Water at temperature 100°C cools in 10 minutes to 80°C at a room temperature of 25°C. Find the time when the temperature is 40°C ee[loge 1115=-0.3101;loge5=1.6094] - Mathematics

प्रश्न

Water at temperature 100°C cools in 10 minutes to 80°C at a room temperature of 25°C. Find the time when the temperature is 40°C `[log_"e" 11/15 = - 0.3101; log_"e" 5 = 1.6094]`

योग

उत्तर

Let "T" be the temperature in time 't'

Given `"dT"/"dt" oo ("T" - 25)`

⇒ `"d"/"dt" = - "k"("T" - 25)`, k > 0

`int "dT"/("T" - 25) = - "k" int "dt"`

`log("T" - 25) = - "kt" +"c"` .........(1)

Given when t = 0, T = 100°C

⇒ c = log 75 ........[∵ From (1)]

(1) ⇒ log(T – 25) = – kt + log 75

`log(("T" - 25)/75)` = – kt

kt = `log(75/("T" - 25))`

Again, given t = 10, = 80

⇒ 10k = `log(75/55)`

10k = `log(15/11)`

∴ k = `1/1 log(5/11)`

= `1/10(0.3101)`

k = 0.03101

∴ 0.03101 t = `log(75/("T" - 25))`

When T = 48, t = ?

⇒ 0.03101 t = `log(75/15)`

0.03101 t = log 5

0.03101 t = 1.6094

t = `1.6094/0.03101`

= 52 minutes

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Applications of First Order Ordinary Differential Equations

क्या इस प्रश्न या उत्तर में कोई त्रुटि है?

Q 7. (ii)Q 7. (i)Q 8. (i)

अध्याय 10: Ordinary Differential Equations - Exercise 10.8 [पृष्ठ १७४]

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सामाचीर कलवी Mathematics - Volume 1 and 2 [English] Class 12 TN Board

अध्याय 10 Ordinary Differential Equations
Exercise 10.8 | Q 7. (ii) | पृष्ठ १७४

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