(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?
A glass flask whose volume is 1000 cm³ at a temperature of
0.300 °C is completely filled with mercury at the same
temperature. When the flask and mercury are warmed together
to a temperature of 52.0 °C, a volume of 8.10 cm³ of
mercury overflows the flask.
Part A
If the coefficient of volume expansion of mercury is ẞHg = 1.80x104/K, compute glass. the coefficient of volume expansion of the glass.
Express your answer in inverse kelvins.
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ΜΕ ΑΣΦ
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/K
Sam is trying to move a dresser of mass mm and dimensions of length LL and height HH by pushing it with a horizontal force F⃗ F→ applied at a height hh above the floor. (Figure 1)The coefficient of kinetic friction between the dresser and the floor is μkμk and gg is the magnitude of the acceleration due to gravity. The ground exerts upward normal forces of magnitudes NPNP and NQNQ at the two ends of the dresser. Note that this problem is two dimensional.
question about how the author got the equation in the red box from, as it makes no sense
Chapter 20 Solutions
Physics for Science and Engineering With Modern Physics, VI - Student Study Guide
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The Second Law of Thermodynamics: Heat Flow, Entropy, and Microstates; Author: Professor Dave Explains;https://www.youtube.com/watch?v=MrwW4w2nAMc;License: Standard YouTube License, CC-BY