In a capillary rise, find the heat developed taking all standard notations as described in the foregoing section.A. `Q=(2piTcos^(2)theta)/(rhog)`B. `Q=(2pir^(2)Tcos^(2)theta)/(rhog)`C. `Q=(2piT^(2)sin^(2)theta)/(rhog)`D. `Q=(2piT^(2)cos^(2)theta)/(rhog)`

In a capillary rise, find the heat developed taking all standard notat

1.	In a capillary rise, find the heat developed taking all standard notations as described in the foregoing section.A. `Q=(2piTcos^(2)theta)/(rhog)`B. `Q=(2pir^(2)Tcos^(2)theta)/(rhog)`C. `Q=(2piT^(2)sin^(2)theta)/(rhog)`D. `Q=(2piT^(2)cos^(2)theta)/(rhog)`
Answer» Correct Answer - D As the liquid rises, positive work is done by surface tension in pulling the liquid up by a distance h which is given as `W_(ST)=F_(y)h` where `F_(y)=(Tcostheta)2pir` `W_(gr)=-DeltaU=mgy_(CM)`, where `Y_(CM)=(h)/(2)` and `m=(pir^(2)h)rho` Then, `DeltaU=(pir^(2)rhogh^(2))/(2)` where `h=(2Tcostheta)/(rhogr)` This gives applying first law of thermodynamics, the heat dissipated Q can be gives as `W_(ST)=Q+DeltaU` From the above equations, we have `Q=(2piT^(2)cos^(2)theta)/(rhog)`

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In a capillary rise, find the heat developed taking all standard notations as described in the foregoing section.A. `Q=(2piTcos^(2)theta)/(rhog)`B. `Q=(2pir^(2)Tcos^(2)theta)/(rhog)`C. `Q=(2piT^(2)sin^(2)theta)/(rhog)`D. `Q=(2piT^(2)cos^(2)theta)/(rhog)`

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