can the highway system accommodate a north–south flow of 7,000 vehicles per hour? no maximum flow of vehicles per hour = fill in the blank 50

True, in a pipelined implementation, instruction2 can be fetched simultaneously with the register read of instruction1. This is because pipelining allows multiple instructions to be executed at different stages concurrently, thus improving the overall performance and throughput of the processor.

True, in a pipelined implementation, instruction2 can be fetched simultaneously with the reg read of instruction1. This is because pipelining allows for multiple instructions to be executed concurrently by breaking down the instruction processing into multiple stages. Each stage can handle a different instruction, allowing for overlapping of instruction processing and thus increasing overall performance.

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Cavitation is the formation and collapse of gaseous cavities, while the situation described in the statement is a crack in the suction line.

1. Cavitation occurs when there is low pressure at the suction side of the pump, causing the formation of bubbles that collapse when they reach the high-pressure area, causing damage to the pump.
2. The statement is incorrect because the pressure unit of inches of mercury (in. Hg) cannot be directly converted to pressure units of psi or bar. However, if the pump manufacturer's specification is in inches of mercury, it can be converted to pressure units using a conversion table. If the atmospheric pressure is higher than the manufacturer's specification, it may be necessary to reduce the pressure at the suction side of the pump to avoid damage from cavitation.
3. The high shrieking sound and lower flow rate indicated by the gauge could be due to cavitation, as indicated by the last sentence of the statement. The pump may not be able to handle the required flow rate due to the low pressure at the suction side caused by cavitation. The pressure at the suction side may need to be increased or the pump may need to be replaced with one that can handle the required flow rate.
4. The problem with the pump could be due to design issues or incorrect suction line sizing, which can cause cavitation. The flow rate through the suction line may be the same, but if the pump is not designed to handle the specific conditions of the system, it can lead to cavitation and damage to the pump.
5. The heavier oil may be causing the pump to make noise and not last as long because it may be too thick for the pump and not providing adequate lubrication. The heavier oil may also be causing increased resistance, which can lead to overheating and damage to the pump. A lighter oil or one that is recommended by the pump manufacturer should be used instead.

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The approximate resistance of a 40-lightbulb can be calculated using the formula V = IR, where V is the voltage, I is the current, and R is the resistance.

In this case, the voltage provided to the bulb is given by u(t) = 200%/2 cos(100mt). To simplify this expression, we can first convert 200% to 2, since 200% equals twice the original value. Then, we can divide 2 by 2 to get 1 and multiply it by the maximum voltage of the waveform, which is 2. This gives us a maximum voltage of 2V.

Next, we need to find the current flowing through the bulb. To do this, we can use Ohm's law, which states that I = V/R, where I is the current, V is the voltage, and R is the resistance. In this case, we can rearrange the formula to get R = V/I, and substitute the values we have:

R = 2V / I

To find the current, we need to know the expression for the current waveform. Since the waveform is not given in the question, we can assume that the bulb is an ideal resistor, which means that the current waveform will be the same as the voltage waveform, but with a different amplitude. Specifically, the amplitude of the current waveform will be V/R, since V = IR.

Therefore, the current waveform can be expressed as i(t) = 2/R cos(100mt), and the waveform's amplitude is 2/R. We can substitute this expression into the formula for R, and solve for R:

R = 2V / i_max = 2V / (2/R) = R^2V / 2

Solving for R, we get:

R = sqrt(2V / i_max) = sqrt(2*2V / 2) = sqrt(2V) = sqrt(2*2) = 2

Therefore, the approximate resistance of the 40 lightbulbs is R = 400 Ω (within three significant digits).

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The force (lb) required to fu compress the spring is most nearly 71.

To find the force required to fully compress the spring, we can use the formula for the spring force:
F = kx
where F is the force applied, k is the spring constant, and x is the displacement from the free length.
First, let's find the mean diameter of the spring:
d = 0.1055 in.
The mean diameter is the average of the wire diameter and the diameter of the coil, so:
mean diameter = d + 10/3 * d = 1.485 in.
Next, let's find the spring constant:
k = 20 lb/in.
Finally, let's find the displacement from the free length when the spring is fully compressed:
total length of spring = 3 in. + 10 coils * mean diameter = 18.85 in.
fully compressed length of spring = total length of spring - 10 coils * wire diameter = 15.39 in.
displacement from free length = 3 in. - 15.39 in. = -12.39 in.
Note that the negative sign indicates that the displacement is in the opposite direction of the spring's natural length.
Now we can use the formula for spring force to find the force required to fully compress the spring:
F = kx = 20 lb/in. * (-12.39 in.) = -247.8 lb.
The negative sign indicates that the force is in the opposite direction of the applied force, so the actual force required to compress the spring is:
F = |-247.8 lb.| = 247.8 lb.

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