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Stels [109]
3 years ago
15

Please help!

Chemistry
1 answer:
Paha777 [63]3 years ago
6 0
A because the arrow pulling down would be the gravity
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How many grams of barium sulfate form when 35. 0 ml of 0. 160 m barium chloride reacts with 58. 0 ml of 0. 065 m sodium sulfate?
Mama L [17]

The barium sulfate formed is 1.57 grams

The chemical reaction as

BaCl2 + Na2SO4 → 2NaCl + BaS04

The given date is

35 ml of 0.160 barium chloride

58 ml of 0.065 m sodium sulfate

35 ml of barium chloride = 0.0350 liters

58 ml of sodium sulfate = 0.050 liters

moles of barium chloride = 0.0160 / 0.0350

                                          = 0.4571 mol

moles of sodium sulfate = 0.065 / 0.058

                                        = 1.120

Barium sulfate =  moles of barium chloride + sodium sulfate

                        = 0.4571 + 1.12

                        = 1.57 gram

Hence the gram of barium sulfate formed is 1.57 gram

Learn more about the moles on

brainly.com/question/14783710

#SPJ4

7 0
2 years ago
No pure elements are liquids at room temperature.
Luden [163]
Mercury and Bromine are liquid at room temperature.
8 0
3 years ago
What are some non examples of acid.
Harlamova29_29 [7]

Answer:Tennis ball?

Explanation:

Well, an example would be DNA so a non-example could be a tennis ball. Or anything that isn't nucleic acids like lipids, perhaps.

4 0
2 years ago
Complete combustion of a compound containing hydrogen and carbon produced 2.641 g of carbon dioxide and 1.442 grams of water as
klio [65]

  The empirical   formula  of hydrocarbon is C₃H₈

The  molecular formula of hydrocarbon   is C₆H₁₆


<u><em> Empirical  formula  calculation</em></u>

Hydrocarbon  contain  carbon and hydrogen

  Step 1:  find the  mass  carbon (C) in carbon dioxide (CO₂)  and hydrogen (H )  in water

mass of  of element = molar mass  of element/ molar mass molecule x total mass of    molecule

From periodic table the molar mass  of C =12,    for CO₂ = 12+( 16 x2) =44 g/mol,     for H = 1.00 g/mol,    for H₂O = (2 x1)+16 = 18 g/mol

mass of C = 12/44 x 2.641 =0.7203 g

since there are 2 atom  of H in H₂O the molar mass of H = 1 x2 = 2 g/mol

mass of H  is therefore =  2/18 x 1.442 =0.1602 g


Step 2:  find the moles of C and H

moles = mass÷ molar mass

moles of C = 0.7203 g÷ 12 g/mol = 0.060  moles

moles of H  =  0.1602÷ 1 g/mol = 0.1602 moles


Step 3: find the mole ratio  of C and H by dividing  each  mole by smallest mole ( 0.06)

for C = 0.06/0.06 =1

  For H = 0.1602/0.06 =2.67

multiply   by 3  to remove the decimal

For C = 1 x3 =3

For H = 2.67 x3 =8

therefore the empirical formula = C₃H₈


<u><em>The molecular formula calculation</em></u>

[C₃H₈]n  = 88.1 g/mol

[12 x 3)+( 1 x8)]n =88.1 g/mol

44 n = 88.1

divide both side by 44

n=2

therefore [C₃H₈]₂   = C₆H₁₆



7 0
3 years ago
Read 2 more answers
A mixture of oxygen, hydrogen, and nitrogen exerts a total pressure of 378 kPa. If the partial pressures of oxygen and hydrogen
sertanlavr [38]
What's the relationship between total and partial pressure? The total pressure is the sum of the parcial pressures!


So for us, it would be:

378= 212+101+x

where x is the parcial pressure of nitrogen.

Now we count:
378= 212+101+x
378=313+x
378-313=x
65=x

So the parcial pressure exerted by nitrogen is 65!

8 0
3 years ago
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