The Chemistry Maths Book, Second Edition

2.7 Partial fractions 53

To derive this result, write

It is required therefore that

x 1 + 121 = 1 A(x 1 + 1 4) 1 + 1 B(x 1 − 1 3)

for allvalues of x. The values of Aand Bcan be obtained from this equation of the

numerators by the ‘method of equating coefficients’ described in Example 2.23.

Alternatively, they are obtained directly by making suitable choices of the variable x.

Thus

when x 1 = 1 3: 5 1 = 17 A and A 1 = 1527

when x 1 = 1 −4: 2 1 = 17 B and B 1 = 1227

0 Exercises 61–63

EXAMPLE 2.29Three linear factors in the denominator

Then,

3 x

2

1 + 14 x 1 − 121 = 1 A(x 1 − 1 2)(x 1 + 1 3) 1 + 1 B(x 1 − 1 1)(x 1 + 1 3) 1 + 1 C(x 1 − 1 1)(x 1 − 1 2)

so that

when x 1 = 1 1: 5 1 = 11 − 4 A and A 1 = 1 − 524

when x 1 = 1 2: 18 1 = 15 B and B 1 = 11825

when x 1 = 1 −3: 13 1 = 120 C and C 1 = 113220

Therefore

0 Exercise 64

342

123

1

20

25

1

72

2

13

2

xx

xx x x x x

+−

−− +

=−

−

• 
  

−

• 
  

()( )() ++

















3

=

−++−++−−

−

Ax x Bx x Cx x

xx

()()()()()()

()(

23 13 12

1 −−+23)( )x

342

123 1 2 3

2

xx

xx x

A

x

B

x

C

x

+−

−− +

=

−

• 
  

−

• 
  

()( )() +

x

xx

A

x

B

x

Ax Bx

x

• 
  

−+

=

−

• 
  

• 
  

=

++ −

−

2

34 3 4

43

()() 3

()()

()(xx+4)