B W D 2a a За 4a W = 30 KN. RAX. 4 P: 30 KN. a = um 30KN P с 4m; : . B 30 KN 4m 6m 2m -RAY ≤ FX = 0 + - RAX +30=0 RAX SFY = O = - 30 KN RBY Diagonal √√(2)²+(4)2 = 4.47 m =2√5 Angles of diagonal member Slope ya = 2 7 2a tan 0 = 2 ≤ M @ c = 0 + VASO tan-1 (2) RAY (6) (6) + 30 (4)"= RAX 30 (4) GRAY 6 Total SFy = 30 + + W 30 - RAY = Roy 30 ( 4 ) = 0 120 = = 20 kN a + 9V- a 30 7 20 = RCY AONE RcY EM @ A = D = X4.02 -RBY (6) - 30 (2) + 30 (4) 99207 729N8 MU 1-8 = 0.02 mp.s - RBY (6) = -60 •BBY = PRO KN

Structural Analysis
6th Edition
ISBN:9781337630931
Author:KASSIMALI, Aslam.
Publisher:KASSIMALI, Aslam.
Chapter2: Loads On Structures
Section: Chapter Questions
Problem 1P
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Related questions
Question

The pin-jointed plane frame (truss) in the picture below use the method of virtual work to determine the vertical deflection at joint D and the horizontal deflection at joint B.  All members of the truss have a constant EA of 1×105kN.

I have attempted the first half of the question however struggling at the second part. Actual working out of the joint section AC,BD, CD  and the deflection table of each member for better comprehension. I do NOT need written do list but the calculation please!

I will upvote, if answer is detailed (calculations)  Thank you 

random picks for loads and dimensions:W = 30 kN P= 30 kN a= 1m

B
W
D
2a
a
За
4a
Transcribed Image Text:B W D 2a a За 4a
W = 30 KN.
RAX.
4
P: 30 KN.
a = um
30KN P
с
4m;
:
.
B
30 KN
4m
6m
2m
-RAY
≤ FX = 0 +
-
RAX +30=0
RAX
SFY
= O
=
- 30 KN
RBY
Diagonal
√√(2)²+(4)2
= 4.47 m
=2√5
Angles of diagonal member
Slope ya = 2
7
2a
tan 0 = 2
≤ M @ c = 0 + VASO tan-1 (2)
RAY (6)
(6) + 30 (4)"=
RAX
30 (4)
GRAY
6
Total SFy = 30 + +
W
30 - RAY = Roy
30 ( 4 ) = 0
120
=
= 20 kN a +
9V-
a
30
7
20 = RCY
AONE RcY
EM @ A = D
=
X4.02
-RBY (6) - 30 (2) + 30 (4)
99207 729N8 MU
1-8
= 0.02
mp.s - RBY (6) = -60
•BBY = PRO KN
Transcribed Image Text:W = 30 KN. RAX. 4 P: 30 KN. a = um 30KN P с 4m; : . B 30 KN 4m 6m 2m -RAY ≤ FX = 0 + - RAX +30=0 RAX SFY = O = - 30 KN RBY Diagonal √√(2)²+(4)2 = 4.47 m =2√5 Angles of diagonal member Slope ya = 2 7 2a tan 0 = 2 ≤ M @ c = 0 + VASO tan-1 (2) RAY (6) (6) + 30 (4)"= RAX 30 (4) GRAY 6 Total SFy = 30 + + W 30 - RAY = Roy 30 ( 4 ) = 0 120 = = 20 kN a + 9V- a 30 7 20 = RCY AONE RcY EM @ A = D = X4.02 -RBY (6) - 30 (2) + 30 (4) 99207 729N8 MU 1-8 = 0.02 mp.s - RBY (6) = -60 •BBY = PRO KN
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