NCERT Solutions Class 7th Maths Chapter – 6 The Triangle and its Properties
Textbook | NCERT |
Class | 7th |
Subject | Mathematics |
Chapter | 6th |
Chapter Name | The Triangle and its Properties |
Category | Class 7th Math Solutions |
Medium | English |
Source | Last Doubt |
NCERT Solutions Class 7th Math Chapter – 6 The Triangle and its Properties
Chapter – 6
The Triangle and its Properties
Exercise – 6.3
1. Find the value of the unknown x in the following diagrams: (i)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= ∠BAC + ∠ABC + ∠BCA = 180o
= x + 50o + 60o = 180o
= x + 110o = 180o
By transposing 110o from LHS to RHS it becomes – 110o
= x = 180o – 110o
= x = 70o |
(ii)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
The given triangle is a right angled triangle. So the ∠QPR is 90o.
Then,
= ∠QPR + ∠PQR + ∠PRQ = 180o
= 90o + 30o + x = 180o
= 120o + x = 180o
By transposing 110o from LHS to RHS it becomes – 110o
= x = 180o – 120o
= x = 60o |
(iii)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= ∠XYZ + ∠YXZ + ∠XZY = 180o
= 110o + 30o + x = 180o
= 140o + x = 180o
By transposing 140o from LHS to RHS it becomes – 140o
= x = 180o – 140o
= x = 40o |
(iv)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 50o + x + x = 180o
= 50o + 2x = 180o
By transposing 50o from LHS to RHS it becomes – 50o
= 2x = 180o – 50o
= 2x = 130o
= x = 130o/2
= x = 65o |
(v)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= x + x + x = 180o
= 3x = 180o
= x = 180o/3
= x = 60o
∴The given triangle is an equiangular triangle. |
(vi)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 90o + 2x + x = 180o
= 90o + 3x = 180o
By transposing 90o from LHS to RHS it becomes – 90o
= 3x = 180o – 90o
= 3x = 90o
= x = 90o/3
= x = 30o
Then,
= 2x = 2 × 30o = 60o |
2. Find the values of the unknowns x and y in the following diagrams: (i)
Solution: We Know That,
An exterior angle of a triangle is equal to the sum of its interior opposite angles.
Then,
= 50o + x = 120o
By transposing 50o from LHS to RHS it becomes – 50o
= x = 120o – 50o
= x = 70o
We also know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 50o + x + y = 180o
= 50o + 70o + y = 180o
= 120o + y = 180o
By transposing 120o from LHS to RHS it becomes – 120o
= y = 180o – 120o
= y = 60o |
(ii)
Solution: From the rule of vertically opposite angles,
= y = 80o
Then,
We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 50o + 80o + x = 180o
= 130o + x = 180o
By transposing 130o from LHS to RHS it becomes – 130o
= x = 180o – 130o
= x = 50o |
(iii)
Solution: We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 50o + 60o + y = 180o
= 110o + y = 180o
By transposing 110o from LHS to RHS it becomes – 110o
= y = 180o – 110o
= y = 70o
Now,
From the rule of linear pair,
= x + y = 180o
= x + 70o = 180o
By transposing 70o from LHS to RHS it becomes – 70o
= x = 180o – 70o
= x = 110o |
(iv)
Solution: From the rule of vertically opposite angles,
= x = 60o
Then,
We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= 30o + x + y = 180o
= 30o + 60o + y = 180o
= 90o + y = 180o
By transposing 90o from LHS to RHS it becomes – 90o
= y = 180o – 90o
= y = 90o |
(v)
Solution: From the rule of vertically opposite angles,
= y = 90o
Then,
We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= x + x + y = 180o
= 2x + 90o = 180o
By transposing 90o from LHS to RHS it becomes – 90o
= 2x = 180o – 90o
= 2x = 90o
= x = 90o/2
= x = 45o |
(vi)
Solution: From the rule of vertically opposite angles,
= x = y
Then,
We know that,
The sum of all the interior angles of a triangle is 180o.
Then,
= x + x + x = 180o
= 3x = 180o
= x = 180o/3
= x = 60o |
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