Page No 5.52
Ques.22. (i) If the sum of 7 terms of an A.P. is 49 and that of 17 terms is 289, find the sum of n terms.
(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.
Ans. (i) In the given problem, we need to find the sum of n terms of an A.P. Let us take the first term as a and the common difference as d.
Here, we are given that,
S7 = 49 ...(1)
S17 = 289 ...(2)
So, as we know the formula for the sum of n terms of an A.P. is given by,
Sn = n/2[2a + (n - 1)d]
Where; a = first term for the given A.P.
d = common difference of the given A.P.
n = number of terms
So, using the formula for n = 7, we get,
S7 = 7/2[2(a) + (7 - 1)(d)]
49 = (7/2)[2a + (6)(d)] (Using 1)
49 = 7a + 21d
Further simplifying for a, we get,
a = 7 - 3d ...(3)
Also, using the formula for n = 17, we get,
(Using 2)
289 = 17a + 136d
Further simplifying for a, we get,
a = 17 - 8d ...(4)
Subtracting (3) from (4), we get,
a - a = (17 - 8d)-(7 - 3d)
0 = 17 - 8d - 7 + 3d
0 = 10 - 5d
5d = 10
d = 2
Now, to find a, we substitute the value of d in (3),
a = 7 - 3(2)
a = 7 - 6 = 1
Now, using the formula for the sum of n terms of an A.P., we get,
= n/2[2 + 2n - 2]
= (n/2)(2n) = n2
Therefore, the sum of first n terms for the given A.P. is Sn = n2.
(ii) Given:
S4 = 40
S14 = 280
Now,
⇒ 40 = 2[2a + 3d]
⇒ 2a +3d = 20 ...(1)
S14 = (14/2)[2a + (14 - 1)d]
⇒ 280 = 7[2a + 13d]
⇒ 2a + 13d = 40 ...(2)
Subtracting (1) from (2), we get
10d = 20
⇒ d = 2
Substituting the value of d in (1), we get
a = 7
Therefore, a = 7 and d = 2
Thus,
Sn = (n/2)(2 x 7 + (n - 1)2)
= (n/2)(14 + 2n - 2)
= (n/2)(12 + 2n)
= n(6 + n)
= n2 + 6n
Hence, the sum of its first n terms is n2 + 6n.
Ques.23. The first term of an A.P. is 5, the last term is 45 and the sum is 400. Find the number of terms and the common difference.
Ans. In the given problem, we have the first and the last term of an A.P. along with the sum of all the terms of A.P. Here, we need to find the number of terms and the common difference of the A.P.
Here,
The first term of the A.P (a) = 5
The last term of the A.P (l) = 45
Sum of all the terms Sn = 400
Let the common difference of the A.P. be d.
So, let us first find the number of the terms (n) using the formula,
400 = (n/2)(5 + 45)
400 = (n/2)(50)
400 = (n)(25)
n = 400/25
n = 16
Now, to find the common difference of the A.P. we use the following formula,
l = a + (n - 1)d
We get,
45 = (5) + (16 - 1)d
45 = 5 + (15)d
45 = 5 + 15d
Further, solving for d,
d = 40/15
d = 8/3
Therefore, the number of terms is n = 16 and the common difference of the A.P is d = 8/3.
Ques.24. In an A.P. the first term is 8, nth term is 33 and the sum to first n terms is 123. Find n and d, the common differences.
Ans. In the given problem, we have the first and the nth term of an A.P. along with the sum of the n terms of A.P. Here, we need to find the number of terms and the common difference of the A.P.
Here,
The first term of the A.P (a) = 8
The nth term of the A.P (l) = 33
Sum of all the terms Sn = 123
Let the common difference of the A.P. be d.
So, let us first find the number of the terms (n) using the formula,
n = 246/41 = 6
Now, to find the common difference of the A.P. we use the following formula,
l = a + (n - 1)d
We get,
33 = 8 + (6 - 1)d
33 = 8 + (5)d
Further, solving for d,
d = 25/5 = 5
Therefore, the number of terms is n = 6 and the common difference of the A.P. d = 5.
Ques.25. In an A.P., the first term is 22, nth term is −11 and the sum to first n terms is 66. Find n and d, the common difference
Ans. In the given problem, we have the first and the nth term of an A.P. along with the sum of the n terms of A.P. Here, we need to find the number of terms and the common difference of the A.P.
Here,
The first term of the A.P (a) = 22
The nth term of the A.P (l) = −11
Sum of all the terms Sn = 66
Let the common difference of the A.P. be d.
So, let us first find the number of the terms (n) using the formula,
(66)(2) = (n)(11)
Further, solving for n
n = (6)(2) = 12
Now, to find the common difference of the A.P. we use the following formula,
l = a + (n - 1)d
We get,
-11 = 22 + (12 - 1)d
-11 = 22 + (11)d
Further, solving for d,
d = (-33)/11
d = -3
Therefore, the number of terms is n = 12 and the common difference of the A.P. d = -3.
Ques.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.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = (n/2)[2a + (n - 1)d]
Also, nth term = an = a + (n − 1)d
According to the question,
a = 7, an = 49 and Sn = 420
Now,
an = a + (n − 1)d
⇒ 49 = 7 + (n − 1)d
⇒ 42 = nd − d
⇒ nd − d = 42 ...(1)
Also,
⇒ 840 = n[14 + 42] [From (1)]
⇒ 56n = 840
⇒ n = 15 ...(2)
On substituting (2) in (1), we get
nd − d = 42
⇒ (15 − 1)d = 42
⇒ 14d = 42
⇒ d = 3
Thus, common difference of the given A.P. is 3.
Ques.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.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = n/2[2a + (n - 1)d]
Also, nth term = an = a + (n − 1)d
According to the question,
a = 5, an = 45 and Sn = 400
Now,
an = a + (n − 1)d
⇒ 45 = 5 + (n − 1)d
⇒ 40 = nd − d
⇒ nd − d = 40 ...(1)
Also,
Sn = n/2[2 × 5 + (n − 1)d]
⇒ 400 = n/2[10 + nd − d]
⇒ 800 = n[10 + 40] [From (1)]
⇒ 50n = 800
⇒ n = 16 ....(2)
On substituting (2) in (1), we get
nd − d = 40
⇒ (16 − 1)d = 40
⇒ 15d = 40
⇒ d = 8/3
Thus, common difference of the given A.P. is 8/3.
Ques.28. The sum of first 9 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.
Disclaimer: There is a misprint in the question, 'the sum of 9 terms' should be witten instead of 'the sum of q terms'.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = (n/2)[2a + (n − 1)d]
Also, nth term = an = a + (n − 1)d
According to the question,
Sq = 162 and
Now,
⇒ 2a + 10d = a + 12d
⇒ 2a − a = 12d − 10d
⇒ a = 2d .....(1)
Also,
S9 = 9/2[2a + (9 − 1)d]
⇒ 162 = 9/2[2(2d) + 8d] [From (1)]
⇒ 18 = 1/2[12d]
⇒ 18 = 6d
⇒ d = 3
⇒ a = 2 × 3 [From (1)]
⇒ a = 6
Thus, the first term of the A.P. is 6.
Now,
a15 = 6 + (15 − 1)3
= 6 + 42 = 48
Thus, 15th term of the A.P. is 48.
Ques.29. If the 10th term of an A.P. is 21 and the sum of its first 10 terms is 120, find its nth term.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = n/2[2a + (n − 1)d]
and nth term = an = a + (n − 1)d
Now,
S10 = 10/2[2a + (10 − 1)d]
⇒ 120 = 5(2a + 9d)
⇒ 24 = 2a + 9d
⇒ 2a + 9d = 24 ....(1)
Also,
a10 = a + (10 − 1)d
⇒ 21 = a + 9d
⇒ 2a + 18d = 42 ....(2)
Subtracting (1) from (2), we get
18d − 9d = 42 − 24
⇒ 9d = 18
⇒ d = 2
⇒ 2a = 24 − 9d [From (1)]
⇒ 2a = 24 − 9 × 2
⇒ 2a = 24 − 18
⇒ 2a = 6 = 3
Also,
an = a + (n − 1)d
= 3 + (n − 1)2
= 3 + 2n − 2
= 1 + 2n
Thus, nth term of this A.P. is 1 + 2n.
Ques.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.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = n/2[2a + (n − 1)d]
It is given that sum of the first 7 terms of an A.P. is 63.
And sum of next 7 terms is 161.
∴ Sum of first 14 terms = Sum of first 7 terms + sum of next 7 terms
= 63 + 161 = 224
Now,
S7 = 7/2[2a + (7 − 1)d]
⇒ 63 = 7/2(2a + 6d)
⇒ 18 = 2a + 6d
⇒ 2a + 6d = 18 ....(1)
Also,
S14 = 14/2[2a + (14 − 1)d]
⇒ 224 = 7(2a + 13d)
⇒ 32 = 2a + 13d
⇒ 2a + 13d = 32 ....(2)
On subtracting (1) from (2), we get
13d − 6d = 32 − 18
⇒ 7d = 14 = 2
⇒ 2a = 18 − 6d [From (1)]
⇒ 2a = 18 − 6 × 2
⇒ 2a = 18 − 12
⇒ 2a = 6 = 3
Also, nth term = an = a + (n − 1)d
⇒ a28 = 3 + (28 − 1)2
= 3 + 27 × 2 = 57
Thus, 28th term of this A.P. is 57.
Ques.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.
Ans. Let a be the first term and d be the common difference.
We know that, sum of first n terms = Sn = n/2[2a + (n − 1)d]
According to the question,
S7 = 182
⇒ 7/2[2a + (7 − 1)d] =182
⇒ 1/2(2a + 6d) = 26
⇒ a + 3d = 26
⇒ a = 26 − 3d ....(1)
Also,
⇒ 5(a + 3d) = a + 16d
⇒ 5a + 15d = a + 16d
⇒ 5a − a = 16d − 15d
⇒ 4a = d ....(2)
On substituting (2) in (1), we get
a = 26 − 3(4a)
⇒ a = 26 − 12a
⇒ 12a + a = 26
⇒ 13a = 26
⇒ a = 2
⇒ d = 4 × 2 [From (2)]
⇒ d = 8
Thus, the A.P. is 2, 10, 18, 26, ..... .
Ques.32. The nth term of an A.P is given by (−4n + 15), Find the sum of first 20 terms of this A.P.
Ans. an = −4n + 15
⇒ a1 = −4 + 15 = 11
Also, a2 = −8 + 15 = 7
Common difference, d = a2 − a1 = 7 − 11 = −4
Now,
S20 = 20/2[2 × 11 + (20 − 1)(−4)]
= 10(22 − 76) = -540
(Using 2)
