Class 9 Exam > Class 9 Notes > Mathematics (Maths) Class 9 > RD Sharma Solutions: Algebraic Identities- 2
Algebraic Identities- 2 RD Sharma Solutions | Mathematics (Maths) Class 9 PDF Download
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Page 1
Q u e s t i o n : 1 5
Write the following in the expanded form:
i
(a +2b + c)
2
ii
(2a - 3b - c)
2
iii
(-3x + y + z)
2
iv
(m + 2n - 5p)
2
v
(2 + x - 2y)
2
vi
(a
2
+ b
2
+ c
2
)
2
vii
(ab + bc + ca)
2
viii
x
y
+
y
z
+
z
x
2
( )
Page 2
Q u e s t i o n : 1 5
Write the following in the expanded form:
i
(a +2b + c)
2
ii
(2a - 3b - c)
2
iii
(-3x + y + z)
2
iv
(m + 2n - 5p)
2
v
(2 + x - 2y)
2
vi
(a
2
+ b
2
+ c
2
)
2
vii
(ab + bc + ca)
2
viii
x
y
+
y
z
+
z
x
2
( )
ix
a
bc
+
b
ca
+
c
ab
2
x
x +2y +4z)
2
xi
(2x - y + z)
2
xii
(-2x + 3y + 2z)
2
S o l u t i o n :
In the given problem, we have to find expended form
i Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
iii Given
We shall use the identity
(a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
(-3x +y +z)
2
= (-3x)
2
+y
2
+z
2
-2 ×3x ×y +2yz -2 ×(-3x)×z
Hence the expended form of is .
iv Given
( )
(
Page 3
Q u e s t i o n : 1 5
Write the following in the expanded form:
i
(a +2b + c)
2
ii
(2a - 3b - c)
2
iii
(-3x + y + z)
2
iv
(m + 2n - 5p)
2
v
(2 + x - 2y)
2
vi
(a
2
+ b
2
+ c
2
)
2
vii
(ab + bc + ca)
2
viii
x
y
+
y
z
+
z
x
2
( )
ix
a
bc
+
b
ca
+
c
ab
2
x
x +2y +4z)
2
xi
(2x - y + z)
2
xii
(-2x + 3y + 2z)
2
S o l u t i o n :
In the given problem, we have to find expended form
i Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
iii Given
We shall use the identity
(a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
(-3x +y +z)
2
= (-3x)
2
+y
2
+z
2
-2 ×3x ×y +2yz -2 ×(-3x)×z
Hence the expended form of is .
iv Given
( )
(
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
v Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is .
vi Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
(vii) Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
viii Given
We shall use the identity
Here
By applying in identity we get
Page 4
Q u e s t i o n : 1 5
Write the following in the expanded form:
i
(a +2b + c)
2
ii
(2a - 3b - c)
2
iii
(-3x + y + z)
2
iv
(m + 2n - 5p)
2
v
(2 + x - 2y)
2
vi
(a
2
+ b
2
+ c
2
)
2
vii
(ab + bc + ca)
2
viii
x
y
+
y
z
+
z
x
2
( )
ix
a
bc
+
b
ca
+
c
ab
2
x
x +2y +4z)
2
xi
(2x - y + z)
2
xii
(-2x + 3y + 2z)
2
S o l u t i o n :
In the given problem, we have to find expended form
i Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
iii Given
We shall use the identity
(a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
(-3x +y +z)
2
= (-3x)
2
+y
2
+z
2
-2 ×3x ×y +2yz -2 ×(-3x)×z
Hence the expended form of is .
iv Given
( )
(
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
v Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is .
vi Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
(vii) Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
viii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ix Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
x Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is
xi Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is
xii Given
Page 5
Q u e s t i o n : 1 5
Write the following in the expanded form:
i
(a +2b + c)
2
ii
(2a - 3b - c)
2
iii
(-3x + y + z)
2
iv
(m + 2n - 5p)
2
v
(2 + x - 2y)
2
vi
(a
2
+ b
2
+ c
2
)
2
vii
(ab + bc + ca)
2
viii
x
y
+
y
z
+
z
x
2
( )
ix
a
bc
+
b
ca
+
c
ab
2
x
x +2y +4z)
2
xi
(2x - y + z)
2
xii
(-2x + 3y + 2z)
2
S o l u t i o n :
In the given problem, we have to find expended form
i Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
iii Given
We shall use the identity
(a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
(-3x +y +z)
2
= (-3x)
2
+y
2
+z
2
-2 ×3x ×y +2yz -2 ×(-3x)×z
Hence the expended form of is .
iv Given
( )
(
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
v Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is .
vi Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
(vii) Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is .
viii Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
ix Given
We shall use the identity
Here
By applying in identity we get
Hence the expended form of is
x Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is
xi Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is
xii Given
We shall use the identity (a +b +c)
2
= a
2
+b
2
+c
2
+2ab +2bc +2ca
Here
By applying in identity we get
Hence the expended form of is .
Q u e s t i o n : 1 6
If a + b + c = 0 and a
2
+ b
2
+ c
2
= 16, find the value of ab + bc + ca.
S o l u t i o n :
In the given problem, we have to find value of
Given and
Squaring the equation , we get
Now putting the value of in above equation we get,
Taking 2 as common factor we get
Hence the value of is .
Q u e s t i o n : 1 7
If a
2
+ b
2
+ c
2
= 16 and ab + bc + ca = 10, find the value of a + b + c.
S o l u t i o n :
In the given problem, we have to find value of
Given
Multiply equation with 2 on both sides we get,
Now adding both equation and we get
We shall use the identity
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FAQs on Algebraic Identities- 2 RD Sharma Solutions - Mathematics (Maths) Class 9
| 1. What are algebraic identities? |  |
Ans. Algebraic identities are mathematical expressions that represent the relationships between different algebraic variables and constants. These identities help in simplifying complex expressions and solving equations more easily.
| 2. What are some commonly used algebraic identities? | |
Ans. Some commonly used algebraic identities include:
- $(a + b)^2 = a^2 + 2ab + b^2$
- $(a - b)^2 = a^2 - 2ab + b^2$
- $a^2 - b^2 = (a + b)(a - b)$
- $(a + b + c)^2 = a^2 + b^2 + c^2 + 2ab + 2ac + 2bc$
- $a^3 + b^3 = (a + b)(a^2 - ab + b^2)$
| 3. How can algebraic identities be used to simplify expressions? | |
Ans. Algebraic identities allow us to simplify complex expressions by replacing them with simpler forms. By applying these identities, we can manipulate the given expression to make it easier to solve or understand.
| 4. Can algebraic identities be used in solving equations? | |
Ans. Yes, algebraic identities can be used to solve equations. By applying the relevant identity, we can simplify the equation, rearrange terms, and solve for the unknown variable.
| 5. Are there any limitations or conditions while using algebraic identities? | |
Ans. Yes, there are certain limitations and conditions while using algebraic identities. For example, some identities may only be valid for certain values of the variables or when specific conditions are met. It is important to carefully apply the identities and ensure that they are applicable to the given problem.
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Nov 24, 2024 Last updated |
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