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प्रश्न
A copper calorimeter of heat capacity 32 J/°C contains 100 g of oil at 30°C. 80 g of a metal of sp. heat cap. 0.12 J/g°C at 90°C is dropped into the oil and final temperature is 35°C. Calculate the sp. heat cap. of the oil.
संख्यात्मक
उत्तर
Heat lost by metal = Heat gained by calorimeter and oil
m3C3(x-z) = m1C1(z-y) + mzCz(z-y)
where, m1C1 = 32 J/°C
m2 = 100 g
y = 30°c
m3 = 80 g
C3 = 0.12 J/g°C
x = 90°C
z = 35°C
⇒ 80 x 0.12 x (90 - 35) = 32x (35 - 30) + l00 x C2 x (35 - 30)
⇒ 528 = 160 + 500C2
⇒ C2 = 0.736 J/ g°c
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