Class 10 Exam  >  Class 10 Notes  >  RD Sharma Solutions for Class 10 Mathematics  >  Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12)

Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics PDF Download

Page No 5.51

Q.12. Find the sum of
(i) the first 15 multiples of 8
(ii) the first 40 positive integers divisible by (a) 3 (b) 5 (c) 6.
(iii) all 3 − digit natural numbers which are divisible by 13.
(iv) all 3 − digit natural numbers, which are multiples of 11.
(v) all 2 − digit natural numbers divisible by 4.
(vi) first 8 multiples of 3.
Ans. 
In the given problem, we need to find the sum of terms for different arithmetic progressions. So, here we use the following formula for the sum of n terms of an A.P.,
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
(i) First 15 multiples of 8.
So, we know that the first multiple of 8 is 8 and the last multiple of 8 is 120.
Also, all these terms will form an A.P. with the common difference of 8.
So here,
First term (a) = 8
Number of terms (n) = 15
Common difference (d) = 8
Now, using the formula for the sum of n terms, we get
Sn = 15/2[2(8) + (15 - 1)8]
= 15/2[16 + (14)8]
= 15/2(16 + 112)
= (15/2)(128) = 960
Therefore, the sum of the first 15 multiples of 8 is 960.
(ii) (a) First 40 positive integers divisible by 3
So, we know that the first multiple of 3 is 3 and the last multiple of 3 is 120.
Also, all these terms will form an A.P. with the common difference of 3.
So here,
First term (a) = 3
Number of terms (n) = 40
Common difference (d) = 3
Now, using the formula for the sum of n terms, we get
Sn = 40/2[2(3) + (40 - 1)3]
= 20[6 + (39)3]
= 20(6 + 117)
= 20(123) = 2460
Therefore, the sum of first 40 multiples of 3 is 2460.
(b) First 40 positive integers divisible by 5
So, we know that the first multiple of 5 is 5 and the last multiple of 5 is 200.
Also, all these terms will form an A.P. with the common difference of 5.
So here,
First term (a) = 5
Number of terms (n) = 40
Common difference (d) = 5
Now, using the formula for the sum of n terms, we get
Sn = 40/2[2(5) + (40 - 1)5]
= 20[10 + (39)5]
= 20(10 + 195)
= 20(205) = 4100
Therefore, the sum of first 40 multiples of 3 is 4100
(c) First 40 positive integers divisible by 6
So, we know that the first multiple of 6 is 6 and the last multiple of 6 is 240.
Also, all these terms will form an A.P. with the common difference of 6.
So here,
First term (a) = 6
Number of terms (n) = 40
Common difference (d) = 6
Now, using the formula for the sum of n terms, we get
Sn = 40/2[2(6) + (40 - 1)6]
= 20[12 + (39)6]
= 20(12 + 234)
= 20(246) = 4920
Therefore, the sum of first 40 multiples of 3 is 4920.
(iii) All 3 digit natural number which are divisible by 13
So, we know that the first 3 digit multiple of 13 is 104 and the last 3 digit multiple of 13 is 988.
Also, all these terms will form an A.P. with the common difference of 13.
So here,
First term (a) = 104
Last term (l) = 988
Common difference (d) = 13
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
988 = 104 + (n - 1)13
988 = 104 + 13n - 13
988 = 91 + 13n
Further simplifying,
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
n = 897/13 = 69
Now, using the formula for the sum of n terms, we get
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
= 69/2 (208 + 884)
On further simplification, we get,
Sn = (69/2)(1092)
= 69(546) = 37674
Therefore, the sum of all the 3 digit multiples of 13 is Sn = 37674.
(iv) all 3-digit natural numbers, which are multiples of 11.
We know that the first 3 digit number multiple of 11 will be 110.
Last 3 digit number multiple of 11 will be 990.
So here,
First term (a) = 110
Last term (l) = 990
Common difference (d) = 11
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
990 = 110 + (n − 1)11
990 = 110 + 11n − 11
990 = 99 + 11n
891 = 11n
81 = n
Now, using the formula for the sum of n terms, we get
S= 81/2[2(110) + (81 − 1)11]
Sn = 81/2[220 + 80 × 11]
Sn = (81/2) × 1100
Sn = 81 × 550
Sn = 44550
Therefore, the sum of all the 3 digit multiples of 11 is 44550.
(v) 2-digit no. divisible by 4 are 12,16,20,........,96
We can see it forms an AP as the common difference is 4 and the first term is 4.
To find no. of terms n,
we know that
an = a + (n - 1)d
96 = 12 + (n − 1)4
84 = (n − 1)4
21 = n − 1
22 = n
Now,
First term (a) = 12
Number of terms (n) = 22
Common difference (d) = 4
Now, using the formula for the sum of n terms, we get
S22 = 22/2{2(12) + (22 − 1)4}
S22 = 11{24 + 84}
S22 = 1188
Hence, the sum of 22 terms is 1188 which are divisible by 4.
(vi) First 8 multiples of 3 are { 3, 6, 9...,24}
We can observe they are in AP with first term (a) = 3 and last term (l) = 24 and number of terms are 8.
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
S8 = 4×(3 + 24) = 108
Hence, the sum of the first 8 multiples of 3 is 108.

Ques.13. Find the sum:
(i) 2 + 4 + 6 ... + 200
(ii) 3 + 11 + 19 + ... + 803
(iii) (−5) + (−8)+ (−11) + ... + (−230)
(iv) 1 + 3 + 5 + 7 + ... + 199
(v) 7 + 10(1/2) + 14 +...+ 84
(vi) 34 + 32 + 30 + ... + 10
(vii) 25 + 28 + 31 + ... + 100
(viii) 18 + 15(1/2) + 13 +...+ (−49(1/2))
Ans.
In the given problem, we need to find the sum of terms for different arithmetic progressions. So, here we use the following formula for the sum of n terms of an A.P.,
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
(i) 2 + 4 + 6 ... + 200
Common difference of the A.P. (d) = a2 - a1
= 6 - 4 = 2
So here,
First term (a) = 2
Last term (l) = 200
Common difference (d) = 2
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
200 = 2 + (n - 1)2
200 = 2 + 2n - 2
200 = 2n
Further simplifying,
n = 200/2 = 100
Now, using the formula for the sum of n terms, we get
Sn = 100/2[2(2) + (100 - 1)2]
= 50[4 + (99)2]
= 50(4 + 198)
On further simplification, we get,
Sn = 50(202) = 10100
Therefore, the sum of the A.P is Sn = 10100
(ii) 3 + 11 + 19 + ... + 803
Common difference of the A.P. (d) = a2 - a1
= 19 - 11 = 8
So here,
First term (a) = 3
Last term (l) = 803
Common difference (d) = 8
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
Further simplifying,
803 = 3 + (n - 1)8
803 = 3 + 8n - 8
803 + 5  = 8n
808 = 8n
n = 808/8 = 101
Now, using the formula for the sum of n terms, we get
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
= 101/2[6 + (100)8]
= 101/2(806)
= 101(403) = 40703
Therefore, the sum of the A.P is S= 40703
(iii) (-5) + (-8) + (-11) + ... + (-230)
Common difference of the A.P. (d) = a2 - a1
= -8 - (-5)
= -8 + 5 = -3
So here,
First term (a) = −5
Last term (l) = −230
Common difference (d) = −3
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
-230 = -5 + (n - 1)(-3)
-230 = -5 - 3n + 3
-230 + 2 = -3n
-228/-3 = n
n = 76
Now, using the formula for the sum of n terms, we get
Sn = 76/2[2(-5) + (76 - 1)(-3)]
= 38[-10 + (75) (-3)]
= 38(-10 - 225)
= 38(-235) = -8930
Therefore, the sum of the A.P is Sn = -8930
(iv) 1 + 3 + 5 + 7 ... + 199
Common difference of the A.P. (d) = a2 - a1
= 3 - 1 = 2
So here,
First term (a) = 1
Last term (l) = 199
Common difference (d) = 2
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
199 = 1 + (n - 1)2
199 = 1 + 2n - 2
199 + 1 = 2n
n = 200/2 = 100
Now, using the formula for the sum of n terms, we get
Sn = 100/2[2(1) + (100 - 1)2]
= 50[2 + (99)2]
= 50(2 + 198)
On further simplification, we get,
S= 50(200) = 10000
Therefore, the sum of the A.P is Sn = 10000
(v) 7 + 10(1/2) + 14 + ... + 84
Common difference of the A.P is
d = 10(1/2) - 7
= (21/2) - 7
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
= 7/2
So here,
First term (a) = 7
Last term (l) = 84
Common difference (d) = 7/2
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
84 = 7 + (n - 1)(7/2)
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
84(2) = 7 + 7n
Further solving for n,
7n = 168 - 7
n = 161/7 = 23
Now, using the formula for the sum of n terms, we get
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
= (23/2)(91)
On further simplification, we get,
S= 2093/2
Therefore, the sum of the A.P is S= 2093/2
(vi) 34 + 32 + 30 + ... + 10
Common difference of the A.P. (d) = a2 - a1
= 32 - 34 = -2
So here,
First term (a) = 34
Last term (l) = 10
Common difference (d) = −2
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
10 = 34 + (n - 1)(-2)
10 = 34 - 2n + 2
10 = 36 - 2n
10 - 36 = -2n
Further solving for n,
-2n = -26
n = -26/-2
n = 13
Now, using the formula for the sum of n terms, we get
Sn = 13/2[2(34) + (13 - 1)(-2)]
= 13/2[68 + (12)(-2)]
= 13/2(68 - 24)
= (13/2)(44)
On further simplification, we get,
Sn = 13(22) = 286
Therefore, the sum of the A.P is Sn = 286
(vii) 25 + 28 + 31 + ... + 100
Common difference of the A.P. (d) = a2 - a1
= 28 - 25 = 3
So here,
First term (a) = 25
Last term (l) = 100
Common difference (d) = 3
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1 )d
So, for the last term,
100 = 25 + (n - 1)(3)
100 = 25 + 3n - 3
100 = 22 + 3n
100 - 22 = 3n
Further solving for n,
78 = 3n
n = 78/3 = 26
Now, using the formula for the sum of n terms, we get
Sn = 26/2 [2(25) + (26 - 1)(3)]
= 13[50 + (25)(3)]
= 13(50 + 75)
= 13(125)
On further simplification, we get,
Sn = 1625
Therefore, the sum of the A.P is Sn = 1625.
(viii) 18 + 15(1/2) + 13 + ... + ((-49)(1/2)).
Common difference of the A.P. (d) = a2 - a1
= 15(1/2) - 18
= 31/2 - 18
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
So here,
First term (a) = 18
Last term (l) = Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
Common difference (d) = (-5)/2
So, here the first step is to find the total number of terms. Let us take the number of terms as n.
Now, as we know,
an = a + (n - 1)d
So, for the last term,
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
n = 28
Now, using the formula for the sum of n terms, we get
Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics
Sn = -441
Therefore, the sum of the A.P is Sn = -441.

The document Chapter 5 - Quadratic Equations, RD Sharma Solutions - (Part-12) | RD Sharma Solutions for Class 10 Mathematics is a part of the Class 10 Course RD Sharma Solutions for Class 10 Mathematics.
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Ans. The general form of a quadratic equation is ax^2 + bx + c = 0, where a, b, and c are constants and a ≠ 0.
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