1
AIEEE 2007
MCQ (Single Correct Answer)
+4
-1
One end of a thermally insulated rod is kept at a temperature $${T_1}$$ and the other at $${T_2}$$. The rod is composed of two sections of length $${L_1}$$ and $${L_2}$$ and thermal conductivities $${K_1}$$ and $${K_2}$$ respectively. The temperature at the interface of the two section is AIEEE 2007 Physics - Heat and Thermodynamics Question 341 English
A
$${{\left( {{K_1}{L_1}{T_1} + {K_2}{L_2}{T_2}} \right)} \over {\left( {{K_1}{L_1} + {K_2}{L_2}} \right)}}$$
B
$${{\left( {{K_2}{L_2}{T_1} + {K_1}{L_1}{T_2}} \right)} \over {\left( {{K_1}{L_1} + {K_2}{L_2}} \right)}}$$
C
$${{\left( {{K_2}{L_1}{T_1} + {K_1}{L_2}{T_2}} \right)} \over {\left( {{K_2}{L_1} + {K_1}{L_2}} \right)}}$$
D
$${{\left( {{K_1}{L_2}{T_1} + {K_2}{L_1}{T_2}} \right)} \over {\left( {{K_1}{L_2} + {K_2}{L_1}} \right)}}$$
2
AIEEE 2007
MCQ (Single Correct Answer)
+4
-1
A particle of mass $$m$$ executes simple harmonic motion with amplitude a and frequency $$v.$$ The average kinetic energy during its motion from the position of equilibrium to the end is
A
$$2{\pi ^2}\,m{a^2}{v^2}$$
B
$${\pi ^2}\,m{a^2}{v^2}$$
C
$${1 \over 4}\,m{a^2}{v^2}$$
D
$$4{\pi ^2}m{a^2}{v^2}$$
3
AIEEE 2007
MCQ (Single Correct Answer)
+4
-1
Two springs, of force constant $${k_1}$$ and $${k_2}$$ are connected to a mass $$m$$ as shown. The frequency of oscillation of the mass is $$f.$$ If both $${k_1}$$ and $${k_2}$$ are made four times their original values, the frequency of oscillation becomes AIEEE 2007 Physics - Simple Harmonic Motion Question 134 English
A
$$2f$$
B
$$f/2$$
C
$$f/4$$
D
$$4f$$
4
AIEEE 2007
MCQ (Single Correct Answer)
+4
-1
A point mass oscillates along the $$x$$-axis according to the law $$x = {x_0}\,\cos \left( {\omega t - \pi /4} \right).$$ If the acceleration of the particle is written as $$a = A\,\cos \left( {\omega t + \delta } \right),$$ then
A
$$A = {x_0}{\omega ^2},\,\,\delta = 3\pi /4$$
B
$$A = {x_0},\,\,\delta = - \pi /4$$
C
$$A = {x_0}{\omega ^2},\,\,\delta = \pi /4$$
D
$$A = {x_0}{\omega ^2},\,\,\delta = - \pi /4$$
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