A block of mass $5 k g$ is connected to a vertical spring, as a result, the spring elongates by $4 c m$ . If another block of mass $2 k g$ is attached to the block of mass $5 k g$ , determine the further elongation in spring.

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Solution

Step 1: Given data
Mass of block connected to a vertical spring is $5 k g$ .
Elongation of the spring $= 4 c m = 0.04 m$ .
Mass of the block attached to the $5 k g$ block is $2 k g$ .
Step 2: To determine the spring constant of the given spring
Now, the weight force of the $5 k g$ block $= m g = 50 N$
Since we know that,
$\Rightarrow k x = m g$
Where $k$ is the spring constant.
And $x$ is the elongation in the spring.
On putting the values we can write,
$\Rightarrow k (0.04) = 50$
$\Rightarrow k = \frac{50}{0.04} = 1250 N m^{- 1}$
Hence the spring constant of the given spring is $1250 N m^{- 1}$ .
Step 3: To determine the further elongation in spring after $2 k g$ block is added
Now. when another $2 k g$ block is added,
Let the further elongation in the spring be $x_{0}$ ,
Since we know that,
$\Rightarrow k x = m g$
Where $k$ is the spring constant.
And $x$ is the elongation in the spring.
On putting the required data in equation, we get,
$\Rightarrow k \times (0.04 + x_{0}) = (5 + 2) g$
$\Rightarrow 1250 (0.04 + x_{0}) = 70$
On further solving the equation for $x_{0}$ , then
$\Rightarrow (0.04 + x_{0}) = \frac{7}{125}$
$\Rightarrow x_{0} = 0.016 m$
Since the answer is in centimeters we can convert it,
$\Rightarrow x_{0} = 1.6 c m$
Hence the further elongation in spring is $1.6 c m$ .

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