Your Results | Global Average | |
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Questions | 5 | 5 |
Correct | 0 | 3.45 |
Score | 0% | 69% |
4 | |
7 | |
12 | |
5.5 |
The mechanical advantage of a gear train is its gear ratio. The gear ratio (Vr) is the product of the gear ratios between the pairs of meshed gears. Let N represent the number of teeth for each gear:
Vr = \( \frac{N_1}{N_2} \) \( \frac{N_2}{N_3} \) \( \frac{N_3}{N_4} \) ... \( \frac{N_n}{N_{n+1}} \)
In this problem, we have three gears so the equation becomes:
Vr = \( \frac{N_1}{N_2} \) \( \frac{N_2}{N_3} \) = \( \frac{24}{10} \) \( \frac{10}{6} \) = \( \frac{24}{6} \) = 4
An object's resistance to changes in direction is known as:
mass |
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weight |
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kinetic energy |
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inertia |
The more mass a substance has the more force is required to move it or to change its direction. This resistance to changes in direction is known as inertia.
The steering wheel of a car is an example of which type of simple machine?
block and tackle |
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first-class lever |
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fixed pulley |
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wheel and axle |
A wheel and axle uses two different diameter wheels mounted to a connecting axle. Force is applied to the larger wheel and large movements of this wheel result in small movements in the smaller wheel. Because a larger movement distance is being translated to a smaller distance, force is increased with a mechanical advantage equal to the ratio of the diameters of the wheels. An example of a wheel and axle is the steering wheel of a car.
15.75 ft. | |
7 ft. | |
7.88 ft. | |
5.25 ft. |
To balance this lever the torques at the green box and the blue arrow must be equal. Torque is weight x distance from the fulcrum so the equation for equilibrium is:
Rada = Rbdb
where a represents the green box and b the blue arrow, R is resistance (weight/force) and d is the distance from the fulcrum.Solving for db, our missing value, and plugging in our variables yields:
db = \( \frac{R_ad_a}{R_b} \) = \( \frac{70 lbs. \times 9 ft.}{40 lbs.} \) = \( \frac{630 ft⋅lb}{40 lbs.} \) = 15.75 ft.
For a hydraulic system, pressure applied to the input of the system will increase the pressure in which parts of the system?
the portions of the system at an altitude above the input |
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the portions of the system at an altitude below the input |
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everywhere in the system |
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all of these are correct |
Pascal's law states that a pressure change occurring anywhere in a confined incompressible fluid is transmitted throughout the fluid such that the same change occurs everywhere. For a hydraulic system, this means that a pressure applied to the input of the system will increase the pressure everywhere in the system.