(II) An ideal heal pump is used to maintain the inside temperature of a house T in = 22°C when the outside temperature is T out . Assume that when it is operating, the heat pump does work at a rate of 1500 W. Also assume that the house loses heat via conduction through its walls and other surfaces at a rate given by (650 W/C°) ( T in – T out ) ( a ) For what outside temperature would the heat pump have to operate at all times in order to maintain the house at an inside temperature of 22°C? ( b ) If the outside temperature is 8ºC, what percentage of the time does the heat pump have to operate in order to maintain the house at an inside temperature of 22°C?
(II) An ideal heal pump is used to maintain the inside temperature of a house T in = 22°C when the outside temperature is T out . Assume that when it is operating, the heat pump does work at a rate of 1500 W. Also assume that the house loses heat via conduction through its walls and other surfaces at a rate given by (650 W/C°) ( T in – T out ) ( a ) For what outside temperature would the heat pump have to operate at all times in order to maintain the house at an inside temperature of 22°C? ( b ) If the outside temperature is 8ºC, what percentage of the time does the heat pump have to operate in order to maintain the house at an inside temperature of 22°C?
(II) An ideal heal pump is used to maintain the inside temperature of a house Tin = 22°C when the outside temperature is Tout. Assume that when it is operating, the heat pump does work at a rate of 1500 W. Also assume that the house loses heat via conduction through its walls and other surfaces at a rate given by (650 W/C°) (Tin–Tout) (a) For what outside temperature would the heat pump have to operate at all times in order to maintain the house at an inside temperature of 22°C? (b) If the outside temperature is 8ºC, what percentage of the time does the heat pump have to operate in order to maintain the house at an inside temperature of 22°C?
No chatgpt pls will upvote Already got wrong chatgpt answer
3.63 • Leaping the River II. A physics professor did daredevil
stunts in his spare time. His last stunt was an attempt to jump across
a river on a motorcycle (Fig. P3.63). The takeoff ramp was inclined at
53.0°, the river was 40.0 m wide, and the far bank was 15.0 m lower
than the top of the ramp. The river itself was 100 m below the ramp.
Ignore air resistance. (a) What should his speed have been at the top of
the ramp to have just made it to the edge of the far bank? (b) If his speed
was only half the value found in part (a), where did he land?
Figure P3.63
53.0°
100 m
40.0 m→
15.0 m
Please solve and answer the question correctly please. Thank you!!
Chapter 20 Solutions
Physics for Scientists and Engineers with Modern Physics
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