 
 
 
 
 
 
 
  
 ,
,
 .
Establish the steady-state solution for the
surface coefficients being functions of the wall temperatures Tw1,
Tw2.
.
Establish the steady-state solution for the
surface coefficients being functions of the wall temperatures Tw1,
Tw2.
 
 W/mK.
W/mK.
 C,
C, 
 C.
C.
 
 
 
 -function, for instance
-function, for instance
 
| T: | 0 | 0.1 | 
|  : | 30 | 10 | 
 .
.
It should be noted that the wall temperatures
Tw1<0, Tw2>0, thus 
 ,
,
 .
Once the
surface coefficients become known we can easily compute the heat
resistance
.
Once the
surface coefficients become known we can easily compute the heat
resistance
![\begin{displaymath}\frac{1}{k}=\frac{1}{\alpha_1}+\frac{\mbox{{\it thickness}}}{\lambda}
+\frac{1}{\alpha_2}= 0.1833\,\mbox{[m$^2$ K/W]}
\end{displaymath}](img41.gif) 
![\begin{displaymath}q=k(T_1-T_2)=-245.45\,\mbox{[W/m$^2$ ]}
\end{displaymath}](img42.gif) 
 
 
 
 
 
 
 
