As shown in the figure, two masses of \(10~\text{kg}\) and \(20~\text{kg}\), respectively are connected by a massless spring. A force of \(200~\text{N}\) acts on the \(20~\text{kg}\) mass. At the instant shown, the \(10~\text{kg}\) mass has an acceleration of \(12~\text{m/s}^2\) towards the right. The acceleration of \(20~\text{kg}\) mass at this instant is:
          
1. \(12~\text{m/s}^2\)
2. \(4~\text{m/s}^2\)
3. \(10~\text{m/s}^2\)
4. zero

Subtopic:  Spring Force |
 79%
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What is the acceleration of block \(A\), if the acceleration of \(B\) is \(4~\text{m/s}^2\) towards the right at the instant shown?

                          
1. \(2.5~\text{m/s}^2\)
2. \(4~\text{m/s}^2\)
3. \(5~\text{m/s}^2\)
4. zero

Subtopic:  Spring Force |
 74%
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Three blocks \(A\), \(B\) and \(C\) of mass \(3M\), \(2M\) and \(M\) respectively are suspended vertically with the help of springs \(\mathrm{PQ}\) and \(\mathrm{TU}\) and a string \(\mathrm{RS}\) as shown in fig. The acceleration of blocks \(A\), \(B\) and \(C\) are \(a_{1} , a_{2}~ \text{and}~ a_{3}\) respectively.
     

The value of acceleration \(a_{1}\) at the moment string \(\mathrm{RS}\) is cut will be: 
1. \(g\) downward
2. \(g\) upward
3. more than \(g\) downward
4. zero

Subtopic:  Spring Force |
 69%
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Calculate the reading of the spring balance shown in the figure: (take \(g=10\) m/s2)
                

1. \(60\) N
2. \(40\) N
3. \(50\) N
4. \(80\) N

Subtopic:  Spring Force |
 58%
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The length of a spring is \(l_1\) and \(l_2\) when stretched with a force of \(4\) N and \(5\) N respectively. Its natural length is?
1. \(l_2+l_1\) 2. \(2(l_2-l_1)\)
3. \(5l_1-4l_2\) 4. \(5l_2-4l_1\)
Subtopic:  Spring Force |
 56%
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