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प्रश्न
In ΔABC, AP ⊥ BC and BQ ⊥ AC, B-P-C, A-Q-C, then show that ΔCPA ~ ΔCQB. If AP = 7, BQ = 8, BC = 12, then AC = ?
In ΔCPA and ΔCQB
∠CPA ≅ ∠`square` ...[each 90°]
∠ACP ≅ ∠`square` ...[common angle]
ΔCPA ~ ΔCQB ...[`square` similarity test]
`"AP"/"BQ" = (square)/(BC)` ...[corresponding sides of similar triangles]
`7/8 = (square)/12`
AC × `square` = 7 × 12
AC = 10.5
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उत्तर
In ΔCPA and ΔCQB
∠CPA ≅ ∠\[\boxed{\text{CQB}}\] ...[each 90°]
∠ACP ≅ ∠\[\boxed{\text{BCQ}}\] ...[common angle]
ΔCPA ~ ΔCQB ...[\[\boxed{\text{AA}}\] similarity test]
`"AP"/"BQ"` = \[\frac{{\boxed{\text{AC}}}}{{{\text{BC}}}}\] ...[corresponding sides of similar triangles]
`7/8` = \[\frac{{\boxed{\text{AC}}}}{{{12}}}\]
AC × \[\boxed{8}\] = 7 × 12
AC = `(7 xx 12)/8`
AC = `(7 xx 3)/2`
AC = `21/2`
AC = 10.5
