ASVAB Mechanical Comprehension Practice Test 190965 Results

Your Results Global Average
Questions 5 5
Correct 0 3.20
Score 0% 64%

Review

1 What is the mechanical advantage of this inclined plane if the length of the ramp is 35 ft. and the height of the green box is 7 ft.?
82% Answer Correctly
5.5
8
5
7

Solution

The mechanical advantage (MA) of an inclined plane is the effort distance divided by the resistance distance. In this case, the effort distance is the length of the ramp and the resistance distance is the height of the green box:

MA = \( \frac{d_e}{d_r} \) = \( \frac{35 ft.}{7 ft.} \) = 5


2

The principle of conservation of mechanical energy states that, as long as no other forces are applied, what will remain constant as an object falls?

45% Answer Correctly

potential energy

acceleration

kinetic energy

total mechanical energy


Solution

As an object falls, its potential energy is converted into kinetic energy. The principle of conservation of mechanical energy states that, as long as no other forces are applied, total mechanical energy (PE + KE) of the object will remain constant at all points in its descent.


3

Which of the following will increase the mechanical advantage of this inclined plane?

59% Answer Correctly

increase the force acting at the blue arrow

lengthen the ramp

lower the force acting at the blue arrow

shorten the ramp


Solution

The mechanical advantage (MA) of an inclined plane is the effort distance divided by the resistance distance. In order to increase mechanical advantage, this ratio must increase which means making the effort distance longer and this can be accomplished by lengthening the length of the ramp.


4 If the green box weighs 30 lbs. and is 9 ft. from the fulcrum, how much weight would need to be placed at the blue arrow to balance the lever if the arrow's distance from the fulcrum is 8 ft.?
63% Answer Correctly
0 lbs.
33.75 lbs.
8.44 lbs.
135 lbs.

Solution

To balance this lever the torques on each side of the fulcrum must be equal. Torque is weight x distance from the fulcrum so the equation for equilibrium is:

Rada = Rbdb

where a represents the left side of the fulcrum and b the right, R is resistance (weight) and d is the distance from the fulcrum.

Solving for Rb, our missing value, and plugging in our variables yields:

Rb = \( \frac{R_ad_a}{d_b} \) = \( \frac{30 lbs. \times 9 ft.}{8 ft.} \) = \( \frac{270 ft⋅lb}{8 ft.} \) = 33.75 lbs.


5

Which of the following is not a type of bridge?

74% Answer Correctly

arch

block

cable

truss


Solution

The six basic bridge forms are beam, truss, arch, cantilever, cable, and suspension.