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Byju's Answer
Standard XIII
Mathematics
First Fundamental Theorem of Calculus
∫0π/6 2+3x2co...
Question
∫
π
6
0
(
2
+
3
x
2
)
c
o
s
3
x
d
x
=
A
1
36
(
π
+
16
)
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B
1
36
(
π
−
16
)
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C
1
36
(
π
2
−
16
)
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D
1
36
(
π
2
+
16
)
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Solution
The correct option is
D
1
36
(
π
2
+
16
)
L
e
t
I
=
∫
π
6
0
(
2
+
3
x
2
)
c
o
s
3
x
d
x
=
[
s
i
n
3
x
3
(
2
+
3
x
2
)
]
π
6
0
−
∫
π
6
0
s
i
n
3
x
3
.6
x
.
d
x
=
1
36
(
π
2
+
16
)
Suggest Corrections
2
Similar questions
Q.
∫
π
6
0
(
2
+
3
x
2
)
c
o
s
3
x
d
x
=
Q.
∫
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/
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cos
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Q.
If
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sin
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=
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/
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0
sin
n
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dx
, then k equals
Q.
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cos
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Q.
∫
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