Question

a small block with mass 0.04 kg is moving in the xy-plane. the net force on the block is describe by the potential energy function U(x,y) = (5.80 j/m2)x2 - (3.60 j/m3)y3. What are the magnitude of the acceleration of the block when it is at the point (x=0.30m , y=0.60m ) ?

Answer 1

Step-by-step explanation:

Use that:

`F=-\vec{\\abla}U(x,y)=-\left(\hat{i} (\partial U)/(\partial x)+\hat{j}(\partial U)/(\partial y)\right)=-11.6x\hat{i}+10.8y^(2)\hat{j}`

Then use the 2nd Newton's Law of Motion:

`\vec{a}=\frac{\vec{F}}{m}=\frac{-11.6x\hat{i}+10.8y^(2)\hat{j}}{0.04}=-290x\hat{i}+270y^(2)\hat{j}`

At x = 0.3 and y = 0.6, we can find the acceleration as:

`\vec{a}=-87\hat{i}+97.2\hat{j}` (in SI unit)

Then the magnitude of the acceleration on that point is:

`a=\sqrt{(-87)^(2)+(97.2)^(2)}\approx 130.44` (SI Unit)