madey21
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The calorimeter contains 900 g of water and the temperature change is [tex]8.32^{\circ} C[/tex]. The heat capacity of the calorimeter is [tex]2240 J /^{\circ} C[/tex]. The specific heat of water is [tex]4.18 J / g ^{\circ} C[/tex].

What is the heat of the calorimeter (water and dry combined)?

[tex]q_{cal} = [?] J[/tex]

Enter either a + or - sign AND the magnitude. Do not round.

Sagot :

GinnyAnswer
Certainly! Let's break down the problem step by step to understand the calculations involved.

1. Calculate the heat gained by the water:

The formula for calculating the heat gained (or lost) by a substance is given by:

[tex]\[ q = m \cdot c \cdot \Delta T \][/tex]

where:
- [tex]\( q \)[/tex] is the heat gained or lost,
- [tex]\( m \)[/tex] is the mass of the substance,
- [tex]\( c \)[/tex] is the specific heat capacity,
- [tex]\( \Delta T \)[/tex] is the change in temperature.

For the water:
- Mass, [tex]\( m = 900 \, \text{g} \)[/tex],
- Specific heat capacity, [tex]\( c = 4.18 \, \text{J/g}^\circ\text{C} \)[/tex],
- Temperature change, [tex]\( \Delta T = 8.32^\circ\text{C} \)[/tex].

Substituting these values into the formula, we get:

[tex]\[ q_{\text{water}} = 900 \, \text{g} \times 4.18 \, \text{J/g}^\circ\text{C} \times 8.32^\circ\text{C} \][/tex]

The heat gained by the water is:
[tex]\[ q_{\text{water}} = 31299.84 \, \text{J} \][/tex]

2. Calculate the heat gained by the calorimeter itself:

The calorimeter's heat capacity is given by [tex]\( 2240 \, \text{J/}^\circ\text{C} \)[/tex]. The heat gained by the calorimeter can be calculated using:

[tex]\[ q_{\text{calorimeter}} = C_{\text{calorimeter}} \times \Delta T \][/tex]

where:
- [tex]\( C_{\text{calorimeter}} \)[/tex] is the heat capacity of the calorimeter,
- [tex]\( \Delta T \)[/tex] is the change in temperature.

Substituting the given values, we get:

[tex]\[ q_{\text{calorimeter}} = 2240 \, \text{J/}^\circ\text{C} \times 8.32^\circ\text{C} \][/tex]

The heat gained by the calorimeter is:
[tex]\[ q_{\text{calorimeter}} = 18636.8 \, \text{J} \][/tex]

3. Total heat gained by the calorimeter (water + the calorimeter itself):

The total heat gained is the sum of the heat gained by the water and the calorimeter:

[tex]\[ q_{\text{total}} = q_{\text{water}} + q_{\text{calorimeter}} \][/tex]

Substituting the calculated values:

[tex]\[ q_{\text{total}} = 31299.84 \, \text{J} + 18636.8 \, \text{J} \][/tex]

The total heat gained by the calorimeter is:
[tex]\[ q_{\text{total}} = 49936.64 \, \text{J} \][/tex]

Therefore, the heat of the calorimeter (water and dry combined) is:
[tex]\[ q_{\text{cal}} = +49936.64 \, \text{J} \][/tex]
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