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Ronch [10]
3 years ago
15

How many liters are in 8700 mL?

Chemistry
2 answers:
Scrat [10]3 years ago
5 0

Answer:

8.7 litres

Explanation:

\:\:1\:\:ml \:\:\:\:\:\:= 0.001 \:l\\8700\:ml =\:\:x\: l\\x = 8700\times 0.001\\x = 8.7\:litres

marshall27 [118]3 years ago
4 0
Answer:
8.7

Explanation:
The conversion rate of milliliter/liter = 1,000
Therefore, by dividing 8700 mL by 1,000 we get 8.7
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A sample of ammonia ^NH3h gas is completely decomposed to nitrogen and hydrogen gases over heated iron wool. If the total pressu
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Answer : The partial pressure of N_2 and H_2 is, 216.5 mmHg and 649.5 mmHg

Explanation :

According to the Dalton's Law, the partial pressure exerted by component 'i' in a gas mixture is equal to the product of the mole fraction of the component and the total pressure.

Formula used :

p_i=X_i\times p_T

X_i=\frac{n_i}{n_T}

So,

p_i=\frac{n_i}{n_T}\times p_T

where,

p_i = partial pressure of gas

X_i = mole fraction of gas

p_T = total pressure of gas

n_i = moles of gas

n_T = total moles of gas

The balanced decomposition of ammonia reaction will be:

2NH_3\rightarrow N_2+3H_2

Now we have to determine the partial pressure of N_2 and H_2

p_{N_2}=\frac{n_{N_2}}{n_T}\times p_T

Given:

n_{N_2}=1\\\\n_{H_2}=3\\\\n_{T}=4\\\\p_T=866mmHg

p_{N_2}=\frac{1}{4}\times (866mmHg)=216.5mmHg

and,

p_{H_2}=\frac{n_{H_2}}{n_T}\times p_T

Given:

n_{H_2}=1\\\\n_{H_2}=3\\\\n_{T}=4\\\\p_T=866mmHg

p_{H_2}=\frac{3}{4}\times (866mmHg)=649.5mmHg

Thus, the partial pressure of N_2 and H_2 is, 216.5 mmHg and 649.5 mmHg

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4 years ago
Assume the following is a neutral atom.
Lena [83]

Answer:

2. carbon

Explanation:

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2.50 g CuCl2 equals how many moles
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The molar mass of CuCl2 is 134.45 g/mol; therefore, you divide 2.5 g of CuCl2 by 134.45 g of CuCl2 leaving you with 0.019 moles
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A student is working on an assignment exploring the characteristics and uses of titanium. He notes in his assignment that it is
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Answer:

Acknowledge the source of relative weight of titanium.

Explanation:

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