Constant specific heat at constant pressure c_p = .460 J/kg, degree C Thermal co

Question

Constant specific heat at constant pressure c_p = .460 J/kg, degree C Thermal conductivity k = 16.3 W/m degree C In the same mechatronic robotic manufacturing company in problem number one above, LARGE brass plates as it relates to its GEOMETRICAL LENGTH approximately 2L = 4 cm as it relates to its GEOMETRICAL WIDTH thick are utilized as press plates the forming of special robotic parts for the robotic systems. The large brass plates are initially at a uniform temperature of T_1 = 20 degree C and are heated by passing them through an oven that is maintained at T_infinity = 500 degree C. The plates remain in the oven for a period of time approximately t = ten (10) minutes for metallurgical reduction of the mechanical properties. You are to determine the following: a. The centerline temperature of the brass plate. b. The surface temperature at x = L which is the half length of the plate which is 2L wide Also recall from class lectures on the Heisler Charts and the Engineering Roadmap concepts I exposed the class to that by definition the following definitions apply; theta = T (x, t) - T, and theta_i = T_i - T_w and theta_0 = T_0 - T_infinity

Explanation / Answer

half thickness of plate=0.02m

1/Bi=k/hL

k=110W/m degree celsius

h=120W/m degree celsius

110/120*0.02

=110/2.4=45.8

tau=alpha t/L^2

alpha=33.9*10^-6m2/s

L=0.02m

t=time=10min=10*60=600 sec

Now tau=33.9*10^-6 *600/(0.02)^2

=33.9*10^-6*600/4*10^-4

=20340*10^-6/4*10^-4

=5085*10^-2

=50.85

Now To-T infinite/T initial-T infinite=0.46

where To=centerline temperature=??

Tinfinite=500degree celsius

Also

1/Bi=K/hL=45.8

x/L=L/L=1

T-Tinfinte/To-Tinfinite=0.99

Therefore T-Tinfintie/Ti-Tinfinite=0.46*0.99

=0.455

T=Tinfinite+0.455(Ti-Tinfinite)=500+0.455(20-500)

=282degree celsius

Therefore surface temperature=282 degree celsius

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