SOLUTION: How would I solve this for kj?: ln(kj/15) = 2ln(kj/60) The answer is kj = 240, but I am unsure as to how to get there. Thanks for your help.

SOLUTION: How would I solve this for kj?: ln(kj/15) = 2ln(kj/60) The answer is kj = 240, but I am unsure as to how to get there. Thanks for your help.

Algebra.Com

Question 142458: How would I solve this for kj?:
ln(kj/15) = 2ln(kj/60)
The answer is kj = 240, but I am unsure as to how to get there. Thanks for your help.
Answer by stanbon(75887) (Show Source): You can put this solution on YOUR website!
ln(kj/15) = 2ln(kj/60)
ln(kj) - ln(15) = 2ln(kj)-2ln(60)
ln(kj) = 2ln(60) - ln(15)
ln(kj) = ln[60^2/15]
ln(kj) = ln[4*60]
kj = 4*60
kj = 240
==============
Cheers,
Stan H.
RELATED QUESTIONS
Given: I is the midpoint of HL HL bisects KJ Prove: HJ perpendicular to KJ (answered by ikleyn)

trying to solve the following: -21k + kj = 15... (answered by Fombitz)

Given: I is the midpoint of segment HL. segment HL bisects segment KJ. Prove: segment... (answered by ikleyn)

b+k ---= t solve for k j i know you have to get k by itself but i only got it... (answered by Alan3354)

FK=2x KJ=3x-6 HJ=5x-12 FH=2x=2 ___ __ line FK is congruent to line (answered by scott8148)

How would i factor these? 1.kj-60+10k-6j 2.gh+12h+3h^2+4g... (answered by longjonsilver)

Given: GH is parallel to KL; GJ is congruent to KJ Prove: J is the midpoint of HL The (answered by Boreal)

Given: line GH is parallel to line KJ. Prove: triangle GHF is similar to triangle... (answered by greenestamps)

Can someone please help me with this homework question? I am stuck and do not know how to (answered by Alan3354)