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प्रश्न
∆ABC ~ ∆PBQ. In ∆ABC, AB = 3 cm, ∠B = 90°, BC = 4 cm. Ratio of the corresponding sides of two triangles is 7 : 4. Then construct ∆ABC and ∆PBQ.
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उत्तर
Analysis: As shown in the figure,
Let B – A – P and B – C – Q.
∆PBQ ∼ ∆ABC
∴ ∠PQB ≅ ∠ACB ...[Corresponding angles of similar triangles]
`(PB)/(AB) = (BQ)/(BC) = (PQ)/(AC)` ...(i) [Corresponding sides of similar triangles]
∴ `(PB)/(AB) = (BQ)/(BC) = (PQ)/(AC) = 7/4` ...[Given]
∴ Sides of ∆PBQ are longer than corresponding sides of ∆ABC.
∴ If seg BC is divided into 4 equal parts, then seg BQ will be 7 times each part of seg BC.
So, if we construct ∆ABC point Q will be on side BC, at a distance equal to 7 parts from B.
Now, point P is the point of intersection of ray AB and a line through Q, parallel to AC.
∴ ∆PBQ is the required triangle similar to ∆ABC.
Steps of construction:
- Draw seg BC of length 4 cm.
- Take ∠B as 90° and draw an arc of 3 cm on it. Name the point as A.
- Join seg AC to obtain ∆ABC.
- Draw ray BX such that ∠CBX is an acute angle.
- Locate points B1, B2, B3, B4, B5, B6, B7 on ray BX such that, BB1 = B1B2 = B2B3 = B3B4 = B4B5 = B5B6 = B6B7.
- Join point C and B4.
- Through point, B7 draw a line parallel to seg CB4 which intersects seg BC at point Q.
- Draw a line parallel to AC through Q to intersect line AB at point P.
∆PBQ is the required triangle similar to ∆ABC.
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