An object with an initial speed of 50.0 ft/s is accelerating at 2.00ft/s^2. Find (a) the speed after the body has covered a distance of 500ft and (b) the time taken to cover this distance?

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Answer 1 · 2018-07-04T08:18:37

(a) The kinematic expression which can be used is

#v^2-u^2=2as#
where #v# is final velocity, #u# is the initial velocity, #a# is acceleration and #s# is displacement

Inserting given values we get

#v^2-(50.0)^2=2(2.00)500#
#=>v^2=2(2.00)500+(50.0)^2#
#=>v=sqrt(2(2.00)500+(50.0)^2)#
#=>v=67.1\ ft\ s^-1#, rounded to one decimal place

(b) If #t# is time taken to cover this distance, applicable kinematic expression is

#v=u+at#

Inserting given and calculated values we get

#67.08=50.0+2.00xxt#
#=>t=(67.08-50.0)/2.00#
#=>t=8.5\ s#, rounded to one decimal place