Calculating Gasoline Needed for 50.0hp Heat Engine Output

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ChunkymonkeyI
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Homework Statement


When gasoline(density=.7297 g/cm^3) is burned, it gives off 5.00 times 10^4 J/g(its heat of combustion). If a car's engine is 25% efficient, how much gasoline per hour must it burn in order to develop an output of 50.0hp. 1hp=746 W


Homework Equations


P=W/t
e=W/Qh

The Attempt at a Solution


I believed I was solving for time so what I did was I used P=W/t
then I rearranged it to t=W/P and plugged 5.00 times 10^4 for w and 746 times 50 for P and it didn't get me the right answer because the answer is 10.7 kg/h
 
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Hi ChunkymonkeyI! :smile:
ChunkymonkeyI said:
… I used P=W/t
then I rearranged it to t=W/P and plugged 5.00 times 10^4 for w and 746 times 50 for P and it didn't get me the right answer because the answer is 10.7 kg/h

erm :redface: … what about your 25% efficiency? :wink:
 
tiny-tim said:
Hi ChunkymonkeyI! :smile:erm :redface: … what about your 25% efficiency? :wink:[/QUOTE

Do I use the 25 percent efficiency to find W and if so what do I do after that lol?
 
Last edited:
ChunkymonkeyI said:
Idk what to do with the 25 percent efficiency please help me!

aha!

everything in an exam question is there for a reason!

if you're totally stuck, just try either multiplying the answer by 0.25 (ie 25%), or dividing by it …

50% chance you'll get full marks! :biggrin:

in fact, the "car's engine is 25% efficient" means that the power output (to the wheels) is only 25% of the power input (from the gasoline) :wink:
 
tiny-tim said:
aha!

everything in an exam question is there for a reason!

if you're totally stuck, just try either multiplying the answer by 0.25 (ie 25%), or dividing by it …

50% chance you'll get full marks! :biggrin:

in fact, the "car's engine is 25% efficient" means that the power output (to the wheels) is only 25% of the power input (from the gasoline) :wink:

Lol but I want to learn how to do the steps can u please show me them it's bothering me that I can't solve this physics heat engine problem pleaaaaaaaaaaase
 
tiny-tim said:
the power output (to the wheels) is only 25% of the power input (from the gasoline) …

so put that into the equation :smile:

What equation
 
(just got up :zzz: …)
ChunkymonkeyI said:
What equation

this one :smile:
ChunkymonkeyI said:
… I used P=W/t
then I rearranged it to t=W/P and plugged 5.00 times 10^4 for w and 746 times 50 for P …
 
tiny-tim said:
(just got up :zzz: …)


this one :smile: …[/QUOT

But I don't know the values that I need to solve this problem can u please just show me the steps I'm not trying 2 cheat or anything I just want 2 learn how 2 do this