The initial speed of two moving bodies given an increment of velocity.

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SUMMARY

The discussion centers on calculating the initial speeds of two cars, Car A and Car B, where Car A has twice the mass of Car B but only half the kinetic energy (Ek). When both cars increase their speed by 6.00 m/s, their resulting kinetic energies become equal. The initial speeds are determined to be 4.24 m/s for Car A and 2.12 m/s for Car B. The participants identify flaws in the initial setup of equations and clarify the relationships between mass and kinetic energy.

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LiamC
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Car A has twice the mass of Car B but only half as much Ek (Kinetic Energy).
When both cars increase their speed by 6.00m/s their resulting Ek's are equal

What were the initial speeds of both cars?

ANS 1= 4.24m/s
ANS 2= 2.12 m/sKe=1/2mV^2


m(a)=2m(b)

Ek(a)=1/2Ek(b)

Ek(a)=1/2mV^2=1/2Ek(b)=1/2(1/2mV^2)
Ek(a)=1/2mV^2=1/4mV^2
Ek(a)=1/2mV^2= 1/4(2m)V^2
1/2mV^2=1/2mV^2

1/2m(vi+6.00m/s)^2=1/2m(vi+6.00m/s)^2

Now, i realize that i must have made a mistake somewhere because this expression as i have demonstrated as equal.

However this is not the answer.
I am under the assumption that my mistake lies in how i made the expressions equal to one another.

Can anyone find the flaw here?
Merci.

-LC-

Homework Statement


Homework Equations


The Attempt at a Solution

 
Last edited:
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Hi LiamC, welcome to PF! :smile:

LiamC said:
Car A has twice the mass of Car B but only half as much Ek (Kinetic Energy).
When both cars increase their speed by 6.00m/s their resulting speeds are equal

What were the initial speeds of both cars?

ANS 1= 4.24m/s
ANS 2= 2.12 m/s

There seems to be something wrong with the question...

If, when both the cars increase their speed by 6m/s, their speed becomes same, then, their original speeds should have been the same too! So you cannot have different speeds for both cars! (I think you mis-typed kinetic energy as speed?)
 
Infinitum said:
Hi LiamC, welcome to PF! :smile:



There seems to be something wrong with the question...

If, when both the cars increase their speed by 6m/s, their speed becomes same, then, their original speeds should have been the same too! So you cannot have different speeds for both cars! (I think you mis-typed kinetic energy as speed?)

Yup, sorry my bad.

It's kinetic energy in place of speed.
 
LiamC said:
Yup, sorry my bad.

It's kinetic energy in place of speed.

Okay, so what you have done in your attempt is just loop back the given data on itself, and that leads you to nowhere. You also seem to have assumed their initial speeds are equal, which is wrong. :wink:

Try framing the equations this way.

m_A = 2m_B = 2m

And,

\frac{1}{4}mv_B^2 = \frac{1}{2}(2m)v_A^2

This gives you a relation between v_A and v_B. Now use the second part of the problem which says the kinetic energies are equal if their speeds increase by 6m/s. How would you write equation for this?
 
LiamC said:
m(a)=2m(b)

Ek(a)=1/2Ek(b)

Ek(a)=1/2maV^2=1/2Ek(b)=1/2(1/2mbV^2)
Ek(a)=1/2maV^2=1/4mbV^2
Ek(a)=1/2maV^2= 1/4(2ma)V^2
1/2maV^2=1/2maV^2

I added subscripts to your masses to make things more clear.


You set up the equations wrong. When you replaced m with 2m on the right hand side, you were replacing mb with 2ma, when ma = 2mb.
 
Infinitum said:
Okay, so what you have done in your attempt is just loop back the given data on itself, and that leads you to nowhere. You also seem to have assumed their initial speeds are equal, which is wrong. :wink:

Try framing the equations this way.

m_A = 2m_B = 2m

And,

\frac{1}{4}mv_B^2 = \frac{1}{2}(2m)v_A^2

This gives you a relation between v_A and v_B. Now use the second part of the problem which says the kinetic energies are equal if their speeds increase by 6m/s. How would you write equation for this?

Would that be

1/4m(vi(b)=6.00m/s)^2=1/2(2m)(vi(a)+6.00m/s)^2
 
LiamC said:
Would that be

1/4m(vi(b)=6.00m/s)^2=1/2(2m)(vi(a)+6.00m/s)^2

Noo! Why the 1/4?? What is the kinetic energy of a body in terms of m and v? The RHS is correct, by the way :smile:
 

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