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Need help on HS geometry
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Need help on HS geometry

Need help on HS geometry-example-1
User Jeff Bezanson
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2 Answers

1 vote


\\ \tt\Rrightarrow 16x-27=5x+6


\\ \tt\Rrightarrow 16x-5x=6+27


\\ \tt\Rrightarrow 11x=33


\\ \tt\Rrightarrow x=3

  • m<YQR=16(3)-27=48-27=21°
User Shaun Roselt
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3.7k points
4 votes
  • Here, RY = PY.
  • Angle QRY = Angle QPY = 90°
  • QY = QY [common]
  • Therefore, ∆ QRY = ∆ QPY
  • By c.p.c.t., angle RQY = angle PQY
  • Therefore,

  • 16x - 27 = 5x + 6 \\ = > 16x - 5x = 6 + 27 \\ = > 11x = 33 \\ = > x = 3
  • Therefore, the measure of angle YQR

  • = (16x - 27)° \\ = (16 * 3 - 27)° \\ = (48 - 27)° \\ = 21°

Answers:

  1. 3
  2. 21°

Hope you could get an idea from here.

Doubt clarification - use comment section.

User Insanebits
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4.5k points
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