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Triangles and its Properties Ex-6.4

NCERT solutions for Maths Triangles and its Properties 

NCERT Solutions for Class 7 Maths Exercise 6.4

NCERT Solutions for Class 7 Maths Triangles and its Properties

Class –VII Mathematics (Ex. 6.4)
Question 1.Is it possible to have a triangle with the following sides?
  1. 2 cm, 3 cm, 5 cm
  2. 3 cm, 6 cm, 7 cm
  3. 6 cm, 3 cm, 2 cm

Answer:

Since, a triangle is possible whose sum of the lengths of any two sides would be greater than the length of third side.

(i) 2 cm, 3 cm, 5 cm

2 + 3 > 5 No

2 + 5 > 3 Yes

3 + 5 > 2 Yes

This triangle is not possible.

(ii) 3 cm, 6 cm, 7 cm

3 + 6 > 7 Yes

6 + 7 > 3 Yes

3 + 7 > 6 Yes

This triangle is possible.

(iii) 6 cm, 3 cm, 2 cm

6 + 3 > 2 Yes

6 + 2 > 3 Yes

2 + 3 > 6 No

This triangle is not possible.


NCERT Solutions for Class 7 Maths Exercise 6.4

Question 2.Take any point O in the interior of a triangle PQR. Is:

  1. OP + OQ > PQ ?
  2. OQ + OR > QR ?
  3. OR + OP > RP ?

Since sum of two sides is greater than third side.

Answer:

Join OR, OQ and OP.

(i) Is OP + OQ > PQ ?

Yes, POQ form a triangle.

(ii) Is OQ + OR > QR ?

Yes, RQO form a triangle.

(iii) Is OR + OP > RP ?

Yes, ROP form a triangle.


NCERT Solutions for Class 7 Maths Exercise 6.4

Question 3.AM is a median of a triangle ABC. Is AB + BC + CA > 2AM ?

(Consider the sides of triangles ABM and AMC.)

Answer:

Since, the sum of lengths of any two sides in a triangle should be greater than the length of third side.

Therefore, In Δ\DeltaABM, AB + BM > AM ……….(i)

In Δ\DeltaAMC, AC + MC > AM ……….(ii)

Adding eq. (i) and (ii),

AB + BM + AC + MC > AM + AM

\Rightarrow AB + AC + (BM + MC) > 2AM

\Rightarrow AB + AC + BC > 2AM

Hence, it is true.


NCERT Solutions for Class 7 Maths Exercise 6.4

Question 4.ABCD is a quadrilateral. Is AB + BC + CD + DA > AC + BD ?

Answer:

Since, the sum of lengths of any two sides in a triangle should be greater than the length of third side.

Therefore, In Δ\DeltaABC, AB + BC > AC ……….(i)

In Δ\DeltaADC, AD + DC > AC ……….(ii)

In Δ\DeltaDCB, DC + CB > DB ……….(iii)

In Δ\DeltaADB, AD + AB > DB ……….(iv)

Adding eq. (i), (ii), (iii) and (iv),

AB + BC + AD + DC + DC + CB + AD + AB > AC + AC + DB + DB

\Rightarrow (AB + AB) + (BC + BC) + (AD + AD) + (DC + DC) > 2AC + 2DB

\Rightarrow 2AB + 2BC + 2AD + 2DC > 2(AC + DB)

\Rightarrow 2(AB + BC + AD + DC) > 2(AC + DB)

\Rightarrow AB + BC + AD + DC > AC + DB

\Rightarrow AB + BC + CD + DA > AC + DB

Hence, it is true.


NCERT Solutions for Class 7 Maths Exercise 6.4

Question 5. ABCD is quadrilateral. Is AB + BC + CD + DA < 2 (AC + BD) ?

Answer:

Since, the sum of lengths of any two sides in a triangle should be greater than the length of third side.

Therefore, In Δ\DeltaAOB, AB < OA + OB ……….(i)

In Δ\DeltaBOC, BC < OB + OC ……….(ii)

In Δ\DeltaCOD, CD < OC + OD ……….(iii)

In Δ\DeltaAOD, DA < OD + OA ……….(iv)

Adding eq. (i), (ii), (iii) and (iv),

AB + BC + CD + DA < OA + OB + OB + OC + OC + OD + OD + OA

\Rightarrow AB + BC + CD + DA < 2OA + 2OB + 2OC + 2OD

\Rightarrow AB + BC + CD + DA < 2[(AO + OC) + (DO + OB)]

\Rightarrow AB + BC + CD + DA < 2(AC + BD)

Hence, it is proved.


NCERT Solutions for Class 7 Maths Exercise 6.4

Question 6.The lengths of two sides of a triangle are 12 cm and 15 cm. Between what two measures should the length of the third side fall?

Answer:

Since, the sum of lengths of any two sides in a triangle should be greater than the length of third side.

It is given that two sides of triangle are 12 cm and 15 cm.

Therefore, the third side should be less than 12 + 15 = 27 cm.

And also the third side cannot be less than the difference of the two sides.

Therefore, the third side has to be more than 15 – 12 = 3 cm.

Therefore, the third side could be the length more than 3 cm and less than 27 cm.


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