The amount of heat energy that will be extracted when 0.02kg of water vapor condenses to water at 97ºC is [specific heat capacity of water = 4200Jkg\(^{-1}\)k\(^{-1}\), Specific heat of vaporization of water = 2.26 x 10\(^6\)Jkg\(^{-1}\)]

45,452J

45,200J

25,200J

252J

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prestigiousemirate

1 year ago

Q=mL
there is no need for change in temperature as no further detail was given regarding the liquid

Q=0.02×(2.26×10^6)
𝑄=4.52×10^4
Q=4.52×10^4

𝑄=45,200 J

my humble opinion

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The amount of heat energy that will be extracted when 0.02kg of water vapor condenses to water at 97ºC is [specific heat capacity of water = 4200Jkg\(^{-1}\)k\(^{-1}\), Specific heat of vaporization of water = 2.26 x 10\(^6\)Jkg\(^{-1}\)]

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