If a thermometer on $C -$ scale reads freezing point of water as $20 C$ and boiling point as $150 C$ , how much the thermometer would read when the actual temperature is $60^{\circ} C$ ?

98 C

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110 C

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40 C

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60 C

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Solution

The correct option is A $98 C$
Temperaturee on any scale can be converted into other scale by applying,
$\Rightarrow \frac{x - L F P}{U F P - L F P} = constant . . . (i)$
where $U F P =$ Upper fixed point (boiling point)
$L F P =$ Lower fixed point (freezing point)
$x =$ temperature on the given scale
As per question on $C -$ scale
$L F P = 20 C & U F P = 150 C$
$\Rightarrow$ let the measured temperature on $C -$ scale is $x$ corresponding to $60^{\circ} C$ on centigrade scale for which $L F P = 0^{\circ} C, U F P = 100^{\circ} C$
Hence from Eq. $(i)$ ,
$\frac{x - 20}{150 - 20} = \frac{60 - 0}{100 - 0}$
$∴ x = 98$
Hence measurement by thermometer will be $98 C$

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