Answer:
A). 28 [tex]\frac{kJ}{s}[/tex] at 25 cycles per second
B). 100 kJ
C). 6500s or 180.3 minutes or 1.8 hr
Explanation:
Four-cylinder= 280J cycleper cylinder
Efficiency =28%
A).
[tex]W=280J (\frac{1}{cycle}*\frac{1}{cylinder} *\frac{4cylinder}{1} *\frac{25cycle}{s} )\\W=280J*100\frac{1}{s}\\ W=28000\\W=20x10^{3} = 28kJ[/tex]
W=28[tex]\frac{kJ}{s}[/tex]
B).
The efficiency is 28% and have a work of 28k0J
so:
If 20kJ⇒28%
xkJ ⇒ 100%
[tex]100%*28kJ=xkJ*28%\\xkJ=\frac{100*28}{28}\\ x=100kJ[/tex]
Total heat is 100kJ
C).
130MJ per gallon
[tex]t_{gallon}=\frac{130MJ}{20\frac{kJ}{s} }= \frac{130x10^{6} }{20x10^{3}}=6500s\\ 6500s*\frac{1minute}{60s}*\frac{1hr}{60minute}=1.8hr[/tex]
