Advertisements
Advertisements
प्रश्न
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.
Advertisements
उत्तर १
Here, a1 = 5, an = 45 and Sn = 400
Find: n, d
an= a + (n − 1)d = 45
⇒ 5 + (n − 1)d = 45
⇒ (n − 1)d = 40 ...(1)
Now,
Sn = `n/2 [2a + (n -1)d] = 400`
⇒ `[10 + (n - 1)d] = 800/n` ...{As a = 5}
⇒ [10 + 40] = `800/n` ...{By equation 1}
⇒ n = `800/50`
⇒ n = 16
Put n = 16 in the equation (1)
⇒ (16 − 1)d = 40
⇒ d = `40/15`
⇒ d = `8/3`
Hence, the common difference of an A.P. is `8/3` and number of terms is 16.
उत्तर २
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
`(45 - 5)/15` = d
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`.
APPEARS IN
संबंधित प्रश्न
Find the sum of all numbers from 50 to 350 which are divisible by 6. Hence find the 15th term of that A.P.
Find four numbers in A.P. whose sum is 20 and the sum of whose squares is 120
Divide 32 into four parts which are in A.P. such that the product of extremes is to the product of means is 7 : 15.
Find the sum of first 20 terms of the following A.P. : 1, 4, 7, 10, ........
Find the sum of the odd numbers between 0 and 50.
Find the sum of all even integers between 101 and 999.
Find the middle term of the AP 6, 13, 20, …., 216.
Find the 6th term form the end of the AP 17, 14, 11, ……, (-40).
The first three terms of an AP are respectively (3y – 1), (3y + 5) and (5y + 1), find the value of y .
First term and the common differences of an A.P. are 6 and 3 respectively; find S27.
Solution: First term = a = 6, common difference = d = 3, S27 = ?
Sn = `"n"/2 [square + ("n" - 1)"d"]` - Formula
Sn = `27/2 [12 + (27 - 1)square]`
= `27/2 xx square`
= 27 × 45
S27 = `square`
Kargil’s temperature was recorded in a week from Monday to Saturday. All readings were in A.P. The sum of temperatures of Monday and Saturday was 5°C more than sum of temperatures of Tuesday and Saturday. If temperature of Wednesday was –30° celsius then find the temperature on the other five days.
Two A.P.’s are given 9, 7, 5, ... and 24, 21, 18, ... If nth term of both the progressions are equal then find the value of n and nth term.
If the seventh term of an A.P. is \[\frac{1}{9}\] and its ninth term is \[\frac{1}{7}\] , find its (63)rd term.
Find where 0 (zero) is a term of the A.P. 40, 37, 34, 31, ..... .
Find the sum of all 2 - digit natural numbers divisible by 4.
If four numbers in A.P. are such that their sum is 50 and the greatest number is 4 times, the least, then the numbers are
The nth term of an A.P., the sum of whose n terms is Sn, is
If the sums of n terms of two arithmetic progressions are in the ratio \[\frac{3n + 5}{5n - 7}\] , then their nth terms are in the ratio
The sum of first n odd natural numbers is ______.
If \[\frac{5 + 9 + 13 + . . . \text{ to n terms} }{7 + 9 + 11 + . . . \text{ to (n + 1) terms}} = \frac{17}{16},\] then n =
Q.6
Q.13
Find the value of x, when in the A.P. given below 2 + 6 + 10 + ... + x = 1800.
How many terms of the A.P. 27, 24, 21, …, should be taken so that their sum is zero?
The sum of first n terms of an A.P. whose first term is 8 and the common difference is 20 equal to the sum of first 2n terms of another A.P. whose first term is – 30 and the common difference is 8. Find n.
If ₹ 3900 will have to be repaid in 12 monthly instalments such that each instalment being more than the preceding one by ₹ 10, then find the amount of the first and last instalment
The sum of all odd integers between 2 and 100 divisible by 3 is ______.
If the first term of an AP is –5 and the common difference is 2, then the sum of the first 6 terms is ______.
Assertion (A): a, b, c are in A.P. if and only if 2b = a + c.
Reason (R): The sum of first n odd natural numbers is n2.
The 5th term and the 9th term of an Arithmetic Progression are 4 and – 12 respectively.
Find:
- the first term
- common difference
- sum of 16 terms of the AP.
