1 Answer

Peeyush Kushwaha · Answer 1 · 2022-03-02T13:58:05+0000

Given:

Two triangles are given in the figure.

To find:

The m∠K and m∠J.

Solution:

In triangle FHK and IGJ,

$m\angle  F=m\angle I$ [Given]

$m\angle  H=m\angle G$ [Given]

Two corresponding angles are equal. So,

$\Delta FHK\sim \Delta IGJ$ [By AA similarity theorem]

All corresponding angles of similar figures are same.

$m\angle  K=m\angle J$ ...(i)

4y^2=6y^2-40

4y^2-6y^2=-40

-2y^2=-40

Divide both sides by -2.

y^2=20 ...(ii)

Taking square root on both sides.

$y=\pm √(20)$

Now,

$m\angle K=(4y^2)^\circ$

$m\angle K=[4(20)]^\circ$ [Using (ii)]

$m\angle K=80^\circ$

$m\angle K=m\angle J=80^\circ$ [Using (i)]

Therefore, the m∠K is 80° and m∠J is 80°.

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