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zloy xaker [14]
3 years ago
9

A diffuser in a jet engine is designed to decrease the kinetic energy of the air entering the engine compressor without any work

of heat interactions. Calculate the velocity at the exit of a diffuser when air at 100 kPa and 30°C enters it with a velocity of 350 m/s and the exit state is 200 kPa and 90°C. For calculation, assume the specific heat is constant at the average temperature of the inlet and the exit.
Physics
1 answer:
nadya68 [22]3 years ago
7 0

Answer:

Explanation:

Given ;  P1 = 100 kPa, T1 = 30°C, T2 = 90°C, P2 = 200 kPa, V1 = 350 m/s

From energy conservation at inlet and outlet

h1 + (1/2)v1² = h2 + (1/2)v2²

CpT1 + (1/2)v1² = CpT2 + (1/2)v2²

.718(90-30) x 103= 0.5x (350²-v2²)

velocity at the exit of a diffuser ;  V2=190.63m/s

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Answer:

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Explanation:

In order to solve this problem, we need to start by drawing a diagram of the given situation. (See attached image).

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V_{cone}=\frac{1}{3} \pi r^{2}h

notie the volume formula has two unknowns or variables, so we need to relate the radius with the height with an equation we can use to rewrite our volume formula in terms of either the radius or the height. Since in this case the problem wants us to find the rate of change over time of the height of the gasoline tank, we will need to rewrite our formula in terms of the height h.

If we take a look at a cross section of the cone, we can see that we can use similar triangles to find the equation we are looking for. When using similar triangles we get:

\frac {r}{h}=\frac{4}{5}

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\frac{dV}{dt}= \frac{16}{75} \pi (3)h^{2} \frac{dh}{dt}

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\frac{dV}{dt}= \frac{16}{25} \pi h^{2} \frac{dh}{dt}

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So we get:

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ELEN [110]

Answer:

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