Question 11.3: Finding a Specific Heat GOAL Solve a calorimetry problem inv...

Let T be the final temperature, and let T_w and T_x be the initial temperatures of the water and block, respectively.
Apply Equations 11.3 and 11.4:

Q_{\text {cold }}=-Q_{\text {hot }}

m_w c_w\left(T-T_w\right)=-m_x c_x\left(T-T_x\right)

Solve for c_x and substitute numerical values:

c_x=\frac{m_w c_w\left(T  –  T_w\right)}{m_x\left(T_x  –  T\right)}

=\frac{(0.326  kg )\left(4190  J / kg \cdot{ }^{\circ} C \right)\left(22.4^{\circ} C  –  20.0^{\circ} C \right)}{(0.125  kg )\left(90.0^{\circ} C  –  22.4^{\circ} C \right)}

c_x=388  J / kg \cdot{ }^{\circ} C \rightarrow 390  J / kg \cdot{ }^{\circ} C

REMARKS Comparing our results to values given in Table 11.1, the unknown substance is probably copper. Note that because the factor (22.4°C – 20.0°C) = 2.4°C has only two significant figures, the final answer must similarly be rounded to two figures, as indicated.