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Question 4.5: In a rapid thermal processing, solid objects are heated or c...

In a rapid thermal processing, solid objects are heated or cooled for a very short time such that the effect of heating or cooling does not penetrate far into the substrate and/or high temperatures are sustained for a short period to avoid
material-property degradation (e.g., segregation of dopants in semiconductors). In a continuous process (as compared to a batch process) thermal processing oven, a large electrically heated plate irradiates upon the integrated-circuit chips
facing it as they move through the oven. This is depicted in Figure (a). Assume that the conveyer-chips and the heater make up a two-surface enclosure. Then the planar chip surface has a view factor to the heater that is unity. The chip surface has areas where the emissivity is large, i.e.,  \epsilon _{r,1} = 1, and areas where the surface emissivity is small, \epsilon _{r,1} = 0.2. Assume that the emissivity nonuniformity would still allow for a two-surface treatment.
(a) Draw the thermal circuit diagram.
(b) For T_{1} = 250^{\circ }C and T_{2} = 900^{\circ }C, determine the surface radiative heat flux q_{r,1-2} to the high and low emissivity portions of the surface.

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(a) The thermal circuit model is shown in Figure (b).

(b) Since A_{r,2} \gg A_{r,1} and F_{1-2} = 1, we use Q_{r,1-2}=A_{r,1}\epsilon _{r,1}[E_{b,1}(T_{1})-E_{b,2}(T_{2})]      for      F_{1-2}=1     with     \frac{A_{r,1}}{A_{r,2}} \simeq 0    or    \epsilon _{r,2}=1 and for q_{r,1-2} = Q_{r,1-2}/A_{r,1}, we have

q_{r,1-2}=\epsilon _{r,1}[E_{b,1}(T_{1})-E_{b,2}(T_{2})]

 

=\epsilon _{r,1}(\sigma _{SB}T_{1}^{4}-\sigma _{SB}T_{2}^{4})

 

=\epsilon _{r,1}\sigma _{SB}(T_{1}^{4}-T_{2}^{4})

We now use the numerical values, and for areas with \epsilon _{r,1} = 1 we have

q_{r,1-2}=1\times 5.670\times 10^{-8}(W/m-K^{4})[(523.15)^{4}(K)^{4}-(1,173.15)^{4}(K)^{4}]

 

q_{r,1-2}=-1.032\times 10^{5}W/m^{2}   for       \epsilon _{r,1}=1 

For \epsilon _{r,1}=0.2  we have

q_{r,1-2}=0.2\times 5.670\times 10^{-8}(W/m-K^{4})[(523.15)^{4}(K)^{4}-(1,173.15)^{4}(K)^{4}]

 

=-2.063\times 10^{4}W/m^{2}
b

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