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Byju's Answer
Standard XII
Chemistry
Polymer
Formation of ...
Question
Formation of polyethylene from calcium carbide taken place as follows:
C
a
C
2
+
2
H
2
O
→
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
→
C
2
H
4
n
C
2
H
4
→
(
C
H
2
−
C
H
2
)
n
The amount of polyethylene obtained from 64.0 kg of
C
a
C
2
is:
A
27 kg
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B
24 kg
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C
22 kg
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D
28 kg
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Solution
The correct option is
D
28 kg
M
C
a
C
2
=
40
+
2
×
12
=
64
g
/
m
o
l
,
No. of moles of
C
a
C
2
in 64 Kg =1000 mole= No. of moles of
C
2
H
2
formed= No. of moles of
C
2
H
4
formed
Thus n=1000
Amount of polyethylene
=
28
×
1000
=
28000
g
=
28
k
g
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0
Similar questions
Q.
The formation of polyethylene from calcium carbide takes places as follows :
C
a
C
2
+
2
H
2
O
→
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
→
C
2
H
4
n
C
2
H
4
→
(
C
H
2
−
C
H
2
)
n
The amount of polyethylene obtained from
64
kg of
C
a
C
2
is :
Q.
Formation of polyethylene from calcium carbide takes place as given below:
C
a
C
2
+
2
H
2
O
→
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
→
C
2
H
4
n
C
2
H
4
→
(
−
C
H
2
−
C
H
2
−
)
n
The amount (in kg) of polyethylene obtained from
64.1
kg of
C
a
C
2
is
Q.
Formation of polyethene from calcium carbide takes place as follows:
C
a
C
2
+
H
2
O
→
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
→
C
2
H
4
n
(
C
2
H
4
)
→
(
−
C
H
2
−
C
H
2
−
)
n
The amount of polyethylene possibly obtainable from 64.0 kg
C
a
C
2
can be
:
Q.
Formation of polyethylene from calcium carbide takes place as follows:
C
a
C
2
+
2
H
2
O
⟶
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
⟶
C
2
H
4
n
C
2
H
4
⟶
(
−
C
H
2
−
C
H
2
−
)
n
64 kg of
C
a
C
2
will give ______kg of polyethylene.
Q.
Formation of polyethylene from calcium carbide takes place as follows:
C
a
C
2
+
2
H
2
O
⟶
C
a
(
O
H
)
2
+
C
2
H
2
C
2
H
2
+
H
2
⟶
C
2
H
4
n
C
2
H
4
⟶
(
−
C
H
2
−
C
H
2
−
)
n
The amount of polyethene obtained from
64.1
k
g
of
C
a
C
2
is:
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