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प्रश्न
The sum of 3 numbers in a G.P. is 19, and the sum of their squares is 133. Find the numbers.
बेरीज
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उत्तर
`a/r`, a, ar
`a/r + a + ar` = 19
`a(1/r + 1 + r)` = 19
a(1 + r + r2) = 19r
a = `(19r)/((1 + r + r^2))` ....(1)
`(a/r)^2 + a^2 + (ar)^2` = 133
⇒ `a^2/r^2 + a^2 + a^2r^2` = 133
`a^2(1/r^2 + 1 + r^2)` = 133
`a^2(1 + r^2 + r^4) = 133r^2`
⇒ `a^2 = (133r^2)/((r^2 + 1 - r)(r^2 + r + 1))` ....(2)
`((19)/(1 + r + r^2))^2 = (133)/((r^2 + 1 - r)(r^2 + r + 1))`
361(1 + r2 − r) = 133(1 + r + r2)
`r = 3/2, r = 2/3`
`r = 3/2`
a = `19/(1 + r + r^2)`
= `19/(2/3 + 4/9 + 1)`
= `(19 xx 9)/19`
= 9
9, 6, 4
`r = 2/3`
= `19/(3/2 + 9/4 + 1)`
= `(19 xx 8)/19`
= 8
4, 6, 9
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या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 9: Arithmetic and geometric progression - Exercise 9D [पृष्ठ १९४]
