he production capacity for acrylonitrile ( C 3 H 3 N ) in the United States is over 2 billion pounds per year. Acrylonitrile, the building block tor acrylonitrile fibers and a variety of plastics, is produced from gaseous propylene, ammonia, and oxygen: :math> 2 C 3 H 6 ( g ) + 2 NH 3 ( g ) + 3 O 2 → 2 C 3 H 3 N ( g ) + 6 H 2 O ( g ) l type='a'> Assuming 100% yield, determine the mass of acrylonitrile which can be produced from the mixture below: l> Mass Reactant msp; 5.23 × 10 2 g propylene td> msp; 5 .00 × 10 2 g ammonia td> msp; 1 .00 × 10 3 g oxygen td> i>What mass of water is formed from your mixture? Calculate the mass (in grams) of each reactant after the reaction is complete.
he production capacity for acrylonitrile ( C 3 H 3 N ) in the United States is over 2 billion pounds per year. Acrylonitrile, the building block tor acrylonitrile fibers and a variety of plastics, is produced from gaseous propylene, ammonia, and oxygen: :math> 2 C 3 H 6 ( g ) + 2 NH 3 ( g ) + 3 O 2 → 2 C 3 H 3 N ( g ) + 6 H 2 O ( g ) l type='a'> Assuming 100% yield, determine the mass of acrylonitrile which can be produced from the mixture below: l> Mass Reactant msp; 5.23 × 10 2 g propylene td> msp; 5 .00 × 10 2 g ammonia td> msp; 1 .00 × 10 3 g oxygen td> i>What mass of water is formed from your mixture? Calculate the mass (in grams) of each reactant after the reaction is complete.
Solution Summary: The author explains that the mass of acrylonitrile produced from a given mixture of reactants should be determined.
he production capacity for acrylonitrile
(
C
3
H
3
N
)
in the United States is over 2 billion pounds per year. Acrylonitrile, the building block tor acrylonitrile fibers and a variety of plastics, is produced from gaseous propylene, ammonia, and oxygen:
:math>
2
C
3
H
6
(
g
)
+
2
NH
3
(
g
)
+
3
O
2
→
2
C
3
H
3
N
(
g
)
+
6
H
2
O
(
g
)
l type='a'>
Assuming 100% yield, determine the mass of acrylonitrile which can be produced from the mixture below:
l>
Mass
Reactant
msp;
5.23
×
10
2
g
propylene
td>
msp;
5
.00
×
10
2
g
ammonia
td>
msp;
1
.00
×
10
3
g
oxygen
td>
i>What mass of water is formed from your mixture?
Calculate the mass (in grams) of each reactant after the reaction is complete.
1.
For an unknown compound with a molecular formula of C8H100:
a.
What is the DU? (show your work)
b.
Solve the structure and assign each of the following spectra.
8
6
2
ō (ppm)
4
2
0
200
150
100
50
ō (ppm)
LOD
D
4000
3000
2000
1500
1000
500
HAVENUMBERI -11
16. The proton NMR spectral information shown in this problem is for a compound with formula
CioH,N. Expansions are shown for the region from 8.7 to 7.0 ppm. The normal carbon-13 spec-
tral results, including DEPT-135 and DEPT-90 results, are tabulated:
7
J
Normal Carbon
DEPT-135
DEPT-90
19 ppm
Positive
No peak
122
Positive
Positive
cus
и
124
Positive
Positive
126
Positive
Positive
128
No peak
No peak
4°
129
Positive
Positive
130
Positive
Positive
(144
No peak
No peak
148
No peak
No peak
150
Positive
Positive
してし
3. Propose a synthesis for the following transformation. Do not draw an arrow-pushing
mechanism below, but make sure to draw the product of each proposed step (3 points).
+ En
CN
CN
Chapter 9 Solutions
Introductory Chemistry: Foundation - Text (Looseleaf)
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