Answer:
m_w = 0.7453 kg
1 bottle of water
Step-by-step explanation:
Given:
- T_1 = 30 degrees
- mass of the cyclist m_c = 67 kg
- Heat energy rate produced W = 501 W
- Metabolism rate = 81 %
- Heat of vaporization of water L_v = 2.42 * 10^6 J/kg
Find:
How many kilograms of water must the person’s body evaporate in an hour to get rid of this heat?
The evaporated water must, of course, be replenished, or the person will dehydrate. How many 750-mL bottles of water must the bicyclist drink per hour to replenish the lost water?
Solution:
- We first need to calculate the mass of vaporized water. It consists of two phases. Phase 1 is associated with increase in temperature, while phase 2 is transition from liquid to vapor. The total heat thermal equilibrium would be:
Q_body = Q_water
Where,
Q_body = W*t
Q_water = m_w*L_v
Equating the two Eqs we have:
m_w*L_v = W*t
m_w = W*t / L_v
Plug in values:
m_w = 501*60*60 / 2.42*10^6
m_w = 0.7453 kg
- The amount of water evaporated in mL = 745 mL
Since a bottle of water has 750 mL, Hence, we require only 1 bottle.