ASVAB Electronics Information Practice Test 734846 Results

Your Results Global Average
Questions 5 5
Correct 0 3.41
Score 0% 68%

Review

1

In an electronic circuit, a thermocouple can be used to:

42% Answer Correctly

open or close a circuit at a designated temperature

keep the circuit at a designated safe temperature

increase or decrease the temperature of a component in the circuit

link the temperature of one component in the circuit to that of another component in the circuit


Solution

A thermocouple is a temperature sensor that consists of two wires made from different conductors. The junction of these two wires produces a voltage based on the temperature difference between them and can be used like a switch to open or close the circuit at a designated temperature.


2

Longer the electrical wires mean _______________ voltage drop.

73% Answer Correctly

complete

greater

diminishing

lesser


Solution

Electrical wires have a certain amount of resistance per foot. A longer wire means more resistance and a greater voltage drop.


3

The hertz is a unit of measurement for:

81% Answer Correctly

inductance

energy

power

frequency


Solution

The hertz is a unit of measurement for frequency.


4

Electrical power is measured in:

74% Answer Correctly

amperes

coulombs

volts

watts


Solution

Electrical power is measured in watts (W) and is calculated by multiplying the voltage (V) applied to a circuit by the resulting current (I) that flows in the circuit: P = IV. In addition to measuring production capacity, power also measures the rate of energy consumption and many loads are rated for their consumption capacity. For example, a 60W lightbulb utilizes 60W of energy to produce the equivalent of 60W of heat and light energy.


5

This circuit diagram represents a(n):

69% Answer Correctly

series circuit

series-parallel circuit

open circuit

parallel circuit


Solution

A series circuit has only one path for current to flow. In a series circuit, current (I) is the same throughout the circuit and is equal to the total voltage (V) applied to the circuit divided by the total resistance (R) of the loads in the circuit. The sum of the voltage drops across each resistor in the circuit will equal the total voltage applied to the circuit.