If the error in the measurement of momentum is 20 % , then the error in the calculation of kinetic energy is (assume the error in measurement of m as zero)

Question

If the error in the measurement of momentum is 20 % , then the error in the calculation of kinetic energy is (assume the error in measurement of m as zero) (A) 20 % (B) 44 % (C) 40 % (D) 200 %

Tardigrade Admin · Accepted Answer

KE=(1/2)(p2/m) KE1=(1/2)(p2/m) p1=(6/5) p KE 2=(1/2) ((36/25)) ( p 2/ m ) ÎKE= KE2-KE1 =(1/2) [(((6/5) p)2 - p2/m)] =(11/25) (p2/m) Percentage change in kinetic energy =(ÎKE/KE1)× 100 =(11/25)× 100=44 %

Q. If the error in the measurement of momentum is $20 %$ , then the error in the calculation of kinetic energy is (assume the error in measurement of $m$ as zero)

$20 %$

$44 %$

$40 %$

$200 %$

Q. If the error in the measurement of momentum is 20% , then the error in the calculation of kinetic energy is (assume the error in measurement of m as zero)

20%

44%

40%

200%

KE=21​mp2​ KE1​=21​mp2​ p1​=56​p KE2​=21​(2536​)mp2​ ΔKE=KE2​−KE1​ =21​[m(56​p)2−p2​] =2511​mp2​ Percentage change in kinetic energy =KE1​ΔKE​×100 =2511​×100=44%

Q. If the error in the measurement of momentum is $20 %$ , then the error in the calculation of kinetic energy is (assume the error in measurement of $m$ as zero)

$20 %$

$44 %$

$40 %$

$200 %$