RD SHARMA SOLUTION CHAPTER- 9 Arithmetic Progressions | CLASS 10TH MATHEMATICS-EDUGROWN
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.1
Question 1 (i)
Solution 1 (i)
Question 1 (ii)
Solution 1 (ii)
Question 1 (iii)
Solution 1 (iii)
Question 1 (iv)
Solution 1 (iv)
Question 1 (v)
Solution 1 (v)
Question 1 (vi)
Solution 1 (vi)
Question 1 (vii)
Write the first five terms for the sequence whose nth terms is:
an = n2 – n + 1Solution 1 (vii)
Question 1 (viii)
Solution 1 (viii)
Question 1 (ix)
Solution 1 (ix)
Question 2 (i)
Solution 2 (i)
Question 2 (ii)
Solution 2 (ii)
Question 2 (iii)
Solution 2 (iii)
Question 2 (iv)
Find the indicated terms in the sequence whose nth terms are :
an = (n – 1) (2 – n) (3 + n); a1, a2, a3Solution 2 (iv)
Question 2 (v)
Find the indicated terms in the sequence whose nth terms are:
an = (-1)n n; a3, a5, a8Solution 2 (v)
Question 3 (i)
Solution 3 (i)
Question 3 (ii)
Solution 3 (ii)
Question 3 (iii)
Solution 3 (iii)
Question 3 (iv)
Solution 3 (iv)
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.2
Question 1
Solution 1
Question 2
Solution 2
Question 3
Solution 3
Question 4 (i)
Solution 4 (i)
Question 4 (ii)
Solution 4 (ii)
Question 4 (iii)
Solution 4 (iii)
Question 4 (iv)
Solution 4 (iv)
Question 5
Solution 5
Question 6(i)
Justify whether it is true to say that the sequence having following nth term is an A.P.
an = 2n – 1Solution 6(i)
Question 6(ii)
Justify whether it is true to say that the sequence having following nth term is an A.P.
an = 3n2 + 5Solution 6(ii)
Question 6(iii)
Justify whether it is true to say that the sequence having following nth term is an A.P.
an = 1 + n + n2Solution 6(iii)
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.3
Question 1
Solution 1
Question 2
Write the arithmetic progression when first term a and common difference d are as follows:
(i) a = 4, d = -3
(ii) a = -1, d = 1/2
(iii) a = -1.5, d = -0.5Solution 2
Question 3 (i)
In which of the following situations, the sequence of numbers formed will form an A.P.?
The cost of digging a well for the first metre is Rs 150 and rises by Rs 20 for each succeeding metre.
Solution 3 (i)
Question 3 (ii)
In which of the following situations, the sequence of numbers formed will form an A.P.?
The amount of air present in the cylinder when a vacuum pump removes each time 1/4 of their remaining in the cylinder.Solution 3 (ii)
Question 3(iii)
In which of the following situations, the sequence of numbers formed will form an A.P.?
Divya deposited Rs.1000 at compound interest at the rate of 10% per annum. The amount at the end of first year, second year, third year, …., and so on.Solution 3(iii)
Question 4 (i)
Solution 4 (i)
Question 4 (ii)
Solution 4 (ii)
Question 4 (iii)
Solution 4 (iii)
Question 4 (iv)
Solution 4 (iv)
Question 5 (i)
Solution 5 (i)
Question 5 (ii)
Solution 5 (ii)
Question 5 (iii)
Solution 5 (iii)
Question 5 (iv)
Solution 5 (iv)
Question 5 (v)
Solution 5 (v)
Question 5 (vi)
Find out whether of the given sequence is an arithemtic progressions. If it is an arithmetic progressions, find out the common difference.
p, p + 90, p + 180, p + 270, … where p = (999)999Solution 5 (vi)
Question 5 (vii)
Solution 5 (vii)
Question 5 (viii)
Solution 5 (viii)
Question 5 (ix)
Solution 5 (ix)
Question 5 (x)
Solution 5 (x)
Question 5 (xi)
Solution 5 (xi)
Question 5 (xii)
Solution 5 (xii)
Question 6
Solution 6
Question 7
Solution 7
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.4
Question 1 (i)
Solution 1 (i)
Question 1 (ii)
Solution 1 (ii)
Question 1 (iii)
Solution 1 (iii)
Question 1 (iv)
Solution 1 (iv)
Question 1 (v)
Solution 1 (v)
Question 1 (vi)
Solution 1 (vi)
Question 1 (vii)
Solution 1 (vii)
Question 2 (i)
Solution 2 (i)
Question 2 (ii)
Solution 2 (ii)
Question 2 (iii)
Which term of the A.P. 4, 9, 14, … is 254?Solution 2 (iii)
Question 2 (iv)
Solution 2 (iv)
Question 2 (v)
Solution 2 (v)
Question 2 (vi)
Which term of the A.P. -7, -12, -17, -22,… will be -82? Is -100 any term of the A.P.?Solution 2 (vi)
The given A.P. is -7, -12, -17, -22,…
First term (a) = -7
Common difference = -12 – (-7) = -5
Suppose nth term of the A.P. is -82.
So, -82 is the 16th term of the A.P.
To check whether -100 is any term of the A.P., take an as -100.
So, n is not a natural number.
Hence, -100 is not the term of this A.P.Question 3 (i)
Solution 3 (i)
Question 3 (ii)
Solution 3 (ii)
Question 3 (iii)
Solution 3 (iii)
Question 4 (i)
Solution 4 (i)
Question 4 (ii)
Solution 4 (ii)
Question 4 (iii)
Solution 4 (iii)
Question 4 (iv)
Solution 4 (iv)
Question 5
Solution 5
Question 6
Solution 6
Question 7
Solution 7
Question 8
Solution 8
Question 9 (i)
Solution 9 (i)
Question 9 (ii)
Find the 12th term from the end of the following arithmetic progressions:
3, 8, 13, …, 253Solution 9 (ii)
A.P. is 3, 8, 13, …, 253
We have:
Last term (l) = 253
Common difference (d) = 8 – 3 = 5
Therefore,
12th term from end
= l – (n – 1)d
= 253 – (12 – 1) (5)
= 253 – 55
= 198Question 9 (iii)
Solution 9 (iii)
Question 10
Solution 10
Question 11
Solution 11
Question 12
Solution 12
Question 13
The 26th, 11th and last term of an A.P. are 0, 3 and 
, respectively. Find the common difference and the number of terms.Solution 13
Question 14
Solution 14
Question 15
Solution 15
Question 16
Solution 16
Question 17
Solution 17
Question 18
The sum of 4th and 8th terms of an A.P. is 24 and the sum of the 6th and 10th terms is 34. Find the first term and the common difference of the A.P.Solution 18
Question 19
Solution 19
Question 20 (i)
Solution 20 (i)
Question 20 (ii)
Solution 20 (ii)
Question 21
Solution 21
Question 22 (i)
Solution 22 (i)
Question 22 (ii)
Solution 22 (ii)
Question 22 (iii)
Solution 22 (iii)
Question 22 (iv)
Solution 22 (iv)
Question 23
The eighth term of an A.P. is half of its second term and the eleventh term exceeds one third of its fourth term by 1. Find the 15th term.Solution 23
Question 24
Solution 24
Question 25
Solution 25
Question 26
Solution 26
Question 27
Solution 27
Question 28
Solution 28
Question 29
Solution 29
Question 30
Solution 30
Question 31
Solution 31
Question 32
Solution 32
Question 33
Solution 33
Question 34
Solution 34
Question 35
Solution 35
Question 36
Solution 36
Question 37
The 17th term of an A.P. is 5 more than twice its 8th term. If the 11th term of the A.P. is 43, find the nth term.Solution 37
Thus, nth term is given by
an = a + (n – 1)d
an = 3 + (n – 1)4
an = 3 + 4n – 4
an = 4n – 1Question 38
Find the number of all three digit natural numbers which are divisible by 9.Solution 38
The smallest three digit number divisible by 9 = 108
The largest three digit number divisible by 9 = 999
Here let us write the series in this form,
108, 117, 126, …………….., 999
a = 108, d = 9
tn = a + (n – 1)d
999= 108 + (n – 1)9
⇒ 999 – 108 = (n – 1)9
⇒ 891 = (n – 1)9
⇒ (n – 1) = 99
⇒ n = 99 + 1
∴ n = 100
Number of terms divisible by 9
Number of all three digit natural numbers divisible by 9 is 100.Question 39
The 19th term of an A.P. is equal to three times its sixth term. If its 9th term is 19, find the A.P.Solution 39
Question 40
The 9th term of an A.P. is equal to 6 times its second term. If its 5th term is 22, find the A.P.Solution 40
Question 41
The 24th term of an A.P. is twice its 10th term. Show that its 72nd term is 4 times its 15th term.Solution 41
Let the first term be ‘a’ and the common difference be ‘d’
t24 = a + (24 – 1)d = a + 23d
t10 = a + (10 – 1)d = a + 9d
t72 = a + (72 – 1)d = a + 71d
t15 = a + (15 – 1)d = a + 14d
t24 = 2t10
⇒ a + 23d = 2(a + 9d)
⇒ a + 23d = 2a + 18d
⇒ 23d – 18d = 2a – a
∴ 5d = a
t72 = a + 71d
= 5d + 71d
= 76d
= 20d + 56d
= 4 × 5d + 4 × 14d
= 4(5d + 14d)
= 4(a + 14d)
= 4t15
∴t72 = 4t15Question 42
Find the number of natural numbers between 101 and 999 which are divisible by both 2 and 5.Solution 42
L.C.M. of 2 and 5 = 10
3- digit number after 100 divisible by 10 = 110
3- digit number before 999 divisible by 10 = 990
Let the number of natural numbers be ‘n’
990 = 110 + (n – 1)d
⇒ 990 – 110 = (n – 1) × 10
⇒ 880 = 10 × (n – 1)
⇒ n – 1 = 88
∴ n = 89
The number of natural numbers between 110 and 999 which are divisible by 2 and 5 is 89.Question 43
If the seventh term of an A.P. is 1/9 and its ninth term is 1/7, find its (63)rd term.Solution 43
Let the first term be ‘a’ and the common difference be ‘d’.
Question 44
The sum of 5th and 9th terms of an A.P. is 30. If its 25th term is three times its 8th term, find the A.P.Solution 44
Question 45
Find where 0(zero) is a term of the A.P. 40, 37, 34, 31, …Solution 45
Let the first term be ‘a’ and the common difference be ‘d’.
a = 40
d = 37 – 40 = – 3
Let the nth term of the series be 0.
tn = a + (n – 1)d
⇒ 0 = 40 + (n – 1)( – 3)
⇒ 0 = 40 – 3(n – 1)
⇒ 3(n – 1) = 40
∴ No term of the series is 0.Question 46
Find the middle term of the A.P. 213, 205, 197, …, 37.Solution 46
Given A.P. is 213, 205, 197, …, 37.
Here, first term = a = 213
And, common difference = d = 205 – 213 = -8
an = 37
nth term of an A.P. is given by
an = a + (n – 1)d
⇒ 37 = 213 + (n – 1)(-8)
⇒ 37 = 213 – 8n + 8
⇒ 37 = 221 – 8n
⇒ 8n = 221 – 37
⇒ 8n = 184
⇒ n = 23
So, there are 23 terms in the given A.P.
⇒ The middle term is 12th term.
⇒ a12 = 213 + (12 – 1)(-8)
= 213 + (11)(-8)
= 213 – 88
= 125
Hence, the middle term is 125.Question 47
If the 5th term of an A.P. is 31 and 25th term is 140 more than the 5th term, find the A.P.Solution 47
Let a be the first term and d be the common difference of the A.P.
Then, we have
a5 = 31 and a25 = a5 + 140
⇒ a + 4d = 31 and a + 24d = a + 4d + 140
⇒ a + 4d = 31 and 20d = 140
⇒ a + 4d = 31 and d = 7
⇒ a + 4(7) = 31 and d = 7
⇒ a + 28 = 31 and d = 7
⇒ a = 3 and d = 7
Hence, the A.P. is a, a + d, a + 2d, a + 3d, ……
i.e. 3, 3 + 7, 3 + 2(7), 3 + 3(7), ……
i.e. 3, 10, 17, 24, …..Question 48
Find the sum of two middle terms of the A.P.
Solution 48
Question 49
Solution 49
Question 50
Solution 50
Question 51
How many numbers lie between 10 and 300, which when divided by 4 leave a remainder 3?Solution 51
Question 52
Find the 12th term from the end of the A.P. -2, -4, -6, …, -100.Solution 52
Question 53
For the A.P.: -3, -7, -11, …, can we find a30 – a20 without actually finding a30 and a20? Give reason for your answer.Solution 53
Question 54
Two A.P.s have the same common difference. The first term of one A.P. is 2 and that of the other is 7. The difference between their 10th terms is the same as the difference between their 21st terms, which is the same as the difference between any two corresponding terms. Why?Solution 54
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.5
Question 1
Solution 1
Question 2
Solution 2
Question 3
Solution 3
Question 4
Solution 4
Question 5
Solution 5
Question 6
Solution 6
Question 7
Solution 7
Question 8
Divide 56 in four parts in A.P. such that the ratio of the product of their extremes to the product of their means is 5 : 6.Solution 8
Question 9
The sum of the first three numbers in an arithmetic progression is 18. If the product of the first and third term is 5 times the common difference, find the three numbers.Solution 9
Let the first three terms of an A.P. be a – d, a, a + d
As per the question,
(a – d) + a + (a + d) = 18
∴ 3a = 18
∴ a = 6
Also, (a – d)(a + d) = 5d
∴ (6 – d)(6 + d) = 5d
∴ 36 – d2 = 5d
∴ d2 + 5d – 36 = 0
∴ d2 + 9d – 4d – 36 = 0
∴ (d + 9)(d – 4) = 0
∴ d = -9 or d = 4
Thus, the terms will be 15, 6, -3 or 2, 6, 10.Question 10
Spilt 207 into three parts such that these are in A.P. and the product of the two smaller parts is 4623.Solution 10
Question 11
The angles of a triangle are in A.P. the greatest angle is twice the least. Find all the angles.Solution 11
Question 12
The sum of four consecutive numbers in A.P. is 32 and the ratio of the product of the first and last terms to the product of two middle terms is 7 : 15. Find the number.Solution 12
Chapter 9 – Arithmetic Progressions Exercise Ex. 9.6
Question 1 (i)
Solution 1 (i)
Question 1 (ii)
Solution 1 (ii)
Question 1 (iii)
Solution 1 (iii)
Question 1 (iv)
Solution 1 (iv)
Question 1 (v)
Solution 1 (v)
Question 1 (vi)
Solution 1 (vi)
Question 1 (vii)
Solution 1 (vii)
Question 1 (viii)
Solution 1 (viii)
Question 2
Solution 2
Question 3
Solution 3
Question 4
Find the sum of last ten terms of the A.P: 8, 10, 12, 14,.., 126.Solution 4
Question 5 (i)
Solution 5 (i)
Question 5 (ii)
Solution 5 (ii)
Question 5 (iii)
Solution 5 (iii)
Question 5 (iv)
Find the sum of the first 15 terms of each of the following sequences having nth term as
yn = 9 – 5nSolution 5 (iv)
Question 6
Solution 6
Question 7
Solution 7
Question 8
Solution 8
Question 9
Solution 9
Question 10 (i)
Solution 10 (i)
Question 10 (ii)
How many terms are there in the A.P. whose first and fifth terms are -14 and 2 respectively and the sum of the terms is 40?Solution 10 (ii)
Question 10 (iii)
How many terms of the A.P. 9, 17, 25, … must be taken so that their sum is 636?
Remark* – Question modified.Solution 10 (iii)
Question 10 (iv)
Solution 10 (iv)
Question 10(v)
How many terms of the A.P. 27, 24, 21… should be taken so that their sum is zero?Solution 10(v)
Question 10 (vi)
How many terms of the A.P. 45, 39, 33 … must be taken so that their sum is 180? Explain the double answer.Solution 10 (vi)
Let the required number of terms be n.
As the given A.P. is 45, 39, 33 …
Here, a = 45 and d = 39 – 45 = -6
The sum is given as 180
∴ Sn = 180
When n = 10,
When n = 6,
Hence, number of terms can be 6 or 10.Question 11 (i)
Solution 11 (i)
Question 11 (ii)
Solution 11 (ii)
Question 11 (iii)
Solution 11 (iii)
Question 12(i)
Find the sum of
The first 15 multiples of 8.Solution 12(i)
Multiples of 8 are8,16,24,…
Now,
n=15, a=8, d=8
Question 12(ii)
Find the sum of
The first 40 positive integers divisible by (a) 3 (b) 5 (c) 6.Solution 12(ii)
a) divisible by 3 3,6,9,… Now, n=40, a=3, d=3
b) divisible by 5 5,10,15,… Now, n=40, a=5, d=5
c)divisible by 6 6,12,18,… Now, n=40, a=3, d=6
Question 12(iii)
Find the sum of
All 3 – digit natural numbers which are divisible by 13.Solution 12(iii)
Three-digit numbers divisible by 13 are 104,117, 130,…988. Now, a=104, l=988
Question 12(iv)
Find the sum of
All 3 – digit natural numbers, which are multiples of 11. Solution 12(iv)
Three-digit numbers which are multiples of 11 are 110,121, 132,…990. Now, a=110, l=990
Question 12(v)
Find the sum of
All 2 – digit natural numbers divisible by 4. Solution 12(v)
Two-digit numbers divisible by 4 are 12,16,…96. Now, a=12, l=96
Question 12 (vi)
Find the sum of first 8 multiples of 3.Solution 12 (vi)
The multiples of 3 are 3, 6, 9, 12, 15, 18, 21, …
These are in A.P. with,
first term (a) = 3 and common difference (d) = 3
To find S8 when a = 3, d = 3
Hence, the sum of first 8 multiples of 3 is 108.Question 13 (i)
Solution 13 (i)
Question 13 (ii)
Solution 13 (ii)
Question 13 (iii)
Solution 13 (iii)
Question 13 (iv)
Solution 13 (iv)
Question 13 (v)
Solution 13 (v)
Question 13 (vi)
Solution 13 (vi)
Question 13 (vii)
Solution 13 (vii)
Question 13 (viii)
Find the sum:
Solution 13 (viii)
Let ‘a’ be the first term and ‘d’ be the common difference.
tn = a + (n – 1)d
Question 14
Solution 14
Question 15
Solution 15
Question 16
Solution 16
Question 17
Solution 17
Question 18
Solution 18
Question 19
Solution 19
Question 20
Solution 20
Question 21
Solution 21
Question 22 (i)
Solution 22 (i)
Question 22 (ii)
If the sum of first four terms of an A.P. is 40 and that of first 14 terms is 280. Find the sum of its first n terms.Solution 22 (ii)
Sum of first n terms of an AP is given by
As per the question, S4 = 40 and S14 = 280
Also, 
Subtracting (i) from (ii), we get, 10d = 20
Therefore, d = 2
Substituting d in (i), we get, a = 7
Sum of first n terms becomes
Question 23
Solution 23
Question 24
Solution 24
Question 25
Solution 25
Question 26
The first and the last terms of an A.P. are 7 and 49 respectively. If sum of all its terms is 420, find its common difference.Solution 26
Let the number of terms be ‘n’, ‘a’ be the first term and ‘d’ be the common difference.
tn = a + (n – 1)d
⇒ 49 = 7 + (n – 1)d
⇒ 42 = (n – 1)d…..(i)
∴ 840 = n[14 + (n – 1)d]……(ii)
Substituting (ii) in (i),
840 = n[14 + 42]
⇒ 840 = 56n
∴ n = 15
Substituting n in (i)
42 = (15 – 1)d
Common difference, d =3Question 27
The first and the last terms of an A.P. are 5 and 45 respectively. If the sum of all its terms is 400, find its common difference.Solution 27
Let the number of terms be ‘n’, ‘a’ be the first term and ‘d’ be the common difference.
tn = a + (n – 1)d
⇒ 45 = 5 + (n – 1)d
⇒ 40 = (n – 1)d…..(i)
∴ 800 = n[10 + (n – 1)d]……(ii)
Substituting (ii) in (i),
800 = n[10 + 40]
⇒ 800 = 50n
∴ n = 16
Substituting n in (i)
40 = (16 – 1)d
Question 28
The sum of first q terms of an A.P. is 162. The ratio of its 6th term to its 13th term is 1 : 2. Find the first and 15th term of the A.P.Solution 28
Question 29
If the 10th term of an A.P. is 21 and the sum of its first ten terms is 120, find its nth term.Solution 29
Let ‘a’ be the first term and ‘d’ be the common difference.
tn = a + (n – 1)d
t10 = a + (10 – 1)d
⇒ 21 = a + 9d……(i)
120 = 5[2a + 9d]
24 = 2a + 9d………(ii)
(ii) – (i) ⇒
a = 3
Substituting a in (i), we get
a + 9d = 21
⇒ 3 + 9d = 21
⇒ 9d = 18
∴d = 2
tn = a + (n – 1)d
= 3 + (n – 1)2
= 3 + 2n – 2
∴ tn= 2n + 1Question 30
The sum of the first 7 terms of an A.P. is 63 and the sum of its next 7 terms is 161. Find the 28th term of this A.P.Solution 30
Let the first term be ‘a’ and the common difference be ‘d’ 
63 = 7[a + 3d]
9 = a + 3d……….(i)
Sum of the next 7 terms = 161
Sum of the first 14 terms = 63 + 161 = 224
224 = 7[2a + 13d]
32 = 2a + 13d………..(ii)
Solving (i) and (ii), we get
d = 2, a = 3
28th term of the A.P., t28 = a + (28 – 1)d
= 3 + 27 × 2
= 3 + 54
= 57
∴ The 28th of the A.P. is 57.Question 31
The sum of first seven terms of an A.P. is 182. If its 4th and the 17th terms are in the ratio 1: 5, find the A.P.Solution 31
Let the first term be ‘a’ and the common difference be ‘d’.
26 × 2 = [2a + (7 – 1)d]
52 = 2a + 6d
26 = a + 3d……..(i)
From (i) and (ii),
⇒ 13d = 104
∴d = 8
From (i), a = 2
The A.P. is 2, 10, 18, 26,…….Question 32
The nth term of an A.P. is given by (- 4n + 15). Find the sum of the first 20 terms of this A.P.Solution 32
Let the first term of the A.P. be ‘a’ and the common difference be ‘d’.
tn = – 4n + 15
t1 = – 4 × 1 + 15 = 11
t2 = – 4 × 2 + 15 = 7
t3 = – 4 × 3 + 15 = 3
Common Difference, d = 7 – 11 = -4
= 10 × (-54)
= – 540
*Note: Answer given in the book is incorrect.Question 33
Solution 33
Question 34
Sum of the first 14 terms of an A.P. is 1505 and its first term is 10. Find its 25th term.Solution 34
Question 35
Solution 35
Question 36
Solution 36
Question 37
Find the number of terms of the A.P. – 12, – 9, – 6, …, 21. If 1 is added to each term of this A.P., then find the sum of all terms of the A.P. thus obtained.Solution 37
Let the number of the terms be ‘n’.
Common Difference, d = – 9 + 12 = 3
tn = a + (n – 1)d
⇒ 21 = – 12 + 3(n – 1)
⇒ 21 + 12 = 3(n – 1)
⇒ 3(n – 1) = 33
⇒ n – 1 = 11
∴n = 12
Number of terms of the series = 12
If 1 is added to each term of the above A.P.,
– 11, – 8, – 5,…….,22
Number of terms in the series, n1 = 12
Sum of all the terms,
The sum of the terms = 66Question 38
The sum of the first n terms of an A.P. is 3n2 + 6n. Find the nth term of this A.P.Solution 38
Sum of n terms of the A.P., Sn = 3n2 + 6n
S1 = 3 × 12 + 6 × 1 = 9 = t1 ……(i)
S2 = 3 × 22 + 6 × 2 = 24 = t1 + t2 …….(ii)
S3 = 3 × 32 + 6 × 3 = 45 = t1 + t2 + t3 ……..(iii)
From (i), (ii) and (iii),
t1 = 9, t2 = 15, t3 = 21
Common difference, d = 15 – 9 = 6
nth of the AP, tn = a + (n – 1)d
= 9 + (n – 1) 6
= 9 + 6n – 6
= 6n + 3
Thus, the nth term of the given A.P. = 6n + 3Question 39
The sum of the first n terms of an A.P. is 5n – n2. Find the nth term of this A.P.Solution 39
Sn = 5n – n2
S1 = 5 × 1 – 12 = 4 = t1………..(i)
S2 = 5 × 2 – 22 = 6 = t1 +t2………..(ii)
S3 = 5 × 3 – 32 = 6 = t1 + t2 + t3……….(iii)
From (i), (ii) and (iii),
t1 = 4, t2 = 2, t3 = 0
Here a = 4, d = 2 – 4 = – 2
tn = a + (n – 1)d
= 4 + (n – 1)( -2)
= 4 – 2n + 2
= 6 – 2nQuestion 40
The sum of the first n terms of an A.P. is 4n2 + 2n. find the nth term of this A.P.Solution 40
Sn = 4n2 + 2n
S1 = 4 × 12 + 2 × 1 = 6 = t1………….(i)
S2 = 4 × 22 + 2 × 2 = 20 = t1 + t2……….(ii)
S3 = 4 × 32 + 2 × 3 = 42 = t1 + t2 + t3………..(iii)
From (i), (ii) and (iii),
t1 = 6, t2 = 14, t3 = 22
Here a = 6, d = 14 – 6 = 8
tn = a + (n – 1)d
tn = 6 + (n – 1)8
= 6 + 8n – 8
= 8n – 2
*Note: Answer given in the book is incorrect.Question 41
The sum of first n terms of an A.P. is 3n2 + 4n. find the 25th term of this A.P.Solution 41
Sum of n terms of the A.P., Sn = 3n2 + 4n
S1 = 3 × 12 + 4 × 1 = 7 = t1………(i)
S2 = 3 × 22 + 4 × 2 = 20 = t1 + t2…….(ii)
S3 = 3 × 32 + 4 × 3 = 39 = t1 + t2 + t3 …….(iii)
From (i), (ii), (iii)
t1 = 7, t2 = 13, t3 = 19
Common difference, d = 13 – 7 = 6
25th of the term of this A.P., t25 = 7 + (25 – 1)6
= 7 + 144 = 151
∴The 25th term of the A.P. is 151.Question 42
The sum of first n terms of an A.P. is 5n2 + 3n. If its mth term is 168, find the value of m. Also, find the 20th term of this A.P.Solution 42
Sum of the terms, Sn = 5n2 + 3n
S1 = 5 × 12 + 3 × 1 = 8 = t1………..(i)
S2 = 5 × 22 + 3 × 2 = 26 = t1 + t2…………..(ii)
S3 = 5 × 32 + 3 × 3 = 54 = t1 + t2 + t3…………(iii)
From(i), (ii) and (iii),
t1 = 8, t2 = 18, t3 = 28
Common difference, d = 18 – 8 = 10
tm = 168
⇒ a + (m – 1)d = 168
⇒ 8 + (m – 1)×10 = 168
⇒ (m – 1) × 10 = 160
⇒ m – 1 = 16
∴m = 17
t20 = a + (20 – 1)d
= 8 + 19 × 10
= 8 + 190
= 198Question 43
The sum of first q terms of an A.P. is 63q – 3q2. If its pth term -60, find the value of p. Also, find the 11th term of this A.P.
Remark* – Question modified.Solution 43
Let the first term be ‘a’ and the common difference be ‘d’.
Sum of the first ‘q’ terms, Sq = 63q – 3q2
S1 = 63 × 1 – 3 × 12 = 60 = t1……..(i)
S2 = 63 × 2 – 3 × 22 = 114 = t1 + t2…..(ii)
S3 = 63 × 3 – 3 × 32 = 162 = t1 + t2 + t3 …..(iii)
From (i), (ii) and (iii),
t1 = 60
t2 = 54
t3 = 48
Common difference, d = 54 – 60 = – 6
tp = a + (p – 1)d
⇒ -60 = 60 + (p – 1)( – 6)
⇒ – 120 = – 6(p – 1)
⇒ p – 1 = 20
∴p = 21
t11 = 60 + (11 – 1)( – 6)
=60 + 10( – 6)
= 60 – 60
= 0
The 11th term of the A.P. is 0.Question 44
The sum of first m terms of an A.P. is 4m2 – m. If its nth term is 107, find the value of n. Also, find the 21st term of this A.P.Solution 44
Let the first term of the A.P. be ‘a’ and the common difference be ‘d’
Sum of m terms of the A.P., Sm = 4m2 – m
S1 = 4 × 12 – 1 = 3 = t1 …….(i)
S2 = 4 × 22 – 2 = 14 = t1 + t2……..(ii)
S3 = 4 × 32 – 3 = 33 = t1 + t2 + t3 …….(iii)
From (i), (ii) and (iii)
t1 = 3, t2 = 11, t3 = 19
Common difference, d = 11 – 3 = 8
tn = 107
⇒ a + (n – 1)d = 107
⇒ 3 + (n – 1)8 = 107
⇒ 8(n – 1) = 104
⇒ n – 1 = 13
∴n = 14
t21 = 3 + (21 – 1)8 = 3 + 160 = 163Question 45
Solution 45
Question 46
If the sum of first n terms of an A.P. is 
then find its nth term. Hence write its 20th term.Solution 46
Question 47 (i)
Solution 47 (i)
Question 47 (ii)
If the sum of first n terms of an A.P. is n2, then find its 10th term.Solution 47 (ii)
Sum of first n terms of an AP is given by
As per the question, Sn = n2
Hence, the 10th term of this A.P. is 19.Question 48
Solution 48
Question 49
Solution 49
Question 50 (i)
Solution 50 (i)
Question 50 (ii)
Solution 50 (ii)
Question 51
Solution 51
Question 52
Solution 52
Question 53
Solution 53
Question 54
Solution 54
Question 55 (i)
Solution 55 (i)
Question 55(ii)
Find the sum of all integers between 100 and 550 which are not divisible by 9.Solution 55(ii)
Question 55(iii)
Find the sum of all integers between 1 and 500 which are multiplies 2 as well as of 5.Solution 55(iii)
Question 55(iv)
Find the sum of all integers from 1 to 500 which are multiplies 2 as well as of 5.Solution 55(iv)
Question 55(v)
Find the sum of all integers from 1 to 500 which are multiples of 2 or 5.Solution 55(v)
Question 56 (i)
Solution 56 (i)
Question 56 (ii)
Solution 56 (ii)
Question 56 (iii)
Solution 56 (iii)
Question 56 (iv)
Solution 56 (iv)
Question 56 (v)
Solution 56 (v)
Question 56 (vi)
Let there be an A.P. with first term ‘a’, common difference ‘d’. If an denotes its nth term and Sn the sum of first n terms, find
n and an, if a = 2, d = 8 and Sn = 90.Solution 56 (vi)
Question 56(vii)
Let there be an A.P. with first term ‘a’, common difference ‘d’. If an denotes its nth term and Sn the sum of first n terms, find k, if Sn = 3n2 + 5n and ak = 164.Solution 56(vii)
Question 56 (viii)
Let there be an A.P. with first term ‘a’, common difference ‘d’. If an denotes its nth term and Sn the sum of first n terms, find S22, if d = 22 and a22 = 149.Solution 56 (viii)
The nth term of an A.P. is given by an = a + (n – 1)d
Sum of first n terms of an AP is given by
Question 57
If Sn denotes the sum of first n terms of an A.P., prove that S12 = 3(S8 – S4).Solution 57
Question 58
A thief, after committing a theft runs at a uniform speed of 50 m/minute. After 2 minutes, a policeman runs to catch him. He goes 60 m in first minute and increases his speed by 5 m/minute every succeeding minute. After how many minutes, the policeman will catch the thief?Solution 58
Question 59
The sums of first n terms of three A.P.s are S1, S2 and S3. The first term of each is 5 and their common differences are 2, 4 and 6 respectively. Prove that S1 + S3 = 2S2.Solution 59
Question 60
Resham wanted to save at least Rs. 6500 for sending her daughter to school next year (after 12 months). She saved Rs. 450 in the first month and raised her saying by Rs.20 every next month. How much will she be able to save in next 12 months? Will she be able to send her daughter to the school next year?Solution 60
Question 61
In a school, students decided to plant trees in and around the school to reduce air pollution. It was decided that the number of trees, that each section of each class will plant, will be double of the class in which they are studying. If there are 1 to 12 classes in the school and each class has two sections, find how many trees were planted by the students.Solution 61
Trees planted by the student in class 1 = 2 + 2 = 4
Trees planted by the student in class 2 = 4 + 4 = 8
Trees planted by the students in class 3 = 6 + 6 = 12
…….
Trees planted by the students in class 12 = 24 + 24 = 48
∴ the series will be 4, 8, 12,………., 48
a = 4, Common Difference, d = 8 – 4 = 4
Let ‘n’ be the number of terms in the series.
48 = 4 + (n – 1)4
⇒ 44 = 4(n – 1)
⇒ n – 1 = 11
∴n = 12
Sum of the A.P. series,
Number of trees planted by the students = 312Question 62
Ramkali would need Rs. 1800 for admission fee and books etc., for her daughter to start going to school from the next year. She saved Rs. 50 in the first month of this year and increased her monthly saving by Rs. 20. After a year, how much money will she save? Will she be able to fulfill her dream of sending her daughter to school?Solution 62
Since, the difference between the savings of two consecutive months is Rs. 20, therefore the series is an A.P.
Here, the savings of the first month is Rs. 50
First term, a = 50, Common difference, d = 20
No. of terms = no. of months
No. of terms, n = 12
= 6[100 + 220]
= 6×320
= 1920
After a year, Ramakali will save Rs. 1920.
Yes, Ramakali will be able to fulfill her dream of sending her daughter to school.Question 63
Solution 63
Question 64
Solution 64
Question 65
Solution 65
Question 66
Solution 66
Question 67
Solution 67
Question 68
Solution 68
Question 69
Solution 69
Question 70
If Sn denotes the sum of the first n terms of an A.P., prove that S30 = 3(S20 – S10).Solution 70
Let the first term of the A.P. be ‘a’ and the common difference be ‘d’.
R.H.S.
= 3(S20 – S10)
= 3(10[2a + 19d] – 5[2a + 9d])
= 3(20a + 190d – 10a – 45d)
= 3(10a + 145d)
= 3 × 5(2a + 29d)
= 15[2a + (30 – 1)d]
= S30
= L.H.S.Question 71
Solve the equation
(-4) + (-1) + 2 + 5 + …. + x = 437.Solution 71
Question 72
Which term of the A.P. -2, -7, -12,…, will be -77? Find the sum of this A.P. upto the term -77.Solution 72
Question 73
The sum of the first n terms of an A.P. whose first term is 8 and the common difference is 20 is equal to the sum of first 2n terms of another A.P. whose first term is -30 and common difference is 8. Find n.Solution 73
Question 74
The students of a school decided to beautify the school on the annual day by fixing colourful flags on the straight passage of the school. They have 27 flags to be fixed at intervals of every 2 metre. The flags are stored at the position of the middle most flag. Ruchi was given the responsibility of placing the flags. Ruchi kept her books where the flags were stored. She could carry only one flag at a time. How much distance did she cover in completing this job and returning back to collect her books? What is the maximum distance she travelled carrying a flag?Solution 74
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