Mathematics
Answer
(i) Since, BDC is a straight line.
∴ ∠ADB + ∠ADC = 180°
⇒ ∠ADB + 90° = 180°
⇒ ∠ADB = 180° - 90° = 90°.
In △ ABD,
∠BAD and ∠ABD will be definitely less than 90° as sum of angles of triangle equals to 180°.
∴ ∠ADB > ∠BAD
∴ AB > BD [If two angles of a triangle are unequal, the greater angle has the greater side opposite to it.] ………..(1)
Hence, proved that AB > BD.
(ii) From figure,
⇒ ∠ADC = 90°.
In △ ADC,
∠DAC and ∠DCA will be definitely less than 90° as sum of angles of triangle equals to 180°.
∴ ∠ADC > ∠DAC
∴ AC > CD [If two angles of a triangle are unequal, the greater angle has the greater side opposite to it.] ………..(2)
Hence, proved that AC > CD.
(iii) Adding equations (1) and (2), we get :
⇒ AB + AC > BD + CD
⇒ AB + AC > BC.
Hence, proved that AB + AC > BC.
Related Questions
In the following figure, ∠BAC = 60° and ∠ABC = 65°. Prove that :
(i) CF > AF
(ii) DC > DF
In the following figure;
AC = CD; ∠BAD = 110° and ∠ACB = 74°.
Prove that : BC > CD.
In a quadrilateral ABCD; prove that :
(i) AB + BC + CD > DA
(ii) AB + BC + CD + DA > 2AC
(iii) AB + BC + CD + DA > 2BD
In the following figure, ABC is an equilateral triangle and P is any point in AC; prove that :
(i) BP > PA
(ii) BP > PC
