Mechanical Engineering Assignment Solutions

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Added on 2023/06/01

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This document contains solutions to Mechanical Engineering assignments covering topics such as equilibrium conditions, resultant forces, and truss analysis. The solutions are provided using static equilibrium conditions and include free body diagrams and calculations. The bibliography includes references to relevant textbooks.

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Mechanical 1
ENGG150 ASSIGNMENT 2 (MECHANCIAL)
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Mechanical 2
Question 1
Let MA and FR be the moment at point A and resultant force1
Use equilibrium condition.
∑ Fx = -30sin 30o + (26 × 5
13 )
= - 15 + 10
= - 5 kN
Also total forces in y-direction is 0
∑Fy = - (30 cos 30o ) - (26 × 12
13 )
= - 25.9807 – 24
= - 49.9807kN
Calculating the resultant forces
FR =√ ¿ ¿
=√ ¿ ¿
= 50.2302
Getting the angle
tan θ = ∑ Fy
∑ Fx
= (−49.9807
−5 )
Θ = tan-1 (−49.9807
−5 )
1 Alys Holden et al, Structural Design For The Stage (CRC Press, 2nd ed, 2015)

Mechanical 3
θ = 84.28720
Getting moment at point A2
MA = (30 × sin 300 × 0.3) – (30 cos300 × 2) - 45 – (26 × 12
13 × 6) - (26 × 5
13 × 0.3)
= 4.5 – 51.96 – 45 - 144 – 3
= -239.46 kNm
Question 2
a)
b)
∑ Mc = 0 3
(50)( 3
5 ¿(4) + (50)( 4
5 ¿(0.2) – (1000×9.81×10-3 kN)(x) = 0
x = 13.04m
∑ Fx = 0
Cx – (50) ( 4
5 ¿ = 0
Cx = 40 kN
∑ Fy = 0
-Cy + (50) ( 3
5 ¿ – (1000×9.81×10-3) = 0
2 Alys Holden et al, Structural Design For The Stage (CRC Press, 2nd ed, 2015)
3 R. C. Hibbeler, Statics And Mechanics Of Materials (Pearson, 5th ed, 2018)

Mechanical 4
Cy = 20.19 kN
Question 3
a) FBD of the truss is
b)
Using the static equilibrium condition4
∑ Fy = 0
Ro + Rc = 2P ------------------ (1)
∑ M A = 0
9 ×P – RC ×6 – RB ×3 = 0 ----------------- (2)
Using equations 1 and 2;
RB = 6 kN RC = 6 kN Hence ‘-‘ P= 6kN
4 R. C. Hibbeler, Statics And Mechanics Of Materials (Pearson, 5th ed, 2018)

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Mechanical 5
c)
Getting the FE, BC and BE
∑ M B = 0
FFE × 3 + Rc ×3 - P×6 = 0
FFE = ( 6 ×6−6 ×3
3 )
FFE = 6 kN Tensile
∑ M E = 0
FBC ×3 + P×3 = 0
FBC = -6 kN and ‘-‘ P = 6 kN
‘-‘represents an assumed opposite direction5
FBC = 6 kN Compressive
∑ FY = 0
FBE cos 0 – RC + P = 0
FBE cos 0 = 0 ‘-‘ RC = P = 6 kN
FBE = 0
5 R. C. Hibbeler, Statics And Mechanics Of Materials (Pearson, 5th ed, 2018)

Mechanical 6
Bibliography
Hibbeler, R. C., Statics And Mechanics Of Materials (Pearson, 5th ed, 2018)
Holden, Alys et al, Structural Design For The Stage (CRC Press, 2nd ed, 2015)

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