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Thus, the value of m is -1.
Concept insight: Firstly the solution of the given pair of linear equations can be found out by substituting the value of one variable, say x, from one equation into the other equation. Then after finding out the values of x and y, substitute them in the equation y = m x + 3 in order to find the value of m.
According to the question:
Substituting this in equation (1), we obtain
y = 39
Hence, the numbers are 13 and 39.
Concept insight: In this problem, two relations between two numbers are given. So, the two numbers have to be found out here. So the two numbers will be represented by variables x and y explicitly state the greater variable.
A pair of equations can be obtained from the given conditions. The pair of equations can then be solved by suitable substitution.
(ii) Let the larger angle be x and smaller angle be y.
We know that the sum of the measures of angles of a supplementary pair is always 180º.
According to the given information,
From (1), we obtain
x = 180º - y (3)
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtain
x = 180º - 81º
= 99º
Hence, the angles are 99º and 81º.
Concept insight: This problem talks about the measure of two supplementary angles. So, the two angles will be written as variables. The pair of equations can be formed using the fact that the sum of two supplementary angles is 180° and using the condition given in the problem. The pair of equations can then be solved by suitable substitution.
(iii) Let the cost of a bat and a ball be x and y respectively.
According to the given information,
Hence, the cost of a bat is Rs 500 and that of a ball is Rs 50.
Concept insight: Cost of bats and balls needs to be found so the cost of a ball and bat will be taken as the variables. Applying the conditions of total cost of bats and balls algebraic equations will be obtained. The pair of equations can then be solved by suitable substitution.
Concept insight: In this problem, we are required to find out the fixed charge and the charge per km. So, we will represent these two by using different variables. Now, two linear equations can be written by using the conditions given in the problem. The pair of equations can then be solved by suitable substitution.
(v) Let the fraction be
According to the given information,
Concept insight: This problem talks about a fraction which is not known to us. So numerator and denominators will be taken to be variables x and y respectively and y will be strictly non zero. Then, a pair of linear equations can be formed from the given conditions. The pair of equations can then be solved by suitable substitution.
(vi) Let the age of Jacob be x and the age of his son be y.
According to the given information,
Hence, the present age of Jacob is 40 years whereas the present age of his son is 10 years.
Concept insight: Here, Jacob's and his son's present age are not known. So, we will write both these in terms of variables. The problem talks about their ages five years ago and five years hence. Here, five years ago means we have to subtract 5 from their present ages, and five years hence means we have to add 3 to their present ages. So, using the given conditions, a pair of linear equations can be formed. The pair of equations can then be solved by suitable substitution.
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this are the link of previous video-
Basics of Biology Part 1-
https://www.youtube.com/watch?v=R3UzzSq-h2Y
Part2- Electricity Class 10-
https://www.youtube.com/watch?v=Wjsw6GuJnz0&list=PLcMqfTNwNJuQ6ut9yqZwWaHiaPRgJIJ57&index=2
Part 1 Electricity Class 10-
https://youtu.be/JvGpUNF5dhA
Class 10 physics s chand-
https://amzn.to/2ygIG5a
Interesting question video-https://mydomainscan.com/ZsbiLmG
Maths problem-
https://mydomainscan.com/wxSr5VQg
motivation-
https://mydomainscan.com/wxSr5VQg
best books-
https://amzn.to/3fThv1f
https://amzn.to/2LEbPKA
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Chapter 3-Pairs of linear equation in 1 variable Exercise Ex.3.3
here it is solution of question 1
Chapter 3 - Pairs of Linear Equations in Two Variables Exercise Ex. 3.3
Solution 1
(i) x + y = 14 ... (i)
x - y = 4 ... (ii)
From (i), we obtain:
x = 14 - y ... (iii)
Substituting this value in equation (ii), we obtain:
Substituting the value of y in equation (iii), we obtain:
From (i), we obtain:
s = t + 3 ...(iii)
Substituting this value in equation (ii), we obtain:
Substituting the value of t in equation (iii), we obtain:
s = 9
(iii) 3x - y = 3 ... (i)
9x - 3y = 9 ... (ii)
From (i), we obtain
y = 3x - 3 ... (iii)
Substituting this value in equation (ii), we obtain:
9 = 9
This is always true.
Thus, the given pair of equations has infinitely many solutions and the relation between these variables can be given by
y = 3x - 3
So, one of the possible solutions can x = 3, y = 6.
Substituting the value of y in equation (iii), we obtain:
x = 0
Concept insight: In order to solve the given pairs of equations, we need to substitute the value of any one of the variable from any one of the equation. But make sure to substitute the value of that variable which simplifies calculations. For example, in part (iv) it is most convenient to substitute the value of x from the first equation to the second equation, as the division by 0.2 is more easier than the division by 0.3, 0.4 and 0.5.
x - y = 4 ... (ii)
From (i), we obtain:
x = 14 - y ... (iii)
Substituting this value in equation (ii), we obtain:
Substituting the value of y in equation (iii), we obtain:
From (i), we obtain:
s = t + 3 ...(iii)
Substituting this value in equation (ii), we obtain:
Substituting the value of t in equation (iii), we obtain:
s = 9
(iii) 3x - y = 3 ... (i)
9x - 3y = 9 ... (ii)
From (i), we obtain
y = 3x - 3 ... (iii)
Substituting this value in equation (ii), we obtain:
9 = 9
This is always true.
Thus, the given pair of equations has infinitely many solutions and the relation between these variables can be given by
y = 3x - 3
So, one of the possible solutions can x = 3, y = 6.
Substituting the value of y in equation (iii), we obtain:
x = 0
Concept insight: In order to solve the given pairs of equations, we need to substitute the value of any one of the variable from any one of the equation. But make sure to substitute the value of that variable which simplifies calculations. For example, in part (iv) it is most convenient to substitute the value of x from the first equation to the second equation, as the division by 0.2 is more easier than the division by 0.3, 0.4 and 0.5.
Chapter 3-Pairs of linear equation in 1 variable Exercise Ex.3.3
here it is solution of question 2
Solution 2
Thus, the value of m is -1.
Concept insight: Firstly the solution of the given pair of linear equations can be found out by substituting the value of one variable, say x, from one equation into the other equation. Then after finding out the values of x and y, substitute them in the equation y = m x + 3 in order to find the value of m.
Chapter 3-Pairs of linear equation in 1 variable Exercise Ex.3.3
here it is solution of question 3
Solution 3
(i) Let one number be x and the other number be y such that y > x.According to the question:
Substituting this in equation (1), we obtain
y = 39
Hence, the numbers are 13 and 39.
Concept insight: In this problem, two relations between two numbers are given. So, the two numbers have to be found out here. So the two numbers will be represented by variables x and y explicitly state the greater variable.
A pair of equations can be obtained from the given conditions. The pair of equations can then be solved by suitable substitution.
(ii) Let the larger angle be x and smaller angle be y.
We know that the sum of the measures of angles of a supplementary pair is always 180º.
According to the given information,
From (1), we obtain
x = 180º - y (3)
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtain
x = 180º - 81º
= 99º
Hence, the angles are 99º and 81º.
Concept insight: This problem talks about the measure of two supplementary angles. So, the two angles will be written as variables. The pair of equations can be formed using the fact that the sum of two supplementary angles is 180° and using the condition given in the problem. The pair of equations can then be solved by suitable substitution.
(iii) Let the cost of a bat and a ball be x and y respectively.
According to the given information,
Hence, the cost of a bat is Rs 500 and that of a ball is Rs 50.
Concept insight: Cost of bats and balls needs to be found so the cost of a ball and bat will be taken as the variables. Applying the conditions of total cost of bats and balls algebraic equations will be obtained. The pair of equations can then be solved by suitable substitution.
Concept insight: In this problem, we are required to find out the fixed charge and the charge per km. So, we will represent these two by using different variables. Now, two linear equations can be written by using the conditions given in the problem. The pair of equations can then be solved by suitable substitution.
(v) Let the fraction be
According to the given information,
Concept insight: This problem talks about a fraction which is not known to us. So numerator and denominators will be taken to be variables x and y respectively and y will be strictly non zero. Then, a pair of linear equations can be formed from the given conditions. The pair of equations can then be solved by suitable substitution.
(vi) Let the age of Jacob be x and the age of his son be y.
According to the given information,
Hence, the present age of Jacob is 40 years whereas the present age of his son is 10 years.
Concept insight: Here, Jacob's and his son's present age are not known. So, we will write both these in terms of variables. The problem talks about their ages five years ago and five years hence. Here, five years ago means we have to subtract 5 from their present ages, and five years hence means we have to add 3 to their present ages. So, using the given conditions, a pair of linear equations can be formed. The pair of equations can then be solved by suitable substitution.
Dont Forget to subscribe my channel.
this are the link of previous video-
Part 1 Electricity Class 10-
https://youtu.be/JvGpUNF5dhA
Class 10 physics s chand-
https://amzn.to/2ygIG5a
Interesting question video-
https://mydomainscan.com/ZsbiLmG
Maths problem-
https://mydomainscan.com/wxSr5VQg
motivation-
https://mydomainscan.com/wxSr5VQg
best books-
https://amzn.to/3fThv1f
https://amzn.to/2LEbPKA
if you not read the previous blog please read it. it is the solution to exercise 1.1 AND EXERCISE 2.3
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-------------------------------------------------------------------------------------------------------------
For Live Sessions, Chapter wise notes and Important Question Bank make sure you register at
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Get Your Courses On Our Website : For A Distraction Free And Efficient Studies
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Please help me and tell me all the mistakes committed by me so i can improve it in next video.
Dont Forget to subscribe my channel.
this are the link of previous video-
Basics of Biology Part 1-
https://www.youtube.com/watch?v=R3UzzSq-h2Y
Part2- Electricity Class 10-
https://www.youtube.com/watch?v=Wjsw6GuJnz0&list=PLcMqfTNwNJuQ6ut9yqZwWaHiaPRgJIJ57&index=2
Part 1 Electricity Class 10-
https://youtu.be/JvGpUNF5dhA
Class 10 physics s chand-
https://amzn.to/2ygIG5a
Interesting question video-https://mydomainscan.com/ZsbiLmG
Maths problem-
https://mydomainscan.com/wxSr5VQg
motivation-
https://mydomainscan.com/wxSr5VQg
best books-
https://amzn.to/3fThv1f
https://amzn.to/2LEbPKA
Next video will definetly come within one week
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SubjectWise - New way to learn
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At last Thanks for watching Our Videos For any new Requirement please Comment Below.
#Class10Crack #FightagainstCorona #SubjectWise
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