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Margaret [11]
2 years ago
15

If 60.0 ml of a 1.5 m hcl solution is put into a flask and diluted with water to make 2.0 l of solution

Chemistry
1 answer:
77julia77 [94]2 years ago
7 0

Answer:

The molarity of the diluted HCl solution: <u>M₂ = 0.045 M</u>  

Explanation:

To find- the molarity of the diluted HCl solution (M₂)

Given- <u>For original HCl solution</u>-

Molarity: M₁ = 1.5 M, Volume: V₁ = 60.0 ml = 0.06 L          (∵ 1L = 1000 mL)

Then this original solution is diluted to a volume of 2 L

Thus <u>for the diluted HCl solution</u>-  

The Volume of the diluted HCl solution: V₂ = 2 L

<u>So the Molarity of the diluted HCl solution (M₂) can be calculated by the </u><u><em>dilution equation:</em></u>

M_{1}\times V_{1} = M_{2}\times V_{2}

\Rightarrow M_{2} = \frac{M_{1}\times V_{1}}{V_{2}}

\Rightarrow M_{2} = \frac{1.5 M\times 0.06 L}{2 L} = 0.045 M

<u>Therefore, the molarity of the diluted HCl solution: M₂ = 0.045 M</u>

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Answer:

T_f=-7.81^0C

Explanation:

Hello,

a) In this case, since the heat associated with the dissolution of ammonium nitrate is positive, such reaction is endothermic as it absorbs heat.

b) Now, for computing the temperature once the dissolution is done, we apply (considering that it is a cooling process):

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Nonetheless, we should first compute the moles of the mixture as:

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