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प्रश्न
In the following figure, DE || BC, then:
- If DE = 4 cm, BC = 8 cm, A(ΔADE) = 25 cm2, find A(ΔABC).
- If DE : BC = 3 : 5, then find A(ΔADE) : A(`square`DBCE).
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उत्तर
In ΔABC, DE || BC, DE = 4 cm, BC = 8 cm and A(△ADE) = 25 cm2
i. In ΔADE and ΔABC
∠ABC ≅ ∠ADE ...(Common angle of triangle)
∠BAC ≅ ∠DAE ...(Corresponding angles)
∴ ΔABC ∼ ΔADE ...(By AA similarity criteria)
∴ By area of similarity theorem,
`(A(triangle ADE))/(A(triangle ABC)) = (DE^2)/(BC^2)`
`25/(A(ΔABC)) = 4^2/8^2`
`25/(A(ΔABC)) = 16/64`
(ΔABC) × 16 = 25 × 64
A(ΔABC) = `(25 xx 64)/16`
A(ΔABC) = 25 × 4
A(ΔABC) = 100 cm2
ii. In ΔABC and ΔADE,
∠BAC ≅ ∠DAE .....(Common angle)
∠ADE ≅ ∠ABC .....(Corresponding angles of parallel lines)
∠AED ≅ ∠ACB .....(Corresponding angles of parallel lines)
∴ ΔАВС ∼ ΔADE ....(By AAA test for similarity of triangles)
Now, by using areas of similar triangle theorem,
`(A(triangle ADE))/(A(triangle ABC)) = (DE^2)/(BC^2)`
`(A(triangle ADE))/(A(triangle ABC)) = 3^2/5^2`
`(A(triangle ADE))/(A(triangle ABC)) = 9/25`
∴ `(A(triangle ADE))/(A(triangle ADE) + A(squareDBCE)) = 9/25`
25 × A(ΔADE) = 9[A(ΔADE) + A(`square`DBCE)]
25A(ΔADE) = 9A(ΔADE) + 9A(`square`DBCE)
25A(ΔADE) − 9A(ΔADE) = 9A(`square`DBCE)
16A(∆ADE) = 9A(`square`DBCE)
`(A(∆ADE))/(A(squareDBCE)) = 9/16`
∴ A(△ADE) : A(`square`DBCE) = 9 : 16
