1
GATE ME 2009
MCQ (Single Correct Answer)
+2
-0.6
Radiative heat transfer is intended between the inner surfaces of two very largen isothermal parallel metal plates. While the upper plate (designated as plate $$1$$) is a black surface and is the warmer one being maintained at $${727^ \circ }C,$$ the lower plate (plate $$2$$) is a diffuse and gray surface with an emissivity of $$0.7$$ and is kept at $${27^ \circ }C.$$ Assume that the surfaces are sufficiently large to form a two-surface enclosure and steady state conditions to exist. Stefan Boltzmann constant is given as
$$5.67 \times {10^{ - 8}}\,W/{m^2}{K^4}$$

If plate is also a diffuse gray surface with an emisivity value of $$0.8,$$ the net radiant heat exchange (in $$kW/{m^2}$$) between plate $$1$$ and plate $$2$$

A
$$17.0$$
B
$$19.5$$
C
$$23.0$$
D
$$31.7$$
2
GATE ME 2009
MCQ (Single Correct Answer)
+2
-0.6
In a parallel flow heat exchanger operating under steady state, the heat capacity rates (product of specific heat at constant pressure and mass flow rate) of the hot and cold fluid are equal. The hot fluid, flowing at $$1kg/sec$$ with $$sp.$$ heat $$= 4kJ/kgK,$$ enters the heat exchanger at $${102^ \circ }C$$ while the cold fluid has an inlet temperature of $${15^ \circ }C$$. The overall heat transfer coefficient for the heat exchanger is estimated to be $$1\,\,kW/{m^2}K$$ and the corresponding heat transfer surface area is $$5{m^2}$$. Neglect heat transfer between the heat exchanger and the ambient.

The heat exchanger is characterized by the following relation $$2\varepsilon = 1 - Exp\left( { - 2NTU} \right).$$ The exit temp (in $$^ \circ C$$) for the cold fluid is

A
$$45$$
B
$$55$$
C
$$65$$
D
$$75$$
3
GATE ME 2009
MCQ (Single Correct Answer)
+2
-0.6
A company uses $$2555$$ units of an item annually. Delivery lead time is $$8$$ days. The recorder point (in number of units) to achieve optimum inventory is
A
$$7$$
B
$$8$$
C
$$56$$
D
$$60$$
4
GATE ME 2009
MCQ (Single Correct Answer)
+1
-0.3
The expected time $$\left( {{t_e}} \right)$$ of a $$PERT$$ activity in terms of optimistic time $$\left( {{t_0}} \right)$$, pessimistic $$\left( {{t_p}} \right)$$ and most likely time $$\left( {{t_L}} \right)$$ is given by
A
$${t_e} = {{{t_0} + 4{t_L} + {t_P}} \over 6}$$
B
$${t_e} = {{{t_0} + 4{t_P} + {t_L}} \over 6}$$
C
$${t_e} = {{{t_0} + 4{t_L} + {t_P}} \over 3}$$
D
$${t_e} = {{{t_0} + 4{t_P} + {t_L}} \over 3}$$
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