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प्रश्न
∆ABD is a right triangle right-angled at A and AC ⊥ BD. Show that
(i) AB2 = BC x BD
(ii) AC2 = BC x DC
(iii) AD2 = BD x CD
(iv) `"AB"^2/"AC"^2="BD"/"DC"`
उत्तर
(i) In ΔADB and ΔCAB
∠DAB = ∠ACB = 90°
∠ABD = ∠CBA (common angle)
∠ADB = ∠CAB (remaining angle)
So, ΔADB ~ ΔCAB (by AAA similarity)
Therefore `"AB"/"CB"="BD"/"AB"`
⇒ AB2 = CB × BD
(ii) Let ∠CAB = x
In ΔCBA
∠CBA = 180° − 90° − 𝑥
∠CBA = 90° − 𝑥
Similarly in ΔCAD
∠CAD = 90° − ∠CAD = 90° − 𝑥
∠CDA = 90° − ∠CAB
= 90° − 𝑥
∠CDA = 180° −90° − (90° − 𝑥)
∠CDA = x
Now in ΔCBA and ΔCAD we may observe that
∠CBA = ∠CAD
∠CAB = ∠CDA
∠ACB = ∠DCA = 90°
Therefore ΔCBA ~ ΔCAD (by AAA rule)
Therefore `"AC"/"DC"="BC"/"AC"`
⇒ AC2 = DC × BC
(iii) In ΔDCA & ΔDAB
∠DCA = ∠DAB (both are equal to 90°)
∠CDA = ∠ADB (common angle)
∠DAC = ∠DBA (remaining angle)
ΔDCA ~ ΔDAB (AAA property)
Therefore `"DC"/"DA"="DA"/"DB"`
⇒AD2 = BD × CD
(iv) From part (i) 𝐴𝐵2 = 𝐶𝐵 × 𝐵𝐷
From part (ii) 𝐴𝐶2 = 𝐷𝐶 × 𝐵𝐶
Hence `"AB"^2/"AC"^2=(CBxxBD)/(DCxxBC)`
`"AB"^2/"AC"^2="BD"/"DC"`
Hence proved
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