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प्रश्न
Find the particular solution of `r (dr)/(dθ) + cos θ` = 5 at r = `sqrt2` and θ = 0.
योग
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उत्तर
`r (dr)/(dθ) + cos θ` = 5
∴ `r (dr)/(dθ) = 5 - cos θ`
∴ r dr = (5 − cos θ) dθ
Integrating both sides, we get
`int r dr = int (5-cosθ) dθ`
∴ `r^2/2 = 5θ - sinθ + c`
This is the general solution.
Now, θ = 0 and r = `sqrt2` we get
∴ `(sqrt2)^2/2 = 5(0) - sin0 + c`
∴ c = 1
∴ The particular solution is `r^2/2 = 5θ - sinθ + 1`.
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