Question

asked Feb 18, 2022 218k views

2 Answers

EdmCoff · Answer 1 · 2022-02-19T06:33:53+0000

Answer . The acceleration of the truck is 10m/
s^(2) , and the distance covered is 40 m. Have attached the picture for solution.

Hope that helps.

Poornima · Answer 2 · 2022-02-22T10:58:06+0000

Convert to m/s

$\\ \sf \longmapsto 72* (5)/(18)=5(4)=20m/s$

$\\ \sf \longmapsto Acceleration=(v-u)/(t)$

$\\ \sf \longmapsto Acceleration=(0-20)/(2)$

$\\ \sf \longmapsto Acceleration=(-20)/(2)$

$\\ \sf \longmapsto Acceleration=a=-10m/s^2$

Using second equation of kinematics

$\\ \sf \longmapsto s=ut+(1)/(2)at^2$

$\\ \sf \longmapsto s=20(2)+(1)/(2)(-10)(2)^2$

$\\ \sf \longmapsto s=40+(-20)$

$\\ \sf \longmapsto s=40-20$

$\\ \sf \longmapsto s=20m$

Now

Using newtons second law

$\\ \sf \longmapsto Force=ma$

$\\ \sf \longmapsto Force=5000(-10)$

$\\ \sf \longmapsto Force=-50000N$

$\\ \sf \longmapsto Force=50kN$

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