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Anvisha [2.4K]
3 years ago
14

Which of the following is true of the internal energy of the system and its surroundings following a process in which ΔEsys=+65k

J. Which of the following is true of the internal energy of the system and its surroundings following a process in which . The system and the surroundings both lose 65kJ of energy. The system and the surroundings both gain 65kJ of energy. The system gains 65kJ of energy and the surroundings lose 65kJ of energy. The system loses 65kJ of energy and the surroundings gain 65kJ of energy.
Chemistry
1 answer:
Pie3 years ago
4 0

Answer:

The system gains 65kJ of energy and the surroundings lose 65kJ of energy.

Explanation:

By convention of signs, ΔEsys=+65kJ means that the system gains 65 kJ of heat. According to the Law of conservation of energy, energy cannot be created nor destroyed, only transferred and transformed. So, if the system gains energy, the surroundings must lose the same amount, that is, ΔEsur=-65kJ and ΔEsys + ΔEsur = 0.

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1) Write the balanced chemical equation

     2HCl + Na2 CO3 ----------> 2NaCl + H2CO3

2) Write the molar ratios:

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3) Convert 0.15g of sodium carbonate to number of moles

3a) Calculate the molar mass of Na2CO3

Na: 2 * 23 g/mol = 46 g/mol

C: 12 g/mol =

O: 3 * 16 g/mol = 48 g/mol

molar mass = 46g/mol + 12g/mol + 48g/mol = 106 g/mol

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# moles = grams / molar mass = 0.15 g / 106 g/mol = 0.0014 mol Na2CO3

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[0.0014 mol Na2CO3] * [2 mol HCl / 1 mol Na2CO3] = 0.0028 mol HCl

5) Calculate the volume of HCl from the definition of Molarity

Molarity, M = # moles / volume in liters

=> Volume in liters = # moles / M = 0.0028 mol / 0.1 M = 0.028 liters

0.028 liters * 1000 ml / liter = 28 ml.

Answer: 28 mililiters of 0.1 M HCl.
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How many grams of h2 will be produced if 175g of HCI are allowed to react completely with sodium
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Answer:

4.8 grams of H₂ will be produced if 175g of HCI are allowed to react completely with sodium

Explanation:

By stoichiometry of the reaction (that is, the relationship between the amount of reagents and products in a chemical reaction) you can see that the following amounts in moles of each compound react and are produced:

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You know the following masses of each element:

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So, the molar mass of each compound participating in the reaction is:

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Then, by stoichiometry of the reaction, the following amounts in grams of each of the compounds participating in the reaction react and are produced:

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So, a rule of three applies as follows: if by stoichiometry, when reacting 72.9 grams of HCl 2 grams of H₂ are formed, when reacting 175 grams of HCl how much mass of H₂ will be formed?

mass of H_{2} =\frac{175 g of HCl*2g ofH_{2} }{72.9 g of HCl}

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