Lecture 5 (46)

FORCES ARE VECTORS
THEREFORE WE NEED
TO USE THE
TECHNIQUES OF
VECTOR ALGEBRA

EQUILIBRIUMEQUATIONS
CONDITIONSOFEQUILIBRIUM
STUDY THE EQUILIBRIUM OF 2 D FORCE SYSTEMS

Only ONE unknownOnly ONE unknown (Force component)(Force component) can be foundcan be found

Example:Example:
P
Determine the value of the force P so as toDetermine the value of the force P so as to
satisfy the equilibrium?satisfy the equilibrium?
F 0 -350+250-80+P=0 P=180 kN
x
+
→ = →∑

Example
Consider the particle subjected to two forces
 Assume unknown force F acts to the right for
equilibrium
∑Fx = 0 ; + F + 10N = 0
F = -10N
 Force F acts towards the left for equilibrium

F1
Example:
If the stepped bar is in equilibrium find the force F1.
Resultant of Collinear Forces

A particle when is subjected to coconcurrentncurrent forcesforces in the x-y
plane its equilibrium condition equation can be written as

 ΣFx i + ΣFy j = 0
Both of these vector equations above to be valid, implies that
both the x and the y components should be equal to zero. Hence,
 +→ ΣFx = 0 F1x + F2x + ….. = 0
 +↑ ΣFy = 0 F1y + F2y + ….. = 0
Both algebraic sums equal to zero.
∑ = 0F

Only TWO unknowns can be foundOnly TWO unknowns can be found
2D2D CConcurrentoncurrent at a point Fat a point Forceorce SSystemystem
‘‘CoplanarCoplanar CConcurrentoncurrent at a point Fat a point Forcesorces’’

∑ = 0F

0=∑ xF 0=∑ yF
0=+ ∑∑ jFiF yx

andand
TwoTwo Force componentForce component unknownunknownss cancan
be foundbe found
CoplanarCoplanar CConcurrentoncurrent at a point Fat a point Forcesorces

• Resolve the given forces into i and j
components and apply the equilibrium
+→ ∑F∑Fxx = 0= 0
+↑ ∑F∑Fyy = 0= 0
• Scalar equations of equilibrium
require that the algebraic sum
of the x and y components to
equal to zero.
Only TWO unknowns can be foundOnly TWO unknowns can be found!!

Determine the magnitudes of F1 and F2 for
equilibrium. Set θ=60°.
Example:

FF11=1.827 kN F=1.827 kN F22=9.596 kN=9.596 kN
Only TWO unknowns can be foundOnly TWO unknowns can be found

Example: (T)
53°
24°

Example
Determine the tension in
cables AB and AD for
equilibrium of the 250kg
engine.

SINCE the mass of the
engine is given i.e. unit is
‘kg’ (scalar) and not the
weight (FORCE)
the calculations should be
corrected to a vector having
a unit of Newton.
(mass * gravity )

Procedure for Analysis
1. Free-Body Diagram
- Establish the x, y axes in any suitable
orientation
- Label all the unknown and known forces
magnitudes and directions
- Sense of the unknown force can be
assummed

Procedure for Analysis
2. Equations of Equilibrium
- Apply the equations of equilibrium
+→ ∑Fx = 0 +↑ ∑Fy = 0
- Components are positive if they are
directed along the positive axis and
negative, if directed along the negative
axis

Solution
FBD at Point A
- Initially, two forces acting, forces
of cables AB and AD
- Engine Weight [W=m.g]
= (250kg)(9.81m/s2
)
= 2.452 kN supported by cable CA
- Finally, three forces acting, forces
TB and TD and engine weight
on cable CA
FBD of the ring AFBD of the ring A

Solution
+→ ∑Fx = 0; TB cos30° - TD = 0
+↑ ∑Fy = 0; TB sin30° - 2.452 = 0
Solving,
TB = 4.904 kN
TD = 4.247 kN
*Note: Neglect the weights of the cables since they
are small compared to the weight of the engine
FBD of the ring AFBD of the ring A

Example
If the sack at A has a weight
of 20 N , determine
the weight of the sack at B
and the force in each cord
needed to hold the system in
the equilibrium position shown.

Solution
TEC
TEC

FBD of the ring EFBD of the ring E
FBD of the ring CFBD of the ring C
TEC

Solution
FBD at Point E.
Three forces acting,
forces of cables EG
and EC and the weight
of the sack on cable EA
FBD of the ring EFBD of the ring E

Solution
Use equilibrium at the ring to determine tension in
CD and weight of B with TEC known
+→ ∑Fx = 0; TEG sin30° - TECcos45° = 0
+↑ ∑Fy = 0; TEG cos30° - TECsin45° - 20 = 0
Solving,
TEC = 38.637 N
TEG = 54.641 N

FBD of the ring EFBD of the ring EFBD of the ring CFBD of the ring C

Solution
FBD at Point C
Three forces acting, forces by cable CD
and EC (known) and
weight of sack B on
cable CB.
FBD of the ringFBD of the ring CC

Solution
+→ ∑Fx = 0; 38.637cos45° - (4/5)TCD = 0
+↑ ∑Fy = 0; (3/5)TCD + 38.637sin45° – WB = 0
Solving,
TCD = 34.151 N
WB = 47.811 N
*Note: components of TCD are proportional to the slope
of the cord by the 3-4-5 triangle

Example: (T)
The 50-kg homogenous smooth sphere rests on the 30°
incline A and bears against the smooth vertical wall B.
Calculate the contact forces at A and B?

FBD of the sphereFBD of the sphere
30°
A
B
30°
A
B
30°
RRAA
RRBB
CC
WW
Example:

y A A
+
x B B
W 50x9.81 490.5
F 0 F cos30 -490.5= 0 F 566.381 N
(assumed direction correct)
F 0 566.381sin30 -F 0 F 283.191 N
+
= =
↑ = ° ⇒ =
→ = ° = ⇒ =
∑
∑
(assumed direction correct)
Example:
N

STUDY THE EQUILIBRIUM OF 3-FORCE SYSTEMS

STUDY THE EQUILIBRIUM OF 3-FORCE SYSTEMS
EQUILIBRIUMEQUATIONS
CONDITIONSOFEQUILIBRIUM
3 unknowns3 unknowns

A particle when is subjected to coconcurrentncurrent forcesforces in the x-y-z
axes, its equilibrium condition equation can be written as

 ΣFx i + ΣFy j + ΣFz k = 0
Both of these vector equations above to be valid, implies that the
x, the y and the z components be equal to zero separately.
Hence,
 +→ ΣFx = 0 F1x + F2x + ….. = 0
 +↑ ΣFy = 0 F1y + F2y + ….. = 0
 + ΣFz = 0 F1z + F2z + ….. = 0
∑ = 0F

Only TOnly THREEHREE unknowns can be foundunknowns can be found
Three-D Force Systems
Concurrent at a point

When the system of external 3 dimensional
forces acting on an object in equilibrium:
Σ F = (ΣFx) i + (ΣFy) j + (ΣFz) k = 0
so each component of this equation must
be determined separately:
ΣΣFFxx =0,=0, ΣΣFFyy =0=0,, ΣΣFFzz =0.=0.

• Resolve the given forces into i, j and k
components and apply the equilibrium
+→ ∑F∑Fxx = 0= 0
+↑ ∑F∑Fyy = 0= 0
+ ∑F∑Fzz = 0= 0
• Equations of equilibrium require that the algebraic
sum of x, y and z components must be equal to
zero.
TTHREEHREE unknowns can be foundunknowns can be found!!

The 100-kg cylinder is
suspended from the
ceiling by cables
attached at points B, C
and D.
What are the tensions in
cables AB, AC & AD ?
Note that:
the gravity effect is in –the gravity effect is in –veve
y direction.y direction.
Example:

Solution Strategy:
•Isolate the part of the cable system near point A,
•Obtain a free-body diagram subjected to forces due to the
tensions in the cables.
•Because the sums of the external forces in the x, y, and z
directions must IN BALANCE, obtain 3 INDEPENDENT
equations for the three unknown cables that are in tension.
•To do so, express the forces exerted by the tensions in
terms of their components.

Drawing the Free-Body Diagram and Applying the Equations

• Isolating the part of the cable system near point A and
show the forces exerted by the tensions in the cables.
The sum of the forces must equal zero:
Σ F = TAB + TAC + TAD − (981 N)j = 0
• Writing the Forces in Terms of their Components
• Obtain a unit vector that has the same direction as the
force TAB by dividing the position vector rAB from point
A to point B by its magnitude.
rAB = (xB − xA)i + (yB − yA)j + (zB − zA)k
= 4i + 4j +2k (m)

Solution
kji
r
r
e 333.0667.0667.0 ++==
AB
AB
ABλ AB

Expressing the force TAB in terms of its components by
writing it as the product of the tension TAB in cable AB
and the unit vector eAB...
TAB = TABeAB == TAB (0.667 i + 0. 667 j + 0.333 k)
Express the forces TAC and TAD in terms of their
components using the same procedure.
TAC = TAC (−0.408 i + 0.816 j − 0.408 k)
TAD = TAD (−0.514 i + 0.686 j + 0.514k )
λAB =
λAB

Substituting these expressions into the equilibrium equation
TAB + TAC + TAD − (981 N)j = 0
Because the i, j, and k components must each equal to
zero, this results in three equations of:
i-component: 0.667TAB − 0.408TAC − 0.514TAD = 0
j-component: 0.667TAB + 0.816TAC + 0.686TAD = 981
k-component: 0.333TAB − 0.408TAC + 0.514TAD = 0
Solving these 3 equations successively, the tensions are:
TAB = 519 N
TAC = 636 N

Example:

Lecture 5 (46)

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