266603
In the figure shown, a \(4 \mathbf{k g}\) block is resting on ground an another 2 kg block is placed over the top of 4 kg block. Coefficient of static friction between both the surfaces is 0.2 and coefficient of kinetic friction is 0.1. A horizontal force \(F\) is applied according to the figure. Match the column \(A\) with column B. \[ \begin{aligned} & \mu_s=0.2 \\ & \mu_4=0.1 \end{aligned} \] |Column A|Column B| |-----|------| |1. Maximum possible static force between ground and \(4 \mathbf{k g}\) block| a. acceleration of both blocks will be zero. | |2. \( F=10 \mathrm{~N}\)|b. \(2 \mathrm{~m} / \mathrm{s}^2\)| |3. Maximum possible common acceleration of the blocks|c. 12 N| |4. Maximum value of Fso that blocks should move with same accelertion| d.24 N |
266603
In the figure shown, a \(4 \mathbf{k g}\) block is resting on ground an another 2 kg block is placed over the top of 4 kg block. Coefficient of static friction between both the surfaces is 0.2 and coefficient of kinetic friction is 0.1. A horizontal force \(F\) is applied according to the figure. Match the column \(A\) with column B. \[ \begin{aligned} & \mu_s=0.2 \\ & \mu_4=0.1 \end{aligned} \] |Column A|Column B| |-----|------| |1. Maximum possible static force between ground and \(4 \mathbf{k g}\) block| a. acceleration of both blocks will be zero. | |2. \( F=10 \mathrm{~N}\)|b. \(2 \mathrm{~m} / \mathrm{s}^2\)| |3. Maximum possible common acceleration of the blocks|c. 12 N| |4. Maximum value of Fso that blocks should move with same accelertion| d.24 N |
266603
In the figure shown, a \(4 \mathbf{k g}\) block is resting on ground an another 2 kg block is placed over the top of 4 kg block. Coefficient of static friction between both the surfaces is 0.2 and coefficient of kinetic friction is 0.1. A horizontal force \(F\) is applied according to the figure. Match the column \(A\) with column B. \[ \begin{aligned} & \mu_s=0.2 \\ & \mu_4=0.1 \end{aligned} \] |Column A|Column B| |-----|------| |1. Maximum possible static force between ground and \(4 \mathbf{k g}\) block| a. acceleration of both blocks will be zero. | |2. \( F=10 \mathrm{~N}\)|b. \(2 \mathrm{~m} / \mathrm{s}^2\)| |3. Maximum possible common acceleration of the blocks|c. 12 N| |4. Maximum value of Fso that blocks should move with same accelertion| d.24 N |
266603
In the figure shown, a \(4 \mathbf{k g}\) block is resting on ground an another 2 kg block is placed over the top of 4 kg block. Coefficient of static friction between both the surfaces is 0.2 and coefficient of kinetic friction is 0.1. A horizontal force \(F\) is applied according to the figure. Match the column \(A\) with column B. \[ \begin{aligned} & \mu_s=0.2 \\ & \mu_4=0.1 \end{aligned} \] |Column A|Column B| |-----|------| |1. Maximum possible static force between ground and \(4 \mathbf{k g}\) block| a. acceleration of both blocks will be zero. | |2. \( F=10 \mathrm{~N}\)|b. \(2 \mathrm{~m} / \mathrm{s}^2\)| |3. Maximum possible common acceleration of the blocks|c. 12 N| |4. Maximum value of Fso that blocks should move with same accelertion| d.24 N |
266603
In the figure shown, a \(4 \mathbf{k g}\) block is resting on ground an another 2 kg block is placed over the top of 4 kg block. Coefficient of static friction between both the surfaces is 0.2 and coefficient of kinetic friction is 0.1. A horizontal force \(F\) is applied according to the figure. Match the column \(A\) with column B. \[ \begin{aligned} & \mu_s=0.2 \\ & \mu_4=0.1 \end{aligned} \] |Column A|Column B| |-----|------| |1. Maximum possible static force between ground and \(4 \mathbf{k g}\) block| a. acceleration of both blocks will be zero. | |2. \( F=10 \mathrm{~N}\)|b. \(2 \mathrm{~m} / \mathrm{s}^2\)| |3. Maximum possible common acceleration of the blocks|c. 12 N| |4. Maximum value of Fso that blocks should move with same accelertion| d.24 N |