Concept explainers
The rate of heat transfer per unit surface area from the strip to the wall jet.
The value of heat transfer rate per unit surface area is
Given:
The diameter of the cylinder is
The emissivity of the blanket is
The temperature of the vapor blanket
The saturated temperature of the water jet is
The value of the specific heat of vaporization at the temperature
The value of the specific volume of the saturated temperature of water is
The density of the film temperature at
The thermal conductivity of vapor film temperature
The kinematic viscosity vapor at film temperature
The given diagram is shown in Figure 1
Figure 1
Formula used:
The expression for the density of the water is given by,
The expression for the film temperature for the liquid water is given by,
The expression to determine the value of the excess temperature is given by,
The expression to determine the latent heat of vaporization is given by,
The expression for the value of the Nusslet number is given by,
The expression to determine the value of the average radiation heat transfer coefficient is given by,
The expression for the radiation heat transfer coefficient is given by,
The expression to determine the value of the heat transfer coefficient is given by,
The expression to determine the value of initial heat transfer rate from the bar is given by,
The expression for the volumetric heat generation rate is given by,
Calculation:
The density of the water is calculated as,
The film temperature for the liquid water is calculated as,
The value of the excess temperature is calculated as,
The latent heat of vaporization is calculated as,
The value of the Nusslet number is calculated as,
The value of the average radiation heat transfer coefficient is given by,
The effective radiation heat transfer coefficient is calculated as,
The value of the heat transfer coefficient is calculated as,
The rate of heat transfer per unit surface area is calculated as,
Conclusion:
Therefore, the value of heat transfer rate per unit surface area is
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Fundamentals of Heat and Mass Transfer
- In boiling water at 1 atm pressure outside a stainless-steel tube with a surface temperature of 410F, the heat-transfer coefficient h in the absence of radiation is 32 Btu/h*ft^2*F. If the emissivity of the stainless steel is 0.8, will radiation significantly augment the rate of boiling (e.g., by more than 5 percent)? Assume that the vapor film is transparent to radiation and the boiling liquid is opaque.arrow_forwardVery urgent.arrow_forwardWater at atmospheric pressure is boiled in a container using a horizontal 8 mm electric wire (ε=0.9) whose temperature is maintained by an electric current at 250oC. Estimate the boiling heat transfer coefficient between the water and the wire surface. Properties of Water, liquid: ρl = 957.9 kg/m3, hfg = 2257 kJ/kg, vapor: ρv = 4.8 kg/m3, Cp,v = 2560 J/kg.K, μv = 14.85*10-6 N.s/m2, kv=0.0331 W/mK. Select one: a. 247 W/m2K b. 440 W/m2K c. 90.7 W/m2K d. 710 W/m2Karrow_forward
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- Principles of Heat Transfer (Activate Learning wi...Mechanical EngineeringISBN:9781305387102Author:Kreith, Frank; Manglik, Raj M.Publisher:Cengage Learning