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212°F ... 100°C
\n
\n\$\\theta\$°F ... 20°C
\n
\n32°F ... 0°C
\n
\n\$\\frac{\\theta - 32}{212 - 32}\$ = \$\\frac{20 - 0}{100 - 0}\$

\n\n

180 = 5(\$\\theta\$ - 32)

\n\n

5\$\\theta\$ = 180 + 160 = 340

\n\n

\$\\theta\$ = 68°F

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JAMB - Physics (1978 - No. 16)

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