Friday, 14 August 2020

thermodynamics - Does it require more energy to maintain higher temperature in the same environment?



Let's say you have a house with natural gas atmospheric heater water radiator system. Does it matter in terms of natural gas expenditure, if the house is kept at higher or lower temperature, assuming the outside temperature is always lower than inside?


Let's say you have the thermostat which regulates the heating system to keep more or less constant air temperature. You are leaving the house for a number of days. The common wisdom is to turn down the heating system to lower temperature so that it somehow saves energy.


However, unless you can completely turn the system off for the duration of your absence, does it matter, if the thermostat is kept at 15°C or at the 21°C you use when you are in?


Quite possibly I am wrong here, my instinct was that the house loses heat at a more or less constant rate, which is independent of the inside temperature of the house.


At the start of your absence, the inside of house is broadly at 21°C. If you turn the thermostat to 15°C upon leaving, there will be no gas spent during the time house cools down. Then the gas spent to maintain 15°C will be about the same amount as to maintain 21°C. Then when you return, you have to heat the house up and you expend the energy you saved during cooling, to heat the house back up.


Is it right or am I missing some basic physics here? Or perhaps it is dependant on actual temperature differences between inside and outside?



Answer




Is it right or am I missing some basic physics here? Or perhaps it is dependant on actual temperature differences between inside and outside?




I like Gonzonator's answer but want to add a bit of math to it.


The heat loss of the house can be described by Newton's Cooling Law:


$$\frac{\text{d}Q}{\text{d}t}=-uA(T_i-T_o)$$


where:



  • $\frac{\text{d}Q}{\text{d}t}$ is the heat flux. Quite literally it's the power (energy per unit of time) needed to maintain the house at a constant inside temperature of $T_i$. Note that here it is negative because it represents a loss of heat (energy).

  • $u$ is the overall heat transfer coefficient. The lower it is, the better. Low values are obtained with good double (or triple) glazing, cavity insulation, insulating wall paper, loft insulation, etc.

  • $T_i$ and $T_o$ are the inside and outside temperatures respectively. Clearly high $T_i$ and/or low $T_o$ increases heat loss.

  • $A$ is the total surface area of the house exposed, to the elements.



The heat required to bring a house back to the target temperature $T_i$ from a hibernation temperature $T_h$ ($) can also be modeled:


$$\Delta Q=mC(T_h-T_i)$$


where:



  • $\Delta Q$ is the amount of heat energy needed.

  • $m$ is the total mass of the house.

  • $C$ is the specific heat energy of the house.



At the start of your absence, the inside of house is broadly at 21°C. If you turn the thermostat to 15°C upon leaving, there will be no gas spent during the time house cools down. Then the gas spent to maintain 15°C will be about the same amount as to maintain 21°C. Then when you return, you have to heat the house up and you expend the energy you saved during cooling, to heat the house back up.




Here, for an amount of time $\Delta t$, we can compare two quantities:


$$\Delta Q_1=-uA(T_i-T_o)\Delta t$$


and with 'hibernation':


$$\Delta Q_2=-uA(T_h-T_o)\Delta t+mC(T_h-T_i)$$


Whichever of the two quantities is the least negative is the most cost-effective strategy.


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