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Exercise 3.1
Question 1:Aftab tells his daughter, “Seven years ago, I was seven times as old as you were
then. Also, three years from now, I shall be three times as old as you will be.” (Isn’t
this interesting?) Represent this situation algebraically and graphically.
Answer:
Let the present age of Aftab bex.
And, present age of his daughter =ySeven years ago,
Age of Aftab =x - 7
Age of his daughter =y - 7
According to the question,
Three years hence,
Age of Aftab =x + 3
Age of his daughter =y + 3
According to the question,
Therefore, the algebraic representation is
For ,
The solution table is
For ,
The solution table is
The graphical representation is as follows.Question 2:The coach of a cricket team buys 3 bats and 6 balls for Rs 3900. Later, she buys
another bat and 2 more balls of the same kind for Rs 1300. Represent this situation
algebraically and geometrically.
Answer:
Let the cost of a bat be Rsx.
And, cost of a ball = Rsy
According to the question, the algebraic representation is
For ,
The solution table is
For ,
The solution table is
The graphical representation is as follows.
Question 3:The cost of 2 kg of apples and 1 kg of grapes on a day was found to be Rs 160. After
a month, the cost of 4 kg of apples and 2 kg of grapes is Rs 300. Represent the
situation algebraically and geometrically.
Answer:
Let the cost of 1 kg of apples be Rsx.
And, cost of 1 kg of grapes = RsyAccording to the question, the algebraic representation is
For ,
The solution table is
For 4x + 2y = 300,
The solution table is
The graphical representation is as follows.
Exercise 3.2
Question 1:Form the pair of linear equations in the following problems, and find their solutions
graphically.
(i) 10 students of Class X took part in a Mathematics quiz. If the number of girls is 4
more than the number of boys, find the number of boys and girls who took part in
the quiz.
(ii) 5 pencils and 7 pens together cost Rs 50, whereas 7 pencils and 5 pens together
cost Rs 46. Find the cost of one pencil and that of one pen.
Answer:
(i) Let the number of girls bex and the number of boys be y.
According to the question, the algebraic representation isx + y = 10x - y = 4
Forx + y = 10,x = 10 - y
For x - y = 4,x = 4 + y
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines intersect each other at point (7,
3).
Therefore, the number of girls and boys in the class are 7 and 3 respectively.
(ii) Let the cost of 1 pencil be Rsx and the cost of 1 pen be Rs y.
According to the question, the algebraic representation is
5x + 7y = 50
7x + 5y = 46
For 5x + 7y = 50,
7x + 5y = 46
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines intersect each other at point (3,
5).
Therefore, the cost of a pencil and a pen are Rs 3 and Rs 5 respectively.Question 2:
Answer:
(i) 5x - 4y + 8 = 0
7x + 6y - 9 = 0
Comparing these equations with
and , we obtain
Since ,
Hence, the lines representing the given pair of equations have a unique solution and
the pair of lines intersects at exactly one point.
(ii) 9x + 3y + 12 = 0
18x + 6y + 24 = 0
Comparing these equations with
and , we obtain
Since ,
Hence, the lines representing the given pair of equations are coincident and there
are infinite possible solutions for the given pair of equations.
(iii)6x - 3y + 10 = 0
2x - y + 9 = 0
Comparing these equations with
and , we obtain
Answer:
(i) 3x + 2y = 5
2x - 3y = 7
These linear equations are intersecting each other at one point and thus have only
one possible solution. Hence, the pair of linear equations is consistent.
(ii)2x - 3y = 8
4x - 6y = 9
(iii)
Since ,
Therefore, these linear equations are intersecting each other at one point and thus
have only one possible solution. Hence, the pair of linear equations is consistent.
(iv)5x - 3 y = 11
- 10x + 6y = - 22
(v)
Since
Therefore, these linear equations are coincident pair of lines and thus have infinite
number of possible solutions. Hence, the pair of linear equations is consistent.Question 4:Which of the following pairs of linear equations are consistent/ inconsistent? If
consistent, obtain the solution graphically:
Answer:
(i)x + y = 5
2x + 2y = 10
And, 2x + 2y = 10
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines are overlapping each other.
Therefore, infinite solutions are possible for the given pair of equations.
(ii)x - y = 8
3x - 3y = 16
Since ,
Therefore, these linear equations are parallel to each other and thus have no
possible solution. Hence, the pair of linear equations is inconsistent.
(iii)2x + y - 6 = 0
4x - 2y - 4 = 0
And 4x - 2y - 4 = 0
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines are intersecting each other at the
only point i.e., (2, 2) and it is the solution for the given pair of equations.
(iv)2x - 2y - 2 = 0
4x - 4y - 5 = 0
According to the question,y - x = 4 (1)y + x = 36 (2)y - x = 4y = x + 4
y + x = 36
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines are intersecting each other at
only point i.e., (16, 20). Therefore, the length and width of the given garden is 20 m
and 16 m respectively.Question 6:Given the linear equation 2x + 3y - 8 = 0, write another linear equations in two
variables such that the geometrical representation of the pair so formed is:
(i) intersecting lines (ii) parallel lines
(iii) coincident lines
Answer:
(i)Intersecting lines:
For this condition,
The second line such that it is intersecting the given line is
.
(ii) Parallel lines:
For this condition,
Hence, the second line can be
4x + 6y - 8 = 0
(iii)Coincident lines:
For coincident lines,
Hence, the second line can be
6x + 9y - 24 = 0Question 7:Draw the graphs of the equations x - y + 1 = 0 and 3x + 2y - 12 = 0. Determine
the coordinates of the vertices of the triangle formed by these lines and thex-axis,
and shade the triangular region.
Answer:x - y + 1 = 0x = y - 1
3x + 2y - 12 = 0
Hence, the graphic representation is as follows.
From the figure, it can be observed that these lines are intersecting each other at
point (2, 3) andx-axis at (-1, 0) and (4, 0). Therefore, the vertices of the triangle
are (2, 3), (-1, 0), and (4, 0).
Exercise 3.3
Question 1:Solve the following pair of linear equations by the substitution method.
Answer:
(i)x + y = 14 (1)x - y = 4 (2)
From (1), we obtainx = 14 - y (3)
Substituting this value in equation (2), we obtain
Substituting this in equation (3), we obtain
(ii)
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting in equation (3), we obtains = 9s = 9, t = 6
(iii)3x - y = 3 (1)
9x - 3y = 9 (2)
From (1), we obtainy = 3x - 3 (3)
Substituting this value in equation (2), we obtain
9 = 9
This is always true.
Hence, the given pair of equations has infinite possible solutions and the relation
between these variables can be given byy = 3x - 3
Therefore, one of its possible solutions isx = 1, y = 0.
(iv)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
(v)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
x = 0x = 0, y = 0
(vi)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
Hence,x = 2, y = 3Question 2:Solve 2x + 3y = 11 and 2x - 4y = - 24 and hence find the value of ‘m’ for which y= mx + 3.
Answer:
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Putting this value in equation (3), we obtain
Hence,x = -2, y = 5
Also,Question 3:Form the pair of linear equations for the following problems and find their solution by
substitution method.
(i) The difference between two numbers is 26 and one number is three times the
other. Find them.
(ii) The larger of two supplementary angles exceeds the smaller by 18 degrees. Find
them.
(iii) The coach of a cricket team buys 7 bats and 6 balls for Rs 3800. Later, she buys
3 bats and 5 balls for Rs 1750. Find the cost of each bat and each ball.
(iv) The taxi charges in a city consist of a fixed charge together with the charge for
the distance covered. For a distance of 10 km, the charge paid is Rs 105 and for a
journey of 15 km, the charge paid is Rs 155. What are the fixed charges and the
charge per km? How much does a person have to pay for travelling a distance of 25
km.
(v) A fraction becomes , if 2 is added to both the numerator and the denominator.
If, 3 is added to both the numerator and the denominator it becomes . Find the
fraction.
(vi) Five years hence, the age of Jacob will be three times that of his son. Five years
ago, Jacob’s age was seven times that of his son. What are their present ages?
Answer:
(i) Let the first number bex and the other number be y such that y > x.
According to the given information,
On substituting the value ofy from equation (1) into equation (2), we obtain
Substituting this in equation (1), we obtainy = 39
Hence, the numbers are 13 and 39.
(ii) Let the larger angle bex 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 obtainx = 180º - y (3)
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtainx = 180º - 81º
= 99º
Hence, the angles are 99º and 81º.
(iii) Let the cost of a bat and a ball bex and y respectively.
According to the given information,
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this in equation (3), we obtain
Hence, the cost of a bat is Rs 500 and that of a ball is Rs 50.
(iv)Let the fixed charge be Rsx and per km charge be Rs y.
According to the given information,
From (3), we obtain
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtain
Hence, fixed charge = Rs 5
And per km charge = Rs 10
Charge for 25 km =x + 25y= 5 + 250 = Rs 255
(v) Let the fraction be .
According to the given information,
From equation (1), we obtain
Substituting this in equation (2), we obtain
Substituting this in equation (3), we obtain
Hence, the fraction is .
(vi) Let the age of Jacob bex and the age of his son be y.
According to the given information,
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
Hence, the present age of Jacob is 40 years whereas the present age of his son is 10
years.
Exercise 3.4
Question 1:Solve the following pair of linear equations by the elimination method and the
substitution method:
Answer:
(i)By elimination methodMultiplying equation (1) by 2, we obtain
Subtracting equation (2) from equation (3), we obtain
Substituting the value in equation (1), we obtainBy substitution methodFrom equation (1), we obtain
(5)
Putting this value in equation (2), we obtain
-5y = -6
Substituting the value in equation (5), we obtain
(ii)By elimination methodMultiplying equation (2) by 2, we obtain
Adding equation (1) and (3), we obtain
Substituting in equation (1), we obtain
Hence,x = 2, y = 1By substitution methodFrom equation (2), we obtain
(5)
Putting this value in equation (1), we obtain
7y = 7
Substituting the value in equation (5), we obtain
(iii)By elimination methodMultiplying equation (1) by 3, we obtain
Subtracting equation (3) from equation (2), we obtain
Substituting in equation (1), we obtain∴By substitution methodFrom equation (1), we obtain
(5)
Putting this value in equation (2), we obtain
Substituting the value in equation (5), we obtain∴(iv)By elimination methodSubtracting equation (2) from equation (1), we obtain
Substituting this value in equation (1), we obtain
Hence,x = 2, y = -3By substitution method
From equation (2), we obtain
(5)
Putting this value in equation (1), we obtain
5y = -15
Substituting the value in equation (5), we obtain∴ x = 2, y = -3Question 2:Form the pair of linear equations in the following problems, and find their solutions
(if they exist) by the elimination method:
(i) If we add 1 to the numerator and subtract 1 from the denominator, a fraction
reduces to 1. It becomes if we only add 1 to the denominator. What is the
fraction?
(ii) Five years ago, Nuri was thrice as old as Sonu. Ten years later, Nuri will be twice
as old as Sonu. How old are Nuri and Sonu?
(iii) The sum of the digits of a two-digit number is 9. Also, nine times this number is
twice the number obtained by reversing the order of the digits. Find the number.
(iv) Meena went to bank to withdraw Rs 2000. She asked the cashier to give her Rs
50 and Rs 100 notes only. Meena got 25 notes in all. Find how many notes of Rs 50
and Rs 100 she received.
(v) A lending library has a fixed charge for the first three days and an additional
charge for each day thereafter. Saritha paid Rs 27 for a book kept for seven days,
while Susy paid Rs 21 for the book she kept for five days. Find the fixed charge and
the charge for each extra day.
Answer:
(i)Let the fraction be .
According to the given information,
Subtracting equation (1) from equation (2), we obtainx = 3 (3)
Substituting this value in equation (1), we obtain
Hence, the fraction is .
(ii)Let present age of Nuri =xand present age of Sonu = yAccording to the given information,
Subtracting equation (1) from equation (2), we obtainy = 20 (3)
Substituting it in equation (1), we obtain
Hence, age of Nuri = 50 years
And, age of Sonu = 20 years
(iii)Let the unit digit and tens digits of the number bex and y respectively. Then,
number = 10y + xNumber after reversing the digits = 10x + yAccording to the given information,x + y = 9 (1)
9(10y + x) = 2(10x + y)
88y - 11x = 0
-x + 8y =0 (2)
Adding equation (1) and (2), we obtain
9y = 9y = 1 (3)
Substituting the value in equation (1), we obtainx = 8
Hence, the number is 10y + x = 10 × 1 + 8 = 18
(iv)Let the number of Rs 50 notes and Rs 100 notes bex and y respectively.
According to the given information,
Multiplying equation (1) by 50, we obtain
Subtracting equation (3) from equation (2), we obtain
Substituting in equation (1), we havex = 10
Hence, Meena has 10 notes of Rs 50 and 15 notes of Rs 100.
(v)Let the fixed charge for first three days and each day charge thereafter be Rs xand Rs y respectively.
According to the given information,
Subtracting equation (2) from equation (1), we obtain
Substituting in equation (1), we obtain
Hence, fixed charge = Rs 15
And Charge per day = Rs 3
Exercise 3.5
Question 1:Which of the following pairs of linear equations has unique solution, no solution or
infinitely many solutions? In case there is a unique solution, find it by using cross
multiplication method.
Answer:
Therefore, the given sets of lines are parallel to each other. Therefore, they will not
intersect each other and thus, there will not be any solution for these equations.
Therefore, they will intersect each other at a unique point and thus, there will be a
unique solution for these equations.
By cross-multiplication method,
∴ x = 2, y = 1
Therefore, the given sets of lines will be overlapping each other i.e., the lines will be
coincident to each other and thus, there are infinite solutions possible for these
equations.
Therefore, they will intersect each other at a unique point and thus, there will be a
unique solution for these equations.
By cross-multiplication,
∴Question 2:(i) For which values of a and b will the following pair of linear equations have an
infinite number of solutions?
(ii) For which value ofk will the following pair of linear equations have no solution?
Answer:
For infinitely many solutions,
Subtracting (1) from (2), we obtain
Substituting this in equation (2), we obtain
Hence,a = 5 and b = 1 are the values for which the given equations give infinitely
many solutions.
For no solution,
Hence, for k = 2, the given equation has no solution.Question 3:Solve the following pair of linear equations by the substitution and crossmultiplication methods:
Answer:
From equation (ii), we obtain
Substituting this value in equation (i), we obtain
Substituting this value in equation (ii), we obtain
Hence,
Again, by cross-multiplication method, we obtain
Question 4:Form the pair of linear equations in the following problems and find their solutions (if
they exist) by any algebraic method:
(i)A part of monthly hostel charges is fixed and the remaining depends on the
number of days one has taken food in the mess. When a student A takes food for 20
days she has to pay Rs 1000 as hostel charges whereas a student B, who takes food
for 26 days, pays Rs 1180 as hostel charges. Find the fixed charges and the cost of
food per day.
(ii)A fraction becomes when 1 is subtracted from the numerator and it becomes
when 8 is added to its denominator. Find the fraction.
(iii)Yash scored 40 marks in a test, getting 3 marks for each right answer and losing
1 mark for each wrong answer. Had 4 marks been awarded for each correct answer
and 2 marks been deducted for each incorrect answer, then Yash would have scored
50 marks. How many questions were there in the test?
(iv) Places A and B are 100 km apart on a highway. One car starts from A and
another from B at the same time. If the cars travel in the same direction at different
speeds, they meet in 5 hours. If they travel towards each other, they meet in 1 hour.
What are the speeds of the two cars?
(v)The area of a rectangle gets reduced by 9 square units, if its length is reduced by
5 units and breadth is increased by 3 units. If we increase the length by 3 units and
the breadth by 2 units, the area increases by 67 square units. Find the dimensions of
the rectangle.
Answer:
(i)Letx be the fixed charge of the food and y be the charge for food per day.
According to the given information,
Subtracting equation (1) from equation (2), we obtain
Substituting this value in equation (1), we obtain
Hence, fixed charge = Rs 400
And charge per day = Rs 30
(ii)Let the fraction be .
According to the given information,
Subtracting equation (1) from equation (2), we obtain
Putting this value in equation (1), we obtain
Hence, the fraction is .
(iii)Let the number of right answers and wrong answers bex and yrespectively.
According to the given information,
Subtracting equation (2) from equation (1), we obtainx = 15 (3)
Substituting this in equation (2), we obtain
Therefore, number of right answers = 15
And number of wrong answers = 5
Total number of questions = 20
(iv)Let the speed of 1st car and 2nd car be u km/h and v km/h.
Respective speed of both cars while they are travelling in same direction = ( )
km/h
Respective speed of both cars while they are travelling in opposite directions i.e.,
travelling towards each other = ( ) km/h
According to the given information,
Adding both the equations, we obtain
Substituting this value in equation (2), we obtainv = 40 km/h
Hence, speed of one car = 60 km/h and speed of other car = 40 km/h
(v) Let length and breadth of rectangle bex unit and y unit respectively.
Area =xyAccording to the question,
By cross-multiplication method, we obtain
Hence, the length and breadth of the rectangle are 17 units and 9 units respectively.
Exercise 3.6
Question 1:Solve the following pairs of equations by reducing them to a pair of linear equations:
Answer:
Let and , then the equations change as follows.
Using cross-multiplication method, we obtain
Putting and in the given equations, we obtain
Multiplying equation (1) by 3, we obtain
6p + 9q = 6 (3)
Adding equation (2) and (3), we obtain
Putting in equation (1), we obtain
Hence,
Substituting in the given equations, we obtain
By cross-multiplication, we obtain
Putting and in the given equation, we obtain
Multiplying equation (1) by 3, we obtain
Adding (2) an (3), we obtain
Putting this value in equation (1), we obtain
Putting and in the given equation, we obtain
By cross-multiplication method, we obtain
Putting and in these equations, we obtain
By cross-multiplication method, we obtain
Hence, x = 1, y = 2
Putting and in the given equations, we obtain
Using cross-multiplication method, we obtain
Adding equation (3) and (4), we obtain
Substituting in equation (3), we obtainy = 2
Hence,x = 3, y = 2
Putting in these equations, we obtain
Adding (1) and (2), we obtain
Substituting in (2), we obtain
Adding equations (3) and (4), we obtain
Substituting in (3), we obtain
Hence,x = 1, y = 1Question 2:Formulate the following problems as a pair of equations, and hence find their
solutions:
(i) Ritu can row downstream 20 km in 2 hours, and upstream 4 km in 2 hours. Find
her speed of rowing in still water and the speed of the current.
(ii) 2 women and 5 men can together finish an embroidery work in 4 days, while 3
women and 6 men can finish it in 3 days. Find the time taken by 1 woman alone to
finish the work, and also that taken by 1 man alone.
(iii) Roohi travels 300 km to her home partly by train and partly by bus. She takes 4
hours if she travels 60 km by train and remaining by bus. If she travels 100 km by
train and the remaining by bus, she takes 10 minutes longer. Find the speed of the
train and the bus separately.
Answer:
(i)Let the speed of Ritu in still water and the speed of stream bex km/h
andy km/h respectively.
Speed of Ritu while rowing
Upstream = km/h
Downstream = km/h
According to question,
Adding equation (1) and (2), we obtain
Putting this in equation (1), we obtainy = 4
Hence, Ritu’s speed in still water is 6 km/h and the speed of the current is 4 km/h.
(ii)Let the number of days taken by a woman and a man bex and y respectively.
Therefore, work done by a woman in 1 day =
Work done by a man in 1 day =
According to the question,
Putting in these equations, we obtain
By cross-multiplication, we obtain
Hence, number of days taken by a woman = 18
Number of days taken by a man = 36
(iii) Let the speed of train and bus be u km/h and v km/h respectively.
According to the given information,
Putting and in these equations, we obtain
Multiplying equation (3) by 10, we obtain
Subtracting equation (4) from (5), we obtain
Substituting in equation (3), we obtain
Hence, speed of train = 60 km/h
Speed of bus = 80 km/h
Exercise 3.7Question 1:The ages of two friends Ani and Biju differ by 3 years. Ani’s father Dharam is twice
as old as Ani and Biju is twice as old as his sister Cathy. The ages of Cathy and
Dharam differs by 30 years. Find the ages of Ani and Biju.
Answer:
The difference between the ages of Biju and Ani is 3 years. Either Biju is 3 years
older than Ani or Ani is 3 years older than Biju. However, it is obvious that in both
cases, Ani’s father’s age will be 30 years more than that of Cathy’s age.
Let the age of Ani and Biju bex and y years respectively.
Therefore, age of Ani’s father, Dharam = 2 ×x = 2x years
4x - y = 60 (ii)
Subtracting (i) from (ii), we obtain
3x = 60 - 3 = 57
Therefore, age of Ani = 19 years
And age of Biju = 19 - 3 = 16 yearsCase (II) When Biju is older than Ani,y - x = 3 (i)
4x - y = 60 (ii)
Adding (i) and (ii), we obtain
3x = 63x = 21
Therefore, age of Ani = 21 years
And age of Biju = 21 + 3 = 24 yearsQuestion 2:One says, “Give me a hundred, friend! I shall then become twice as rich as you”. The
other replies, “If you give me ten, I shall be six times as rich as you”. Tell me what is
the amount of their (respective) capital? [From the Bijaganita of Bhaskara II)
[Hint: x + 100 = 2 (y - 100), y + 10 = 6(x - 10)]
Answer:
Let those friends were having Rsx and y with them.
Using the information given in the question, we obtainx + 100 = 2(y - 100)x + 100 = 2y - 200x - 2y = -300 (i)
And, 6(x - 10) = (y + 10)
6x - 60 = y + 10
6x - y = 70 (ii)
Multiplying equation (ii) by 2, we obtain
12x - 2y = 140 (iii)
Subtracting equation (i) from equation (iii), we obtain
11x = 140 + 300
11x = 440x = 40
Using this in equation (i), we obtain
40 - 2y = -300
40 + 300 = 2y2y = 340
y = 170
Therefore, those friends had Rs 40 and Rs 170 with them respectively.Question 3:A train covered a certain distance at a uniform speed. If the train would have been
10 km/h faster, it would have taken 2 hours less than the scheduled time. And if the
train were slower by 10 km/h; it would have taken 3 hours more than the scheduled
time. Find the distance covered by the train.
Answer:
Let the speed of the train bex km/h and the time taken by train to travel the given
distance bet hours and the distance to travel was d km. We know that,
Or,d = xt (i)
Using the information given in the question, we obtain
By using equation (i), we obtain
- 2x + 10t = 20 (ii)
By using equation (i), we obtain
3x - 10t = 30 (iii)
Adding equations (ii) and (iii), we obtain
x = 50
Using equation (ii), we obtain
(-2) × (50) + 10t = 20
-100 + 10t = 20
10t = 120t = 12 hours
From equation (i), we obtain
Distance to travel =d = xt= 50 × 12
= 600 km
Hence, the distance covered by the train is 600 km.Question 4:The students of a class are made to stand in rows. If 3 students are extra in a row,
there would be 1 row less. If 3 students are less in a row, there would be 2 rows
more. Find the number of students in the class.
Answer:
Let the number of rows bex and number of students in a row be y.
Total students of the class
= Number of rows × Number of students in a row
=xyUsing the information given in the question,Condition 1Total number of students = (x - 1) (y + 3)xy = (x - 1) (y + 3) = xy - y + 3x - 3
3x - y - 3 = 0
3x - y = 3 (i)Condition 2Total number of students = (x + 2) (y - 3)xy = xy + 2y - 3x - 6
3x - 2y = -6 (ii)
Subtracting equation (ii) from (i),
(3x - y) - (3x - 2y) = 3 - (-6)
-y + 2y = 3 + 6y = 9
By using equation (i), we obtain
3x - 9 = 3
3x = 9 + 3 = 12x = 4
Number of rows =x = 4
Number of students in a row =y = 9
Number of total students in a class =xy = 4 × 9 = 36Question 5:In a ∆ABC, ∠ C = 3 ∠ B = 2 (∠ A + ∠ B). Find the three angles.
Answer:
Given that,∠ C = 3∠ B = 2(∠ A + ∠ B)
3∠ B = 2(∠ A + ∠ B)
3∠ B = 2∠ A + 2∠ B∠ B = 2∠ A
2∠ A - ∠ B = 0 … (i)
We know that the sum of the measures of all angles of a triangle is 180°. Therefore,∠ A + ∠ B + ∠ C = 180°∠ A + ∠ B + 3 ∠ B = 180°∠ A + 4 ∠ B = 180° … (ii)
Multiplying equation (i) by 4, we obtain
8∠ A - 4 ∠ B = 0 … (iii)
Adding equations (ii) and (iii), we obtain
9∠ A = 180°∠ A = 20°
From equation (ii), we obtain
20° + 4∠ B = 180°
4∠ B = 160°∠ B = 40°∠ C = 3 ∠ B
= 3 × 40° = 120°
Therefore,∠ A, ∠ B, ∠ C are 20°, 40°, and 120° respectively.Question 6:Draw the graphs of the equations 5x - y = 5 and 3x - y = 3. Determine the coordinates of the vertices of the triangle formed by these lines and the y axis.
Answer:
5x - y = 5
Or,y = 5x - 5
The solution table will be as follows.
3x - y = 3
Or,y = 3x - 3
The solution table will be as follows.
The graphical representation of these lines will be as follows.
It can be observed that the required triangle is ∆ABC formed by these lines and yaxis.
The coordinates of vertices are A (1, 0), B (0, - 3), C (0, - 5).Question 7:Solve the following pair of linear equations.
(i)px + qy = p - q
qx- py = p + q(ii) ax + by = c
bx+ ay = 1 + c(iii)ax + by = a2 + b2(iv) (a - b) x + (a + b) y = a2- 2ab - b2(a + b) (x + y) = a2 + b2(v) 152x - 378y = - 74
- 378x + 152y = - 604
Answer:
(i)px + qy = p - q … (1)
qx - py = p + q … (2)
Multiplying equation (1) byp and equation (2) by q, we obtainp2x + pqy = p2 - pq … (3)q2x - pqy = pq + q2 … (4)
Adding equations (3) and (4), we obtainp2x + q2 x = p2 + q2(p2 + q2) x = p2 + q2From equation (1), we obtainp (1) + qy = p - q
qy= - q
y= - 1
(ii)ax + by = c … (1)bx + ay = 1 + c … (2)
Multiplying equation (1) bya and equation (2) by b, we obtaina2x + aby = ac … (3)b2x + aby = b + bc … (4)
Subtracting equation (4) from equation (3),
(a2 - b2) x = ac - bc - bFrom equation (1), we obtainax + by = c
(iii)
Or,bx - ay = 0 … (1)ax + by = a2 + b2 … (2)
Multiplying equation (1) and (2) byb and a respectively, we obtainb2x - aby = 0 … (3)a2x + aby = a3 + ab2 … (4)
Adding equations (3) and (4), we obtainb2x + a2x = a3 + ab2x (b2 + a2) = a (a2 + b2)x = aBy using (1), we obtainb (a) - ay = 0ab - ay = 0ay = ab
y= b
(iv) (a - b) x + (a + b) y = a2- 2ab - b2 … (1)
(a + b) (x + y) = a2 + b2(a + b) x + (a + b) y = a2 + b2 … (2)
Subtracting equation (2) from (1), we obtain
(a - b) x - (a + b) x = (a2 - 2ab - b2) - (a2 + b2)
(a - b - a - b) x = - 2ab - 2b2- 2bx = - 2b (a + b)x = a + bUsing equation (1), we obtain
(a - b) (a + b) + (a + b) y = a2 - 2ab - b2a2 - b2 + (a + b) y = a2- 2ab - b2(a + b) y = - 2ab(v) 152x - 378y = - 74
76x - 189y = - 37
… (1)
- 378x + 152y = - 604
- 189x + 76y = - 302 … (2)
Substituting the value ofx in equation (2), we obtain
- (189)2 y + 189 × 37 + (76)2 y = - 302 × 76
189 × 37 + 302 × 76 = (189)2 y - (76)2 y6993 + 22952 = (189 - 76) (189 + 76) y29945 = (113) (265) y
y= 1
From equation (1), we obtain
Question 8:ABCD is a cyclic quadrilateral finds the angles of the cyclic quadrilateral.
Answer:
We know that the sum of the measures of opposite angles in a cyclic quadrilateral is
180°.
Therefore,∠ A + ∠ C = 180
4y + 20 - 4x = 180
- 4x + 4y = 160x - y = - 40 (i)
Also,∠ B + ∠ D = 180
3y - 5 - 7x + 5 = 180
- 7x + 3y = 180 (ii)
Multiplying equation (i) by 3, we obtain
3x - 3y = - 120 (iii)
Adding equations (ii) and (iii), we obtain
- 7x + 3x = 180 - 120
- 4x = 60
x = -15
By using equation (i), we obtainx - y = - 40
-15 -y = - 40y = -15 + 40 = 25∠ A = 4y + 20 = 4(25) + 20 = 120°∠ B = 3y - 5 = 3(25) - 5 = 70°∠ C = - 4x = - 4(- 15) = 60°∠ D = - 7x + 5 = - 7(-15) + 5 = 110°
Exercise 3.1
Question 1:Aftab tells his daughter, “Seven years ago, I was seven times as old as you were
then. Also, three years from now, I shall be three times as old as you will be.” (Isn’t
this interesting?) Represent this situation algebraically and graphically.
Answer:
Let the present age of Aftab bex.
And, present age of his daughter =ySeven years ago,
Age of Aftab =x - 7
Age of his daughter =y - 7
According to the question,
Three years hence,
Age of Aftab =x + 3
Age of his daughter =y + 3
According to the question,
Therefore, the algebraic representation is
For ,
The solution table is
| x | - 7 | 0 | 7 |
| y | 5 | 6 | 7 |
The solution table is
| x | 6 | 3 | 0 |
| y | 0 | - 1 | - 2 |
another bat and 2 more balls of the same kind for Rs 1300. Represent this situation
algebraically and geometrically.
Answer:
Let the cost of a bat be Rsx.
And, cost of a ball = Rsy
According to the question, the algebraic representation is
For ,
The solution table is
| x | 300 | 100 | - 100 |
| y | 500 | 600 | 700 |
The solution table is
| x | 300 | 100 | - 100 |
| y | 500 | 600 | 700 |
Question 3:The cost of 2 kg of apples and 1 kg of grapes on a day was found to be Rs 160. After
a month, the cost of 4 kg of apples and 2 kg of grapes is Rs 300. Represent the
situation algebraically and geometrically.
Answer:
Let the cost of 1 kg of apples be Rsx.
And, cost of 1 kg of grapes = RsyAccording to the question, the algebraic representation is
For ,
The solution table is
| x | 50 | 60 | 70 |
| y | 60 | 40 | 20 |
The solution table is
| x | 70 | 80 | 75 |
| y | 10 | -10 | 0 |
Exercise 3.2
Question 1:Form the pair of linear equations in the following problems, and find their solutions
graphically.
(i) 10 students of Class X took part in a Mathematics quiz. If the number of girls is 4
more than the number of boys, find the number of boys and girls who took part in
the quiz.
(ii) 5 pencils and 7 pens together cost Rs 50, whereas 7 pencils and 5 pens together
cost Rs 46. Find the cost of one pencil and that of one pen.
Answer:
(i) Let the number of girls bex and the number of boys be y.
According to the question, the algebraic representation isx + y = 10x - y = 4
Forx + y = 10,x = 10 - y
| x | 5 | 4 | 6 |
| y | 5 | 6 | 4 |
| x | 5 | 4 | 3 |
| y | 1 | 0 | -1 |
From the figure, it can be observed that these lines intersect each other at point (7,
3).
Therefore, the number of girls and boys in the class are 7 and 3 respectively.
(ii) Let the cost of 1 pencil be Rsx and the cost of 1 pen be Rs y.
According to the question, the algebraic representation is
5x + 7y = 50
7x + 5y = 46
For 5x + 7y = 50,
| x | 3 | 10 | - 4 |
| y | 5 | 0 | 10 |
| x | 8 | 3 | - 2 |
| y | - 2 | 5 | 12 |
From the figure, it can be observed that these lines intersect each other at point (3,
5).
Therefore, the cost of a pencil and a pen are Rs 3 and Rs 5 respectively.Question 2:
| On comparing the ratios | , find out whether the lines representing the |
| following pairs of linear equations at a point, are parallel or coincident: |
(i) 5x - 4y + 8 = 0
7x + 6y - 9 = 0
Comparing these equations with
and , we obtain
Since ,
Hence, the lines representing the given pair of equations have a unique solution and
the pair of lines intersects at exactly one point.
(ii) 9x + 3y + 12 = 0
18x + 6y + 24 = 0
Comparing these equations with
and , we obtain
Since ,
Hence, the lines representing the given pair of equations are coincident and there
are infinite possible solutions for the given pair of equations.
(iii)6x - 3y + 10 = 0
2x - y + 9 = 0
Comparing these equations with
and , we obtain
| Since | , |
| Hence, the lines representing the given pair of equations are parallel to each other | |
| and hence, these lines will never intersect each other at any point or there is no | |
| possible solution for the given pair of equations. | |
| Question 3: |
| On comparing the ratios | , find out whether the following pair of linear |
| equations are consistent, or inconsistent. |
(i) 3x + 2y = 5
2x - 3y = 7
These linear equations are intersecting each other at one point and thus have only
one possible solution. Hence, the pair of linear equations is consistent.
(ii)2x - 3y = 8
4x - 6y = 9
| Since | , |
| Therefore, these linear equations are parallel to each other and thus have no | |
| possible solution. Hence, the pair of linear equations is inconsistent. |
Since ,
Therefore, these linear equations are intersecting each other at one point and thus
have only one possible solution. Hence, the pair of linear equations is consistent.
(iv)5x - 3 y = 11
- 10x + 6y = - 22
| Since | , |
| Therefore, these linear equations are coincident pair of lines and thus have infinite | |
| number of possible solutions. Hence, the pair of linear equations is consistent. |
Since
Therefore, these linear equations are coincident pair of lines and thus have infinite
number of possible solutions. Hence, the pair of linear equations is consistent.Question 4:Which of the following pairs of linear equations are consistent/ inconsistent? If
consistent, obtain the solution graphically:
Answer:
(i)x + y = 5
2x + 2y = 10
| Since | , |
| Therefore, these linear equations are coincident pair of lines and thus have infinite | |
| number of possible solutions. Hence, the pair of linear equations is consistent. | |
| x + y = 5 | |
| x = 5 - y |
| x | 4 | 3 | 2 |
| y | 1 | 2 | 3 |
| x | 4 | 3 | 2 |
| y | 1 | 2 | 3 |
From the figure, it can be observed that these lines are overlapping each other.
Therefore, infinite solutions are possible for the given pair of equations.
(ii)x - y = 8
3x - 3y = 16
Since ,
Therefore, these linear equations are parallel to each other and thus have no
possible solution. Hence, the pair of linear equations is inconsistent.
(iii)2x + y - 6 = 0
4x - 2y - 4 = 0
| Since | , |
| Therefore, these linear equations are intersecting each other at one point and thus | |
| have only one possible solution. Hence, the pair of linear equations is consistent. | |
| 2x + y - 6 = 0 | |
| y = 6 - 2x |
| x | 0 | 1 | 2 |
| y | 6 | 4 | 2 |
| x | 1 | 2 | 3 |
| y | 0 | 2 | 4 |
From the figure, it can be observed that these lines are intersecting each other at the
only point i.e., (2, 2) and it is the solution for the given pair of equations.
(iv)2x - 2y - 2 = 0
4x - 4y - 5 = 0
| Since | , |
| Therefore, these linear equations are parallel to each other and thus have no | |
| possible solution. Hence, the pair of linear equations is inconsistent. | |
| Question 5: | |
| Half the perimeter of a rectangular garden, whose length is 4 m more than its width, | |
| is 36 m. Find the dimensions of the garden. | |
| Answer: | |
| Let the width of the garden be x and length be y. |
| x | 0 | 8 | 12 |
| y | 4 | 12 | 16 |
| x | 0 | 36 | 16 |
| y | 36 | 0 | 20 |
From the figure, it can be observed that these lines are intersecting each other at
only point i.e., (16, 20). Therefore, the length and width of the given garden is 20 m
and 16 m respectively.Question 6:Given the linear equation 2x + 3y - 8 = 0, write another linear equations in two
variables such that the geometrical representation of the pair so formed is:
(i) intersecting lines (ii) parallel lines
(iii) coincident lines
Answer:
(i)Intersecting lines:
For this condition,
The second line such that it is intersecting the given line is
.
(ii) Parallel lines:
For this condition,
Hence, the second line can be
4x + 6y - 8 = 0
(iii)Coincident lines:
For coincident lines,
Hence, the second line can be
6x + 9y - 24 = 0Question 7:Draw the graphs of the equations x - y + 1 = 0 and 3x + 2y - 12 = 0. Determine
the coordinates of the vertices of the triangle formed by these lines and thex-axis,
and shade the triangular region.
Answer:x - y + 1 = 0x = y - 1
| x | 0 | 1 | 2 |
| y | 1 | 2 | 3 |
| x | 4 | 2 | 0 |
| y | 0 | 3 | 6 |
From the figure, it can be observed that these lines are intersecting each other at
point (2, 3) andx-axis at (-1, 0) and (4, 0). Therefore, the vertices of the triangle
are (2, 3), (-1, 0), and (4, 0).
Exercise 3.3
Question 1:Solve the following pair of linear equations by the substitution method.
Answer:
(i)x + y = 14 (1)x - y = 4 (2)
From (1), we obtainx = 14 - y (3)
Substituting this value in equation (2), we obtain
Substituting this in equation (3), we obtain
(ii)
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting in equation (3), we obtains = 9s = 9, t = 6
(iii)3x - y = 3 (1)
9x - 3y = 9 (2)
From (1), we obtainy = 3x - 3 (3)
Substituting this value in equation (2), we obtain
9 = 9
This is always true.
Hence, the given pair of equations has infinite possible solutions and the relation
between these variables can be given byy = 3x - 3
Therefore, one of its possible solutions isx = 1, y = 0.
(iv)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
(v)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
x = 0x = 0, y = 0
(vi)
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
Hence,x = 2, y = 3Question 2:Solve 2x + 3y = 11 and 2x - 4y = - 24 and hence find the value of ‘m’ for which y= mx + 3.
Answer:
From equation (1), we obtain
Substituting this value in equation (2), we obtain
Putting this value in equation (3), we obtain
Hence,x = -2, y = 5
Also,Question 3:Form the pair of linear equations for the following problems and find their solution by
substitution method.
(i) The difference between two numbers is 26 and one number is three times the
other. Find them.
(ii) The larger of two supplementary angles exceeds the smaller by 18 degrees. Find
them.
(iii) The coach of a cricket team buys 7 bats and 6 balls for Rs 3800. Later, she buys
3 bats and 5 balls for Rs 1750. Find the cost of each bat and each ball.
(iv) The taxi charges in a city consist of a fixed charge together with the charge for
the distance covered. For a distance of 10 km, the charge paid is Rs 105 and for a
journey of 15 km, the charge paid is Rs 155. What are the fixed charges and the
charge per km? How much does a person have to pay for travelling a distance of 25
km.
(v) A fraction becomes , if 2 is added to both the numerator and the denominator.
If, 3 is added to both the numerator and the denominator it becomes . Find the
fraction.
(vi) Five years hence, the age of Jacob will be three times that of his son. Five years
ago, Jacob’s age was seven times that of his son. What are their present ages?
Answer:
(i) Let the first number bex and the other number be y such that y > x.
According to the given information,
On substituting the value ofy from equation (1) into equation (2), we obtain
Substituting this in equation (1), we obtainy = 39
Hence, the numbers are 13 and 39.
(ii) Let the larger angle bex 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 obtainx = 180º - y (3)
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtainx = 180º - 81º
= 99º
Hence, the angles are 99º and 81º.
(iii) Let the cost of a bat and a ball bex and y respectively.
According to the given information,
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this in equation (3), we obtain
Hence, the cost of a bat is Rs 500 and that of a ball is Rs 50.
(iv)Let the fixed charge be Rsx and per km charge be Rs y.
According to the given information,
From (3), we obtain
Substituting this in equation (2), we obtain
Putting this in equation (3), we obtain
Hence, fixed charge = Rs 5
And per km charge = Rs 10
Charge for 25 km =x + 25y= 5 + 250 = Rs 255
(v) Let the fraction be .
According to the given information,
From equation (1), we obtain
Substituting this in equation (2), we obtain
Substituting this in equation (3), we obtain
Hence, the fraction is .
(vi) Let the age of Jacob bex and the age of his son be y.
According to the given information,
From (1), we obtain
Substituting this value in equation (2), we obtain
Substituting this value in equation (3), we obtain
Hence, the present age of Jacob is 40 years whereas the present age of his son is 10
years.
Exercise 3.4
Question 1:Solve the following pair of linear equations by the elimination method and the
substitution method:
Answer:
(i)By elimination methodMultiplying equation (1) by 2, we obtain
Subtracting equation (2) from equation (3), we obtain
Substituting the value in equation (1), we obtainBy substitution methodFrom equation (1), we obtain
(5)
Putting this value in equation (2), we obtain
-5y = -6
Substituting the value in equation (5), we obtain
(ii)By elimination methodMultiplying equation (2) by 2, we obtain
Adding equation (1) and (3), we obtain
Substituting in equation (1), we obtain
Hence,x = 2, y = 1By substitution methodFrom equation (2), we obtain
(5)
Putting this value in equation (1), we obtain
7y = 7
Substituting the value in equation (5), we obtain
(iii)By elimination methodMultiplying equation (1) by 3, we obtain
Subtracting equation (3) from equation (2), we obtain
Substituting in equation (1), we obtain∴By substitution methodFrom equation (1), we obtain
(5)
Putting this value in equation (2), we obtain
Substituting the value in equation (5), we obtain∴(iv)By elimination methodSubtracting equation (2) from equation (1), we obtain
Substituting this value in equation (1), we obtain
Hence,x = 2, y = -3By substitution method
From equation (2), we obtain
(5)
Putting this value in equation (1), we obtain
5y = -15
Substituting the value in equation (5), we obtain∴ x = 2, y = -3Question 2:Form the pair of linear equations in the following problems, and find their solutions
(if they exist) by the elimination method:
(i) If we add 1 to the numerator and subtract 1 from the denominator, a fraction
reduces to 1. It becomes if we only add 1 to the denominator. What is the
fraction?
(ii) Five years ago, Nuri was thrice as old as Sonu. Ten years later, Nuri will be twice
as old as Sonu. How old are Nuri and Sonu?
(iii) The sum of the digits of a two-digit number is 9. Also, nine times this number is
twice the number obtained by reversing the order of the digits. Find the number.
(iv) Meena went to bank to withdraw Rs 2000. She asked the cashier to give her Rs
50 and Rs 100 notes only. Meena got 25 notes in all. Find how many notes of Rs 50
and Rs 100 she received.
(v) A lending library has a fixed charge for the first three days and an additional
charge for each day thereafter. Saritha paid Rs 27 for a book kept for seven days,
while Susy paid Rs 21 for the book she kept for five days. Find the fixed charge and
the charge for each extra day.
Answer:
(i)Let the fraction be .
According to the given information,
Subtracting equation (1) from equation (2), we obtainx = 3 (3)
Substituting this value in equation (1), we obtain
Hence, the fraction is .
(ii)Let present age of Nuri =xand present age of Sonu = yAccording to the given information,
Subtracting equation (1) from equation (2), we obtainy = 20 (3)
Substituting it in equation (1), we obtain
Hence, age of Nuri = 50 years
And, age of Sonu = 20 years
(iii)Let the unit digit and tens digits of the number bex and y respectively. Then,
number = 10y + xNumber after reversing the digits = 10x + yAccording to the given information,x + y = 9 (1)
9(10y + x) = 2(10x + y)
88y - 11x = 0
-x + 8y =0 (2)
Adding equation (1) and (2), we obtain
9y = 9y = 1 (3)
Substituting the value in equation (1), we obtainx = 8
Hence, the number is 10y + x = 10 × 1 + 8 = 18
(iv)Let the number of Rs 50 notes and Rs 100 notes bex and y respectively.
According to the given information,
Multiplying equation (1) by 50, we obtain
Subtracting equation (3) from equation (2), we obtain
Substituting in equation (1), we havex = 10
Hence, Meena has 10 notes of Rs 50 and 15 notes of Rs 100.
(v)Let the fixed charge for first three days and each day charge thereafter be Rs xand Rs y respectively.
According to the given information,
Subtracting equation (2) from equation (1), we obtain
Substituting in equation (1), we obtain
Hence, fixed charge = Rs 15
And Charge per day = Rs 3
Exercise 3.5
Question 1:Which of the following pairs of linear equations has unique solution, no solution or
infinitely many solutions? In case there is a unique solution, find it by using cross
multiplication method.
Answer:
Therefore, the given sets of lines are parallel to each other. Therefore, they will not
intersect each other and thus, there will not be any solution for these equations.
Therefore, they will intersect each other at a unique point and thus, there will be a
unique solution for these equations.
By cross-multiplication method,
∴ x = 2, y = 1
Therefore, the given sets of lines will be overlapping each other i.e., the lines will be
coincident to each other and thus, there are infinite solutions possible for these
equations.
Therefore, they will intersect each other at a unique point and thus, there will be a
unique solution for these equations.
By cross-multiplication,
∴Question 2:(i) For which values of a and b will the following pair of linear equations have an
infinite number of solutions?
(ii) For which value ofk will the following pair of linear equations have no solution?
Answer:
For infinitely many solutions,
Subtracting (1) from (2), we obtain
Substituting this in equation (2), we obtain
Hence,a = 5 and b = 1 are the values for which the given equations give infinitely
many solutions.
For no solution,
Hence, for k = 2, the given equation has no solution.Question 3:Solve the following pair of linear equations by the substitution and crossmultiplication methods:
Answer:
From equation (ii), we obtain
Substituting this value in equation (i), we obtain
Substituting this value in equation (ii), we obtain
Hence,
Again, by cross-multiplication method, we obtain
Question 4:Form the pair of linear equations in the following problems and find their solutions (if
they exist) by any algebraic method:
(i)A part of monthly hostel charges is fixed and the remaining depends on the
number of days one has taken food in the mess. When a student A takes food for 20
days she has to pay Rs 1000 as hostel charges whereas a student B, who takes food
for 26 days, pays Rs 1180 as hostel charges. Find the fixed charges and the cost of
food per day.
(ii)A fraction becomes when 1 is subtracted from the numerator and it becomes
when 8 is added to its denominator. Find the fraction.
(iii)Yash scored 40 marks in a test, getting 3 marks for each right answer and losing
1 mark for each wrong answer. Had 4 marks been awarded for each correct answer
and 2 marks been deducted for each incorrect answer, then Yash would have scored
50 marks. How many questions were there in the test?
(iv) Places A and B are 100 km apart on a highway. One car starts from A and
another from B at the same time. If the cars travel in the same direction at different
speeds, they meet in 5 hours. If they travel towards each other, they meet in 1 hour.
What are the speeds of the two cars?
(v)The area of a rectangle gets reduced by 9 square units, if its length is reduced by
5 units and breadth is increased by 3 units. If we increase the length by 3 units and
the breadth by 2 units, the area increases by 67 square units. Find the dimensions of
the rectangle.
Answer:
(i)Letx be the fixed charge of the food and y be the charge for food per day.
According to the given information,
Subtracting equation (1) from equation (2), we obtain
Substituting this value in equation (1), we obtain
Hence, fixed charge = Rs 400
And charge per day = Rs 30
(ii)Let the fraction be .
According to the given information,
Subtracting equation (1) from equation (2), we obtain
Putting this value in equation (1), we obtain
Hence, the fraction is .
(iii)Let the number of right answers and wrong answers bex and yrespectively.
According to the given information,
Subtracting equation (2) from equation (1), we obtainx = 15 (3)
Substituting this in equation (2), we obtain
Therefore, number of right answers = 15
And number of wrong answers = 5
Total number of questions = 20
(iv)Let the speed of 1st car and 2nd car be u km/h and v km/h.
Respective speed of both cars while they are travelling in same direction = ( )
km/h
Respective speed of both cars while they are travelling in opposite directions i.e.,
travelling towards each other = ( ) km/h
According to the given information,
Adding both the equations, we obtain
Substituting this value in equation (2), we obtainv = 40 km/h
Hence, speed of one car = 60 km/h and speed of other car = 40 km/h
(v) Let length and breadth of rectangle bex unit and y unit respectively.
Area =xyAccording to the question,
By cross-multiplication method, we obtain
Hence, the length and breadth of the rectangle are 17 units and 9 units respectively.
Exercise 3.6
Question 1:Solve the following pairs of equations by reducing them to a pair of linear equations:
Answer:
Let and , then the equations change as follows.
Using cross-multiplication method, we obtain
Putting and in the given equations, we obtain
Multiplying equation (1) by 3, we obtain
6p + 9q = 6 (3)
Adding equation (2) and (3), we obtain
Putting in equation (1), we obtain
Hence,
Substituting in the given equations, we obtain
By cross-multiplication, we obtain
Putting and in the given equation, we obtain
Multiplying equation (1) by 3, we obtain
Adding (2) an (3), we obtain
Putting this value in equation (1), we obtain
Putting and in the given equation, we obtain
By cross-multiplication method, we obtain
Putting and in these equations, we obtain
By cross-multiplication method, we obtain
Hence, x = 1, y = 2
Putting and in the given equations, we obtain
Using cross-multiplication method, we obtain
Adding equation (3) and (4), we obtain
Substituting in equation (3), we obtainy = 2
Hence,x = 3, y = 2
Putting in these equations, we obtain
Adding (1) and (2), we obtain
Substituting in (2), we obtain
Adding equations (3) and (4), we obtain
Substituting in (3), we obtain
Hence,x = 1, y = 1Question 2:Formulate the following problems as a pair of equations, and hence find their
solutions:
(i) Ritu can row downstream 20 km in 2 hours, and upstream 4 km in 2 hours. Find
her speed of rowing in still water and the speed of the current.
(ii) 2 women and 5 men can together finish an embroidery work in 4 days, while 3
women and 6 men can finish it in 3 days. Find the time taken by 1 woman alone to
finish the work, and also that taken by 1 man alone.
(iii) Roohi travels 300 km to her home partly by train and partly by bus. She takes 4
hours if she travels 60 km by train and remaining by bus. If she travels 100 km by
train and the remaining by bus, she takes 10 minutes longer. Find the speed of the
train and the bus separately.
Answer:
(i)Let the speed of Ritu in still water and the speed of stream bex km/h
andy km/h respectively.
Speed of Ritu while rowing
Upstream = km/h
Downstream = km/h
According to question,
Adding equation (1) and (2), we obtain
Putting this in equation (1), we obtainy = 4
Hence, Ritu’s speed in still water is 6 km/h and the speed of the current is 4 km/h.
(ii)Let the number of days taken by a woman and a man bex and y respectively.
Therefore, work done by a woman in 1 day =
Work done by a man in 1 day =
According to the question,
Putting in these equations, we obtain
By cross-multiplication, we obtain
Hence, number of days taken by a woman = 18
Number of days taken by a man = 36
(iii) Let the speed of train and bus be u km/h and v km/h respectively.
According to the given information,
Putting and in these equations, we obtain
Multiplying equation (3) by 10, we obtain
Subtracting equation (4) from (5), we obtain
Substituting in equation (3), we obtain
Hence, speed of train = 60 km/h
Speed of bus = 80 km/h
Exercise 3.7Question 1:The ages of two friends Ani and Biju differ by 3 years. Ani’s father Dharam is twice
as old as Ani and Biju is twice as old as his sister Cathy. The ages of Cathy and
Dharam differs by 30 years. Find the ages of Ani and Biju.
Answer:
The difference between the ages of Biju and Ani is 3 years. Either Biju is 3 years
older than Ani or Ani is 3 years older than Biju. However, it is obvious that in both
cases, Ani’s father’s age will be 30 years more than that of Cathy’s age.
Let the age of Ani and Biju bex and y years respectively.
Therefore, age of Ani’s father, Dharam = 2 ×x = 2x years
| And age of Biju’s sister Cathy | years |
| By using the information given in the question, | |
| Case (I) When Ani is older than Biju by 3 years, | |
| x - y = 3 (i) |
Subtracting (i) from (ii), we obtain
3x = 60 - 3 = 57
Therefore, age of Ani = 19 years
And age of Biju = 19 - 3 = 16 yearsCase (II) When Biju is older than Ani,y - x = 3 (i)
4x - y = 60 (ii)
Adding (i) and (ii), we obtain
3x = 63x = 21
Therefore, age of Ani = 21 years
And age of Biju = 21 + 3 = 24 yearsQuestion 2:One says, “Give me a hundred, friend! I shall then become twice as rich as you”. The
other replies, “If you give me ten, I shall be six times as rich as you”. Tell me what is
the amount of their (respective) capital? [From the Bijaganita of Bhaskara II)
[Hint: x + 100 = 2 (y - 100), y + 10 = 6(x - 10)]
Answer:
Let those friends were having Rsx and y with them.
Using the information given in the question, we obtainx + 100 = 2(y - 100)x + 100 = 2y - 200x - 2y = -300 (i)
And, 6(x - 10) = (y + 10)
6x - 60 = y + 10
6x - y = 70 (ii)
Multiplying equation (ii) by 2, we obtain
12x - 2y = 140 (iii)
Subtracting equation (i) from equation (iii), we obtain
11x = 140 + 300
11x = 440x = 40
Using this in equation (i), we obtain
40 - 2y = -300
40 + 300 = 2y2y = 340
y = 170
Therefore, those friends had Rs 40 and Rs 170 with them respectively.Question 3:A train covered a certain distance at a uniform speed. If the train would have been
10 km/h faster, it would have taken 2 hours less than the scheduled time. And if the
train were slower by 10 km/h; it would have taken 3 hours more than the scheduled
time. Find the distance covered by the train.
Answer:
Let the speed of the train bex km/h and the time taken by train to travel the given
distance bet hours and the distance to travel was d km. We know that,
Or,d = xt (i)
Using the information given in the question, we obtain
By using equation (i), we obtain
- 2x + 10t = 20 (ii)
By using equation (i), we obtain
3x - 10t = 30 (iii)
Adding equations (ii) and (iii), we obtain
x = 50
Using equation (ii), we obtain
(-2) × (50) + 10t = 20
-100 + 10t = 20
10t = 120t = 12 hours
From equation (i), we obtain
Distance to travel =d = xt= 50 × 12
= 600 km
Hence, the distance covered by the train is 600 km.Question 4:The students of a class are made to stand in rows. If 3 students are extra in a row,
there would be 1 row less. If 3 students are less in a row, there would be 2 rows
more. Find the number of students in the class.
Answer:
Let the number of rows bex and number of students in a row be y.
Total students of the class
= Number of rows × Number of students in a row
=xyUsing the information given in the question,Condition 1Total number of students = (x - 1) (y + 3)xy = (x - 1) (y + 3) = xy - y + 3x - 3
3x - y - 3 = 0
3x - y = 3 (i)Condition 2Total number of students = (x + 2) (y - 3)xy = xy + 2y - 3x - 6
3x - 2y = -6 (ii)
Subtracting equation (ii) from (i),
(3x - y) - (3x - 2y) = 3 - (-6)
-y + 2y = 3 + 6y = 9
By using equation (i), we obtain
3x - 9 = 3
3x = 9 + 3 = 12x = 4
Number of rows =x = 4
Number of students in a row =y = 9
Number of total students in a class =xy = 4 × 9 = 36Question 5:In a ∆ABC, ∠ C = 3 ∠ B = 2 (∠ A + ∠ B). Find the three angles.
Answer:
Given that,∠ C = 3∠ B = 2(∠ A + ∠ B)
3∠ B = 2(∠ A + ∠ B)
3∠ B = 2∠ A + 2∠ B∠ B = 2∠ A
2∠ A - ∠ B = 0 … (i)
We know that the sum of the measures of all angles of a triangle is 180°. Therefore,∠ A + ∠ B + ∠ C = 180°∠ A + ∠ B + 3 ∠ B = 180°∠ A + 4 ∠ B = 180° … (ii)
Multiplying equation (i) by 4, we obtain
8∠ A - 4 ∠ B = 0 … (iii)
Adding equations (ii) and (iii), we obtain
9∠ A = 180°∠ A = 20°
From equation (ii), we obtain
20° + 4∠ B = 180°
4∠ B = 160°∠ B = 40°∠ C = 3 ∠ B
= 3 × 40° = 120°
Therefore,∠ A, ∠ B, ∠ C are 20°, 40°, and 120° respectively.Question 6:Draw the graphs of the equations 5x - y = 5 and 3x - y = 3. Determine the coordinates of the vertices of the triangle formed by these lines and the y axis.
Answer:
5x - y = 5
Or,y = 5x - 5
The solution table will be as follows.
| x | 0 | 1 | 2 |
| y | -5 | 0 | 5 |
Or,y = 3x - 3
The solution table will be as follows.
| x | 0 | 1 | 2 |
| y | - 3 | 0 | 3 |
It can be observed that the required triangle is ∆ABC formed by these lines and yaxis.
The coordinates of vertices are A (1, 0), B (0, - 3), C (0, - 5).Question 7:Solve the following pair of linear equations.
(i)px + qy = p - q
qx- py = p + q(ii) ax + by = c
bx+ ay = 1 + c(iii)ax + by = a2 + b2(iv) (a - b) x + (a + b) y = a2- 2ab - b2(a + b) (x + y) = a2 + b2(v) 152x - 378y = - 74
- 378x + 152y = - 604
Answer:
(i)px + qy = p - q … (1)
qx - py = p + q … (2)
Multiplying equation (1) byp and equation (2) by q, we obtainp2x + pqy = p2 - pq … (3)q2x - pqy = pq + q2 … (4)
Adding equations (3) and (4), we obtainp2x + q2 x = p2 + q2(p2 + q2) x = p2 + q2From equation (1), we obtainp (1) + qy = p - q
qy= - q
y= - 1
(ii)ax + by = c … (1)bx + ay = 1 + c … (2)
Multiplying equation (1) bya and equation (2) by b, we obtaina2x + aby = ac … (3)b2x + aby = b + bc … (4)
Subtracting equation (4) from equation (3),
(a2 - b2) x = ac - bc - bFrom equation (1), we obtainax + by = c
(iii)
Or,bx - ay = 0 … (1)ax + by = a2 + b2 … (2)
Multiplying equation (1) and (2) byb and a respectively, we obtainb2x - aby = 0 … (3)a2x + aby = a3 + ab2 … (4)
Adding equations (3) and (4), we obtainb2x + a2x = a3 + ab2x (b2 + a2) = a (a2 + b2)x = aBy using (1), we obtainb (a) - ay = 0ab - ay = 0ay = ab
y= b
(iv) (a - b) x + (a + b) y = a2- 2ab - b2 … (1)
(a + b) (x + y) = a2 + b2(a + b) x + (a + b) y = a2 + b2 … (2)
Subtracting equation (2) from (1), we obtain
(a - b) x - (a + b) x = (a2 - 2ab - b2) - (a2 + b2)
(a - b - a - b) x = - 2ab - 2b2- 2bx = - 2b (a + b)x = a + bUsing equation (1), we obtain
(a - b) (a + b) + (a + b) y = a2 - 2ab - b2a2 - b2 + (a + b) y = a2- 2ab - b2(a + b) y = - 2ab(v) 152x - 378y = - 74
76x - 189y = - 37
… (1)
- 378x + 152y = - 604
- 189x + 76y = - 302 … (2)
Substituting the value ofx in equation (2), we obtain
- (189)2 y + 189 × 37 + (76)2 y = - 302 × 76
189 × 37 + 302 × 76 = (189)2 y - (76)2 y6993 + 22952 = (189 - 76) (189 + 76) y29945 = (113) (265) y
y= 1
From equation (1), we obtain
Question 8:ABCD is a cyclic quadrilateral finds the angles of the cyclic quadrilateral.
Answer:
We know that the sum of the measures of opposite angles in a cyclic quadrilateral is
180°.
Therefore,∠ A + ∠ C = 180
4y + 20 - 4x = 180
- 4x + 4y = 160x - y = - 40 (i)
Also,∠ B + ∠ D = 180
3y - 5 - 7x + 5 = 180
- 7x + 3y = 180 (ii)
Multiplying equation (i) by 3, we obtain
3x - 3y = - 120 (iii)
Adding equations (ii) and (iii), we obtain
- 7x + 3x = 180 - 120
- 4x = 60
x = -15
By using equation (i), we obtainx - y = - 40
-15 -y = - 40y = -15 + 40 = 25∠ A = 4y + 20 = 4(25) + 20 = 120°∠ B = 3y - 5 = 3(25) - 5 = 70°∠ C = - 4x = - 4(- 15) = 60°∠ D = - 7x + 5 = - 7(-15) + 5 = 110°
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