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प्रश्न
The given figure shows a semi-circle with centre O and diameter PQ. If PA = AB and ∠BCQ =140°; find measures of angles PAB and AQB. Also, show that AO is parallel to BQ.
उत्तर
Join PB.
i. In cyclic quadrilateral PBCQ,
∠BPQ + ∠BCQ = 180°
`=>` ∠BPQ + 140° = 180°
`=>` ∠BPQ = 40° ...(1)
Now in ΔPBQ,
∠PBQ + ∠BPQ + ∠BQP = 180°
`=>` 90° + 40° + ∠BQP = 180°
`=>` ∠BQP = 50°
In cyclic quadrilateral PQBA,
∠PQB + ∠PAB = 180°
`=>` 50° + ∠PAB = 180°
`=>` ∠PAB = 130°
ii. Now in ΔPAB,
∠PAB + ∠APB + ∠ABP = 180°
`=>` 130° + ∠APB + ∠ABP = 180°
`=>` ∠APB + ∠ABP = 50°
But ∠APB = ∠ABP ...(∵ PA = PB)
∴ ∠APB = ∠ABP = 25°
∠BAQ = ∠BPQ = 40°
∠APB = 25° = ∠AQB ...(Angles in the same segment)
∴ ∠AQB = 25° ...(2)
iii. Arc AQ subtends ∠AOQ at the centre and ∠APQ at the remaining part of the circle.
We have,
∠APQ = ∠APB + ∠BPQ ...(3)
From (1), (2) and (3), we have
∠APQ = 25° + 40° = 65°
∴ ∠AOQ = 2∠APQ = 2 × 65° = 130°
Now in ΔAOQ,
∠OAQ = ∠OQA ...( ∵ OA = OQ)
But ∠OAQ + ∠OQA + ∠AOQ = 180°
`=>` ∠OAQ + ∠OAQ + 130° = 180°
`=>` 2∠OAQ = 50°
`=>` ∠OAQ = 25°
∴ ∠OAQ = ∠AQB
But these are alternate angles.
Hence, AO is parallel to BQ.
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