In ΔJKL, l = 860 inches, j = 920 inches and ∠K=126°. Find ∠L, to the nearest degree.

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Uma Madhavi asked Feb 9, 2022

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In ΔJKL, l = 860 inches, j = 920 inches and ∠K=126°. Find ∠L, to the nearest degree.

Mathematics
high-school

Uma Madhavi asked Feb 9, 2022

by Uma Madhavi

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Answer:

Explanation:

JKL= ABC, jkl=abc

1.) use law of sines to find k.

c^(2) =a^(2) +b^(2) -2abCosC

$c=\sqrt{920^(2) +860^(2) -2(920)(860)cos(126) } = 1586.225515$

2.) use law of cosines to find L

(a)/(sinA) =(b)/(sinB) =(c)/(sinC)

plug in for b and c:
(860)/(sinB) =(1586.225515)/(sin126)

cross multiply:
(1586.23sinB)/(1586.23) =(860sin126)/(1586.23)

$sinB= 0.4386227612\\B=sin^-1(0.4386227612)= 26.01604086\\$

L=26

Kumaran Senapathy answered Feb 14, 2022

by Kumaran Senapathy

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