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Chemistry, 27.06.2019 13:10 kiyahm4739

1. how many joules of heat are required to raise the temperature of 750 g of water from 11.0 oc to 19.0 oc?
2. 8750 j of heat are applied to a piece of aluminum, causing a 66.0 oc increase in its temperature. the specific heat of aluminum is 0.9025 j/g oc. what is the mass of the aluminum?
3. a 250 g sample of water with an initial temperature of 98.8 oc loses 6500 joules of heat. what is the final temperature of the water?
4. 4786 joules of heat are transferred to a 89.0 gram sample of an unknown material, with an initial temperature of 23.0 oc. what is the specific heat of the material if the final temperature is 89.5 oc?
5. a piece of copper has a temperature of 75.6 0c. when the metal is placed in 100.0 grams of water at 19.1 0c, the temperature rises by 5.5 0c. what is the mass of the metal?
6. the combustion of methane, ch4, releases 890.4 kj/mol. that is, when one mole of methane is burned, 890.4 kj are given off to the surroundings. this means that the products have 890.4 kj less than the reactants. thus, δh for the reaction = - 890.4 kj. a negative symbol for δh indicates an exothermic reaction.
ch4 (g) + 2 o2 (g) → co2 (g) + 2 h2o (l); δh = - 890.4 kj
a) how much energy is given off when 2.00 mol of ch4 are burned?
b) how much energy is released when 22.4g of ch4 are burned?
7. what is the change in enthalpy when 9.75 g of aluminum reacts with excess ammonium nitrate (nh4no3) according to the equation:
2al + 3nh4no3  3n2 + 6 h2o + al2o3 δh = -2030kj
8. how much enthalpy/heat is transferred when 0.5113 g of ammonia (nh3) reacts with excess oxygen according to the following equation:
4nh3 + 5o2  4no + 6h2o δh = -905.4kj
9. according to the following reactions, would the burning of 5.50 g of methane (ch4) or propane (c3h8) release more heat?
c3h8(g) + 5o2(g) → 3co2(g) + 4h2o(g) δη = -2043 kj
ch4(g) + 2o2(g) → co2(g) + 2h2o(g) δη = -890. kj
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