
1 von 9
Downloaden Sie, um offline zu lesen
EE-203 Diode Circuits Analysis Problem 1: Plot the load line and find the Q-point for the diode circuit in Figure 1 if V = 5 V and R = 10 kΩ. Use the i-v characteristic in Figure 2. Figure 1 Figure 2 Solution: 5 = 104 I D + VD | VD = 0 I D = 0.500mA | I D = 0 VD = 5V 4.5V Forward biased - VD = 0.5V ID = = 0.450 mA 104 Ω 1
EE-203 Diode Circuits Analysis iD 2 mA 1 mA Q-point vD 1 2 3 4 5 Problem 2: Find the Q-point for the circuit in Figure 3 using the ideal diode model and constant voltage drop model with Von=0.6V. Figure 3 Solution : Ideal diode model: ID = 1V/10kΩ = 100 µA; (100 µA, 0 V) Constant voltage drop model: ID = (1-0.6)V/10kΩ = 40.0 µA; (40.0 µA, 0.6 V) 2
EE-203 Diode Circuits Analysis Problem 3: Find the Q-point for the diode in Figure 4 using (a) the ideal diode model and (b) the constant voltage drop model with Von = 0.6 V. (c) Discuss the results. Which answer do you feel is most correct? Figure 4 Solution : Using Thévenin equivalent circuits yields and then combining the sources I I 1.2 k Ω 1k Ω 2.2 k Ω - V + - V + + + + 1.6 V 2V 0.4 V - - - (a) Ideal diode model: The 0.4 V source appears to be forward biasing the diode so we will assume it is "on". Substituting the ideal diode model for the forward region 0.4V yields I = = 0.182 mA . This current is greater than zero, which is consistent 2.2k Ω with the diode being "on". Thus the Q-pt is (0 V, +0.182 mA). 3
EE-203 Diode Circuits Analysis I - V + 2.2 k Ω + 0.4 V - Ideal Diode: CVD: V on - + I 0.6 V 2.2 k Ω + 0.4 V - (b) CVD model: The 0.4 V source appears to be forward biasing the diode so we will assume it is "on". Substituting the CVD model with Von = 0.6 V yields 0.4V − 0.6V I= = −90.9 µ A . This current is negative which is not consistent with 2.2k Ω the assumption that the diode is "on". Thus the diode must be off. The resulting Q-pt is: (0.4 V, 0 mA). - V + I=0 2.2 k Ω + 0.4 V - (c) The second estimate is more realistic. 0.4 V is not sufficient to forward bias the diode into significant conduction. For example, let us assume that IS = 10-15 A and assume that the full 0.4 V appears across the diode. Then ⎡ ⎛ 0.4V ⎞ ⎤ iD = 10−15 A ⎢exp ⎜ − 1 = 8.89 nA , a very small current. ⎣ ⎝ 0.025V ⎟ ⎥ ⎠ ⎦ 4
EE-203 Diode Circuits Analysis Problem 4: (a) Find I and V in the four circuits in Figure 5 using the ideal diode model. (b) Repeat using the constant voltage drop model with Von = 0.7 V. Figure 5 (a) 5 − ( −5) (a ) Diode is forward biased:V = − 5+0= − 5 V | I= = 0.500 mA 20k Ω (b) Diode is reverse biased: I =0 | V=7 − 20k Ω ( I ) = 7 V | VD = −10 V 3 − ( −7) (c) Diode is forward biased:V =3 − 0=3 V | I= = 0.500 mA 20k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V (b) 5 − ( −4.3) (a ) Diode is forward biased:V = − 5+0.7= − 4.3 V | I= = 0.465 mA 20k Ω (b) Diode is reverse biased: I =0 | V=7 − 20k Ω ( I ) = 7 V | VD = −10 V 2.3 − ( −7) (c) Diode is forward biased:V =3 − 0.7=2.3 V | I= = 0.465 mA 20k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V 5
EE-203 Diode Circuits Analysis Problem 5: (a) Find I and V in the four circuits in Figure 5 using the ideal diode model if the resistor values are changed to 100 kΩ. (b) Repeat using the constant voltage drop model with Von = 0.6 V. Solution : (a) 5 − ( −5) (a ) Diode is forward biased:V = − 5+0= − 5 V | I= = 100 µ A 100k Ω (b) Diode is reverse biased: I =0 A | V=7 − 100k Ω ( I ) = 7 V | VD = −10 V 3 − ( −7 ) (c) Diode is forward biased:V =3 − 0=3 V | I= = 100 µ A 100k Ω (d ) Diode is reverse biased: I =0 A | V= − 5 + 100k Ω ( I ) = −5 V | VD = −10 V (b) 5 − ( −4.4) (a ) Diode is forward biased:V = − 5+0.6= − 4.4 V | I= = 94.0 µ A 100k Ω (b) Diode is reverse biased: I =0 | V=7 − 100k Ω ( I ) = 7 V | VD = −10 V 2.4 − ( −7) (c) Diode is forward biased:V =3 − 0.6=2.4 V | I= = 94.0 µ A 100k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V 6
EE-203 Diode Circuits Analysis Problem 6: Find the Q-points for the diodes in the circuits in Figure 6 using the ideal diode model. Figure 6 Solution : Diodes are labeled from left to right 10 − 0 (a ) D1 on, D 2 off, D3 on: ID2 = 0 | ID1 = = 1mA 3k Ω + 7 k Ω 0 − ( −5) I D3 + 1.00mA = → I D3 = 1.00mA | VD2 = 5 − (10 − 3000 I D1 ) = −2V 2.5k Ω D1:(1.00 mA, 0 V ) D 2 :( 0 mA, − 2 V ) D3:(1.00 mA, 0 V ) (b) D1 on, D 2 off, D3 off: I D2 = 0 | I D3 = 0 10 − ( −5) I D1 = = 0.500mA | VD2 = 5 − (10 − 8000 I D1 ) = −1.00V 8k Ω + 10k Ω + 12k Ω VD3 = − ( −5 + 12000 I D1 ) = −1.00V D1 : ( 0.500 mA, 0 V ) D2 : ( 0 A, − 1.00 V ) D3 : ( 0 A, − 1.00 V ) 7
EE-203 Diode Circuits Analysis (c) D1 on, D 2 on, D3 on 0 − ( −10) 0 − ( 2) I D1 = = 1.25mA > 0 | I10K = = −0.200mA | I D 2 = I D1 + I10 K = 1.05mA > 0 8k Ω 10k Ω 2 − ( −5) I12K = = 0.583mA | I D 3 = I12 K − I10 K = 0.783mA > 0 12k Ω D1 : (1.25 mA, 0 V ) D2 : (1.05 mA, 0 V ) D3 : ( 0.783 mA, 0 V ) (d ) D1 off , D2 off , D3 on: I D1 = 0, I D 2 = 0 12 − ( −5) V I D3 = = 567µ A > 0 | VD1 = 0 − ( −5 + 10000 I D 3 ) = −0.667V < 0 30 kΩ VD2 = 5 − (12 − 10000 I D 3 ) = −1.33V < 0 D1 : ( 0 A, − 0.667 V ) D2 : ( 0 A, − 1.33 V ) D3 : ( 567 µ A, 0 V ) Problem 7: Find the Q-points for the diodes in the circuits in Figure 6 using the constant voltage drop model with Von = 0.6 V. Solution: Diodes are labeled from left to right 10 − 0.6 − ( −0.6) (a ) D1 on, D 2 off, D3 on: ID2 = 0 | ID1 = = 1.00mA 3k Ω + 7 k Ω −0.6 − ( −5) I D3 + 1.00mA = → I D3 = 0.760mA | VD2 = 5 − (10 − 0.6 − 3000 I D1 ) = −1.40V 2.5k Ω D1:(1.00 mA, 0.600 V ) D 2 :( 0 mA, − 1.40 V ) D3 :( 0.760 mA, 0.600V ) (b) D1 on, D 2 off, D3 off: I D2 = 0 | I D3 = 0 10 − 0.6 − ( −5) I D1 = = 0.480mA | VD2 = 5 − (10 − 0.6 − 8000 I D1 ) = −0.560V 8k Ω + 10k Ω + 12k Ω VD3 = − ( −5 + 12000 I D1 ) = −0.760V D1:( 0.480 mA, 0.600 V ) D 2 :( 0 A, − 0.560 V ) D3:( 0 A, − 0.760 V ) 8
EE-203 Diode Circuits Analysis (c) D1 on, D 2 on, D3 on −0.6 − ( −9.4) V −0.6 − (1.4) V I D1 = = 1.10mA > 0 | I10 K = = −0.200mA 8 kΩ 10 kΩ 1.4 − ( −5) V I D 2 = I D1 + I10 K = 0.900mA > 0 | I12 K = = 0.533mA | I D 3 = I12 K − I10 K = 0.733mA > 0 12 kΩ D1:(1.10 mA, 0.600 V ) D 2 :( 0.900 mA, 0.600 V ) D3 :( 0.733 mA, 0.600 V) (d ) D1 off , D2 off , D3 on: I D1 = 0, I D 2 = 0 11.4 − ( −5) V I D3 = = 547 µ A > 0 | VD1 = 0 − ( −5 + 10000 I D 3 ) = −0.467V < 0 30 kΩ VD2 = 5 − (11.4 − 10000 I D 3 ) = −0.933V < 0 D1 : ( 0 A, − 0.467 V ) D2 : ( 0 A, − 0.933 V ) D3 : ( 547 µ A, 0 V ) 9

Empfohlen

Single diode circuits
Single diode circuitsSingle diode circuits
Single diode circuitsUnsa Shakir
 
Pn junction diodes (presentation)
Pn junction diodes (presentation)Pn junction diodes (presentation)
Pn junction diodes (presentation)Alan Bullard
 
Diodes and rectifiers
Diodes and rectifiersDiodes and rectifiers
Diodes and rectifiersAnkit Dubey
 
Special purpose diode
Special purpose diodeSpecial purpose diode
Special purpose diodeEngineering Garage V=ir
 
Diodes
DiodesDiodes
DiodesSoujanya Roy
 
Diode
DiodeDiode
DiodeSeti Saiman
 
Electric circuits and networks Basics
Electric circuits and networks BasicsElectric circuits and networks Basics
Electric circuits and networks BasicsPradeepRaj
 
12th physics current electricity by shykh salam
12th physics current electricity by shykh salam12th physics current electricity by shykh salam
12th physics current electricity by shykh salamabdul salam shaikh
 

Empfohlen

Single diode circuits
Single diode circuitsSingle diode circuits
Single diode circuitsUnsa Shakir
 
Pn junction diodes (presentation)
Pn junction diodes (presentation)Pn junction diodes (presentation)
Pn junction diodes (presentation)Alan Bullard
 
Diodes and rectifiers
Diodes and rectifiersDiodes and rectifiers
Diodes and rectifiersAnkit Dubey
 
Special purpose diode
Special purpose diodeSpecial purpose diode
Special purpose diodeEngineering Garage V=ir
 
Diodes
DiodesDiodes
DiodesSoujanya Roy
 
Diode
DiodeDiode
DiodeSeti Saiman
 
Electric circuits and networks Basics
Electric circuits and networks BasicsElectric circuits and networks Basics
Electric circuits and networks BasicsPradeepRaj
 
12th physics current electricity by shykh salam
12th physics current electricity by shykh salam12th physics current electricity by shykh salam
12th physics current electricity by shykh salamabdul salam shaikh
 
mesh analysis
mesh analysismesh analysis
mesh analysisVimal Sangar
 
Application of diode
Application of diodeApplication of diode
Application of diodeDiLip ChauDhary
 
Diodes and Its Application
Diodes and Its ApplicationDiodes and Its Application
Diodes and Its ApplicationJess Rangcasajo
 
Zener diode
Zener diode Zener diode
Zener diode Sushama Nikam
 
Basic structure of capacitor
Basic structure of capacitorBasic structure of capacitor
Basic structure of capacitorUniversity of Potsdam
 
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICSSheeba vinilan
 
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...Priyanka Jakhar
 
Electronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and TypesElectronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and TypesSk_Group
 
P n junction characteristics
P n junction characteristicsP n junction characteristics
P n junction characteristicsAshvani Shukla
 
Circuits and circuits elements
Circuits and circuits elementsCircuits and circuits elements
Circuits and circuits elementsPandu Ekoyudho
 
P n junction diode prabhakar
P n junction diode prabhakar P n junction diode prabhakar
P n junction diode prabhakar PrabhakarPremUpreti
 
Wiring Part 4 : ohms law
Wiring Part 4 : ohms lawWiring Part 4 : ohms law
Wiring Part 4 : ohms lawvigyanashram
 
Rc and rl circuits
Rc and rl circuitsRc and rl circuits
Rc and rl circuitsHazel Lim
 
electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )Priyanka Jakhar
 
Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2Self-employed
 
Electric Circuits Ppt Slides
Electric Circuits Ppt SlidesElectric Circuits Ppt Slides
Electric Circuits Ppt Slidesguest5e66ab3
 
Diodes
Diodes Diodes
Diodes Chaimaa Oukrati
 
Introduction to Thevenin's theorem
Introduction to Thevenin's theorem Introduction to Thevenin's theorem
Introduction to Thevenin's theorem abhijith prabha
 
Diode
DiodeDiode
DiodeSubanth williams
 
Semiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and ApplicationSemiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and ApplicationSamir Raj Bhandari
 
Lecture 4 ver2 diode_app
Lecture 4 ver2 diode_appLecture 4 ver2 diode_app
Lecture 4 ver2 diode_appAmirul Faiz Amil Azman
 
Lecture5 diode circuits (1)
Lecture5 diode circuits (1)Lecture5 diode circuits (1)
Lecture5 diode circuits (1)raaako2255
 

Weitere ähnliche Inhalte

Was ist angesagt?

Diodes and Its Application
Diodes and Its ApplicationDiodes and Its Application
Diodes and Its ApplicationJess Rangcasajo
 
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICSSheeba vinilan
 
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...Priyanka Jakhar
 
Electronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and TypesElectronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and TypesSk_Group
 
P n junction characteristics
P n junction characteristicsP n junction characteristics
P n junction characteristicsAshvani Shukla
 
Circuits and circuits elements
Circuits and circuits elementsCircuits and circuits elements
Circuits and circuits elementsPandu Ekoyudho
 
Wiring Part 4 : ohms law
Wiring Part 4 : ohms lawWiring Part 4 : ohms law
Wiring Part 4 : ohms lawvigyanashram
 
Rc and rl circuits
Rc and rl circuitsRc and rl circuits
Rc and rl circuitsHazel Lim
 
electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )Priyanka Jakhar
 
Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2Self-employed
 
Electric Circuits Ppt Slides
Electric Circuits Ppt SlidesElectric Circuits Ppt Slides
Electric Circuits Ppt Slidesguest5e66ab3
 
Introduction to Thevenin's theorem
Introduction to Thevenin's theorem Introduction to Thevenin's theorem
Introduction to Thevenin's theorem abhijith prabha
 
Semiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and ApplicationSemiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and ApplicationSamir Raj Bhandari
 

Was ist angesagt? (20)

mesh analysis
mesh analysismesh analysis
mesh analysis
 
Application of diode
Application of diodeApplication of diode
Application of diode
 
Diodes and Its Application
Diodes and Its ApplicationDiodes and Its Application
Diodes and Its Application
 
Zener diode
Zener diode Zener diode
Zener diode
 
Basic structure of capacitor
Basic structure of capacitorBasic structure of capacitor
Basic structure of capacitor
 
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
ELECTROSTATICS OF CONDUCTORS AND DIELECTRICS
 
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
Lorentz Force Magnetic Force on a moving charge in uniform Electric and Mag...
 
Electronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and TypesElectronics 1 : Chapter # 04 : Diode Applications and Types
Electronics 1 : Chapter # 04 : Diode Applications and Types
 
P n junction characteristics
P n junction characteristicsP n junction characteristics
P n junction characteristics
 
Circuits and circuits elements
Circuits and circuits elementsCircuits and circuits elements
Circuits and circuits elements
 
P n junction diode prabhakar
P n junction diode prabhakar P n junction diode prabhakar
P n junction diode prabhakar
 
Wiring Part 4 : ohms law
Wiring Part 4 : ohms lawWiring Part 4 : ohms law
Wiring Part 4 : ohms law
 
Rc and rl circuits
Rc and rl circuitsRc and rl circuits
Rc and rl circuits
 
electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )
 
Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2Current Electricity Class 12 Part-2
Current Electricity Class 12 Part-2
 
Electric Circuits Ppt Slides
Electric Circuits Ppt SlidesElectric Circuits Ppt Slides
Electric Circuits Ppt Slides
 
Diodes
Diodes Diodes
Diodes
 
Introduction to Thevenin's theorem
Introduction to Thevenin's theorem Introduction to Thevenin's theorem
Introduction to Thevenin's theorem
 
Diode
DiodeDiode
Diode
 
Semiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and ApplicationSemiconductor Diode: Introduction and Application
Semiconductor Diode: Introduction and Application
 

Andere mochten auch

Lecture5 diode circuits (1)
Lecture5 diode circuits (1)Lecture5 diode circuits (1)
Lecture5 diode circuits (1)raaako2255
 
Presentation on half and full wave ractifier.ppt
Presentation on half and full wave ractifier.pptPresentation on half and full wave ractifier.ppt
Presentation on half and full wave ractifier.pptKawsar Ahmed
 
questions on diode analysis: Assignment6
questions on diode analysis: Assignment6questions on diode analysis: Assignment6
questions on diode analysis: Assignment6Akash Kumar Verma
 
C hapter 2 diode applications
C hapter 2 diode applicationsC hapter 2 diode applications
C hapter 2 diode applicationsHazrul156
 
Basic electronics Tutorial 2 Solution
Basic electronics Tutorial 2 SolutionBasic electronics Tutorial 2 Solution
Basic electronics Tutorial 2 SolutionAnkit Kumar
 
Basic electronics Tutorial 3
Basic electronics Tutorial 3Basic electronics Tutorial 3
Basic electronics Tutorial 3Ankit Kumar
 
Basic electronics Tutorial 1
Basic electronics Tutorial 1Basic electronics Tutorial 1
Basic electronics Tutorial 1Ankit Kumar
 
Basic electronics Tutorial 2
Basic electronics Tutorial 2Basic electronics Tutorial 2
Basic electronics Tutorial 2Ankit Kumar
 
Basic Electronics Tutorial 1 Solution
Basic Electronics Tutorial 1 SolutionBasic Electronics Tutorial 1 Solution
Basic Electronics Tutorial 1 SolutionAnkit Kumar
 
Basic Electronics Tutorial 3 Solution
Basic Electronics Tutorial 3 SolutionBasic Electronics Tutorial 3 Solution
Basic Electronics Tutorial 3 SolutionAnkit Kumar
 
Tanya makkar (5003)
Tanya makkar (5003)Tanya makkar (5003)
Tanya makkar (5003)Tanya Makkar
 
Chapter 1 electro mecha device part 4
Chapter 1 electro mecha device part 4Chapter 1 electro mecha device part 4
Chapter 1 electro mecha device part 4Hattori Sidek
 

Andere mochten auch (20)

Lecture 4 ver2 diode_app
Lecture 4 ver2 diode_appLecture 4 ver2 diode_app
Lecture 4 ver2 diode_app
 
Lecture5 diode circuits (1)
Lecture5 diode circuits (1)Lecture5 diode circuits (1)
Lecture5 diode circuits (1)
 
2 diode applications
2 diode applications2 diode applications
2 diode applications
 
Presentation on half and full wave ractifier.ppt
Presentation on half and full wave ractifier.pptPresentation on half and full wave ractifier.ppt
Presentation on half and full wave ractifier.ppt
 
EEE201 LECTURE 3~www.fida.com.bd
EEE201 LECTURE 3~www.fida.com.bdEEE201 LECTURE 3~www.fida.com.bd
EEE201 LECTURE 3~www.fida.com.bd
 
Clipper circuits
Clipper circuitsClipper circuits
Clipper circuits
 
questions on diode analysis: Assignment6
questions on diode analysis: Assignment6questions on diode analysis: Assignment6
questions on diode analysis: Assignment6
 
C hapter 2 diode applications
C hapter 2 diode applicationsC hapter 2 diode applications
C hapter 2 diode applications
 
Basic electronics Tutorial 2 Solution
Basic electronics Tutorial 2 SolutionBasic electronics Tutorial 2 Solution
Basic electronics Tutorial 2 Solution
 
Basic electronics Tutorial 3
Basic electronics Tutorial 3Basic electronics Tutorial 3
Basic electronics Tutorial 3
 
Basic electronics Tutorial 1
Basic electronics Tutorial 1Basic electronics Tutorial 1
Basic electronics Tutorial 1
 
Basic electronics Tutorial 2
Basic electronics Tutorial 2Basic electronics Tutorial 2
Basic electronics Tutorial 2
 
Basic Electronics Tutorial 1 Solution
Basic Electronics Tutorial 1 SolutionBasic Electronics Tutorial 1 Solution
Basic Electronics Tutorial 1 Solution
 
Basic Electronics Tutorial 3 Solution
Basic Electronics Tutorial 3 SolutionBasic Electronics Tutorial 3 Solution
Basic Electronics Tutorial 3 Solution
 
Diode circuits
Diode circuitsDiode circuits
Diode circuits
 
Clipper circuit
Clipper circuitClipper circuit
Clipper circuit
 
Tanya makkar (5003)
Tanya makkar (5003)Tanya makkar (5003)
Tanya makkar (5003)
 
Chapter 1 electro mecha device part 4
Chapter 1 electro mecha device part 4Chapter 1 electro mecha device part 4
Chapter 1 electro mecha device part 4
 
Diode
DiodeDiode
Diode
 
Whip antenna
Whip antennaWhip antenna
Whip antenna
 

Ähnlich wie Diode circuits-analysis

Analog electronic circuit
Analog electronic circuitAnalog electronic circuit
Analog electronic circuitmohamed albanna
 
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrd
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrdChapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrd
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrdLuisAngelLugoCuevas
 
Et1 practical final examination
Et1 practical final examinationEt1 practical final examination
Et1 practical final examinationcheekeong1231
 
JUNCTION DIODE APPLICATIONS
JUNCTION DIODE APPLICATIONSJUNCTION DIODE APPLICATIONS
JUNCTION DIODE APPLICATIONSAsmita Bhagdikar
 
Diode by hashir ahmed
Diode by hashir ahmedDiode by hashir ahmed
Diode by hashir ahmedsyed Ahmed
 
01.pptx
01.pptx01.pptx
01.pptxTinNi9
 
lesson_4_1_semiconductor_physics-diode_and_transistors.ppt
lesson_4_1_semiconductor_physics-diode_and_transistors.pptlesson_4_1_semiconductor_physics-diode_and_transistors.ppt
lesson_4_1_semiconductor_physics-diode_and_transistors.pptKishore589011
 
BEF 12403 - Week 12 - Nodal Analysis Method.ppt
BEF 12403 - Week 12 - Nodal Analysis Method.pptBEF 12403 - Week 12 - Nodal Analysis Method.ppt
BEF 12403 - Week 12 - Nodal Analysis Method.pptLiewChiaPing
 
Chapter 1 techniques of dc circuit analysis
Chapter 1 techniques of dc circuit analysisChapter 1 techniques of dc circuit analysis
Chapter 1 techniques of dc circuit analysisAmirul Faiz Amil Azman
 
Voltage divider bias circuit | Dept of ECE | ANITS
Voltage divider bias circuit | Dept of ECE | ANITSVoltage divider bias circuit | Dept of ECE | ANITS
Voltage divider bias circuit | Dept of ECE | ANITSANILPRASAD58
 

Ähnlich wie Diode circuits-analysis (20)

Lec 15.pptx
Lec 15.pptxLec 15.pptx
Lec 15.pptx
 
3 nodal analysis
3 nodal analysis3 nodal analysis
3 nodal analysis
 
Analog electronic circuit
Analog electronic circuitAnalog electronic circuit
Analog electronic circuit
 
Lab - 03
Lab - 03Lab - 03
Lab - 03
 
03
0303
03
 
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrd
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrdChapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrd
Chapterhj jkhjhjhjh kjhjhjhljh jhkjhjhgftf rdrd
 
Lec 06 (2017).pdf
Lec 06 (2017).pdfLec 06 (2017).pdf
Lec 06 (2017).pdf
 
Et1 practical final examination
Et1 practical final examinationEt1 practical final examination
Et1 practical final examination
 
JUNCTION DIODE APPLICATIONS
JUNCTION DIODE APPLICATIONSJUNCTION DIODE APPLICATIONS
JUNCTION DIODE APPLICATIONS
 
Diode by hashir ahmed
Diode by hashir ahmedDiode by hashir ahmed
Diode by hashir ahmed
 
01.pptx
01.pptx01.pptx
01.pptx
 
Circuits5
Circuits5Circuits5
Circuits5
 
lesson_4_1_semiconductor_physics-diode_and_transistors.ppt
lesson_4_1_semiconductor_physics-diode_and_transistors.pptlesson_4_1_semiconductor_physics-diode_and_transistors.ppt
lesson_4_1_semiconductor_physics-diode_and_transistors.ppt
 
Diode logic crkts
Diode logic crktsDiode logic crkts
Diode logic crkts
 
Diode logic crkts
Diode logic crktsDiode logic crkts
Diode logic crkts
 
Diode
DiodeDiode
Diode
 
Lec 14.pdf
Lec 14.pdfLec 14.pdf
Lec 14.pdf
 
BEF 12403 - Week 12 - Nodal Analysis Method.ppt
BEF 12403 - Week 12 - Nodal Analysis Method.pptBEF 12403 - Week 12 - Nodal Analysis Method.ppt
BEF 12403 - Week 12 - Nodal Analysis Method.ppt
 
Chapter 1 techniques of dc circuit analysis
Chapter 1 techniques of dc circuit analysisChapter 1 techniques of dc circuit analysis
Chapter 1 techniques of dc circuit analysis
 
Voltage divider bias circuit | Dept of ECE | ANITS
Voltage divider bias circuit | Dept of ECE | ANITSVoltage divider bias circuit | Dept of ECE | ANITS
Voltage divider bias circuit | Dept of ECE | ANITS
 

Diode circuits-analysis

  • 1. EE-203 Diode Circuits Analysis Problem 1: Plot the load line and find the Q-point for the diode circuit in Figure 1 if V = 5 V and R = 10 kΩ. Use the i-v characteristic in Figure 2. Figure 1 Figure 2 Solution: 5 = 104 I D + VD | VD = 0 I D = 0.500mA | I D = 0 VD = 5V 4.5V Forward biased - VD = 0.5V ID = = 0.450 mA 104 Ω 1
  • 2. EE-203 Diode Circuits Analysis iD 2 mA 1 mA Q-point vD 1 2 3 4 5 Problem 2: Find the Q-point for the circuit in Figure 3 using the ideal diode model and constant voltage drop model with Von=0.6V. Figure 3 Solution : Ideal diode model: ID = 1V/10kΩ = 100 µA; (100 µA, 0 V) Constant voltage drop model: ID = (1-0.6)V/10kΩ = 40.0 µA; (40.0 µA, 0.6 V) 2
  • 3. EE-203 Diode Circuits Analysis Problem 3: Find the Q-point for the diode in Figure 4 using (a) the ideal diode model and (b) the constant voltage drop model with Von = 0.6 V. (c) Discuss the results. Which answer do you feel is most correct? Figure 4 Solution : Using Thévenin equivalent circuits yields and then combining the sources I I 1.2 k Ω 1k Ω 2.2 k Ω - V + - V + + + + 1.6 V 2V 0.4 V - - - (a) Ideal diode model: The 0.4 V source appears to be forward biasing the diode so we will assume it is "on". Substituting the ideal diode model for the forward region 0.4V yields I = = 0.182 mA . This current is greater than zero, which is consistent 2.2k Ω with the diode being "on". Thus the Q-pt is (0 V, +0.182 mA). 3
  • 4. EE-203 Diode Circuits Analysis I - V + 2.2 k Ω + 0.4 V - Ideal Diode: CVD: V on - + I 0.6 V 2.2 k Ω + 0.4 V - (b) CVD model: The 0.4 V source appears to be forward biasing the diode so we will assume it is "on". Substituting the CVD model with Von = 0.6 V yields 0.4V − 0.6V I= = −90.9 µ A . This current is negative which is not consistent with 2.2k Ω the assumption that the diode is "on". Thus the diode must be off. The resulting Q-pt is: (0.4 V, 0 mA). - V + I=0 2.2 k Ω + 0.4 V - (c) The second estimate is more realistic. 0.4 V is not sufficient to forward bias the diode into significant conduction. For example, let us assume that IS = 10-15 A and assume that the full 0.4 V appears across the diode. Then ⎡ ⎛ 0.4V ⎞ ⎤ iD = 10−15 A ⎢exp ⎜ − 1 = 8.89 nA , a very small current. ⎣ ⎝ 0.025V ⎟ ⎥ ⎠ ⎦ 4
  • 5. EE-203 Diode Circuits Analysis Problem 4: (a) Find I and V in the four circuits in Figure 5 using the ideal diode model. (b) Repeat using the constant voltage drop model with Von = 0.7 V. Figure 5 (a) 5 − ( −5) (a ) Diode is forward biased:V = − 5+0= − 5 V | I= = 0.500 mA 20k Ω (b) Diode is reverse biased: I =0 | V=7 − 20k Ω ( I ) = 7 V | VD = −10 V 3 − ( −7) (c) Diode is forward biased:V =3 − 0=3 V | I= = 0.500 mA 20k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V (b) 5 − ( −4.3) (a ) Diode is forward biased:V = − 5+0.7= − 4.3 V | I= = 0.465 mA 20k Ω (b) Diode is reverse biased: I =0 | V=7 − 20k Ω ( I ) = 7 V | VD = −10 V 2.3 − ( −7) (c) Diode is forward biased:V =3 − 0.7=2.3 V | I= = 0.465 mA 20k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V 5
  • 6. EE-203 Diode Circuits Analysis Problem 5: (a) Find I and V in the four circuits in Figure 5 using the ideal diode model if the resistor values are changed to 100 kΩ. (b) Repeat using the constant voltage drop model with Von = 0.6 V. Solution : (a) 5 − ( −5) (a ) Diode is forward biased:V = − 5+0= − 5 V | I= = 100 µ A 100k Ω (b) Diode is reverse biased: I =0 A | V=7 − 100k Ω ( I ) = 7 V | VD = −10 V 3 − ( −7 ) (c) Diode is forward biased:V =3 − 0=3 V | I= = 100 µ A 100k Ω (d ) Diode is reverse biased: I =0 A | V= − 5 + 100k Ω ( I ) = −5 V | VD = −10 V (b) 5 − ( −4.4) (a ) Diode is forward biased:V = − 5+0.6= − 4.4 V | I= = 94.0 µ A 100k Ω (b) Diode is reverse biased: I =0 | V=7 − 100k Ω ( I ) = 7 V | VD = −10 V 2.4 − ( −7) (c) Diode is forward biased:V =3 − 0.6=2.4 V | I= = 94.0 µ A 100k Ω (d ) Diode is reverse biased: I =0 | V= − 5 + 20k Ω ( I ) = −5 V | VD = −10 V 6
  • 7. EE-203 Diode Circuits Analysis Problem 6: Find the Q-points for the diodes in the circuits in Figure 6 using the ideal diode model. Figure 6 Solution : Diodes are labeled from left to right 10 − 0 (a ) D1 on, D 2 off, D3 on: ID2 = 0 | ID1 = = 1mA 3k Ω + 7 k Ω 0 − ( −5) I D3 + 1.00mA = → I D3 = 1.00mA | VD2 = 5 − (10 − 3000 I D1 ) = −2V 2.5k Ω D1:(1.00 mA, 0 V ) D 2 :( 0 mA, − 2 V ) D3:(1.00 mA, 0 V ) (b) D1 on, D 2 off, D3 off: I D2 = 0 | I D3 = 0 10 − ( −5) I D1 = = 0.500mA | VD2 = 5 − (10 − 8000 I D1 ) = −1.00V 8k Ω + 10k Ω + 12k Ω VD3 = − ( −5 + 12000 I D1 ) = −1.00V D1 : ( 0.500 mA, 0 V ) D2 : ( 0 A, − 1.00 V ) D3 : ( 0 A, − 1.00 V ) 7
  • 8. EE-203 Diode Circuits Analysis (c) D1 on, D 2 on, D3 on 0 − ( −10) 0 − ( 2) I D1 = = 1.25mA > 0 | I10K = = −0.200mA | I D 2 = I D1 + I10 K = 1.05mA > 0 8k Ω 10k Ω 2 − ( −5) I12K = = 0.583mA | I D 3 = I12 K − I10 K = 0.783mA > 0 12k Ω D1 : (1.25 mA, 0 V ) D2 : (1.05 mA, 0 V ) D3 : ( 0.783 mA, 0 V ) (d ) D1 off , D2 off , D3 on: I D1 = 0, I D 2 = 0 12 − ( −5) V I D3 = = 567µ A > 0 | VD1 = 0 − ( −5 + 10000 I D 3 ) = −0.667V < 0 30 kΩ VD2 = 5 − (12 − 10000 I D 3 ) = −1.33V < 0 D1 : ( 0 A, − 0.667 V ) D2 : ( 0 A, − 1.33 V ) D3 : ( 567 µ A, 0 V ) Problem 7: Find the Q-points for the diodes in the circuits in Figure 6 using the constant voltage drop model with Von = 0.6 V. Solution: Diodes are labeled from left to right 10 − 0.6 − ( −0.6) (a ) D1 on, D 2 off, D3 on: ID2 = 0 | ID1 = = 1.00mA 3k Ω + 7 k Ω −0.6 − ( −5) I D3 + 1.00mA = → I D3 = 0.760mA | VD2 = 5 − (10 − 0.6 − 3000 I D1 ) = −1.40V 2.5k Ω D1:(1.00 mA, 0.600 V ) D 2 :( 0 mA, − 1.40 V ) D3 :( 0.760 mA, 0.600V ) (b) D1 on, D 2 off, D3 off: I D2 = 0 | I D3 = 0 10 − 0.6 − ( −5) I D1 = = 0.480mA | VD2 = 5 − (10 − 0.6 − 8000 I D1 ) = −0.560V 8k Ω + 10k Ω + 12k Ω VD3 = − ( −5 + 12000 I D1 ) = −0.760V D1:( 0.480 mA, 0.600 V ) D 2 :( 0 A, − 0.560 V ) D3:( 0 A, − 0.760 V ) 8
  • 9. EE-203 Diode Circuits Analysis (c) D1 on, D 2 on, D3 on −0.6 − ( −9.4) V −0.6 − (1.4) V I D1 = = 1.10mA > 0 | I10 K = = −0.200mA 8 kΩ 10 kΩ 1.4 − ( −5) V I D 2 = I D1 + I10 K = 0.900mA > 0 | I12 K = = 0.533mA | I D 3 = I12 K − I10 K = 0.733mA > 0 12 kΩ D1:(1.10 mA, 0.600 V ) D 2 :( 0.900 mA, 0.600 V ) D3 :( 0.733 mA, 0.600 V) (d ) D1 off , D2 off , D3 on: I D1 = 0, I D 2 = 0 11.4 − ( −5) V I D3 = = 547 µ A > 0 | VD1 = 0 − ( −5 + 10000 I D 3 ) = −0.467V < 0 30 kΩ VD2 = 5 − (11.4 − 10000 I D 3 ) = −0.933V < 0 D1 : ( 0 A, − 0.467 V ) D2 : ( 0 A, − 0.933 V ) D3 : ( 547 µ A, 0 V ) 9