My diving instructor claimed that the amount of energy required to fill a scuba
ID: 1623479 • Letter: M
Question
Explanation / Answer
Consider a box. It is is h high and has a top and bottom area of A units.
It is full of gas at pressure p and the height h is variable so as h varies so p varies.
The outside pressure is Pa
Let's be simplistic and use Charles's law that states p*v is constant for a given volume of gas provided the temperature stays constant.
So for a given starting pressure P0 and volume V0 we can deduce any later pressure as p = P0*V0 / v
But since the volume is v=h*A we can reason that
p = P0*V0/(h*A)
Now if we let the gas expand just a teeny bit (a distance dh) the work done (dW) is the distance moved multiplied by the force applied
Force is (p - Pa) * A so
dW = ((P0*V0)/(h*A) - Pa) * A * dh
dW = (P0*V0/h - Pa*A) * dh
So now we want to sum all the dW for all the dh for a range of h from our initial pressure/volume until the pressure reaches Pa.
So the initial limit is based on v=h*A giving h = V0/A
and the closing limit is based on p = P0 * V0 / (h * A) so for p=Pa we get h = P0*V0/(Pa * A)
W = integrate((P0*V0/h - Pa*A) * dh) using limits above
W = P0*V0 * integrate(h-1*dh) - A * Pa * integrate(dh)
W = P0*V0 * [logeh] - A * Pa * [h]
substitute in the initial and final values for h
W = P0*V0 * (loge(P0*V0/(A * Pa)) - loge(V0/A)) - A * Pa * (P0*V0/(A * Pa) - V0/A)
since log(a)-log(b) = log(a/b) we can simplify this a bit
W = P0*V0 * (loge((P0*V0/(A*Pa))/(V0/A)) - A*Pa*(P0*V0/(A*Pa)-V0/A)
now it all comes together with basic algebra
W = P0*V0 * loge(P0/Pa) - P0*V0 + Pa*V0
W = P0*V0 * (loge(P0/Pa)-1) + Pa*V0
So for the given data, W=888,101 J
For raising a 15o ton vehicle work done= mgh=150000*9.81*h
So equationg both, h= 0.6 m
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