ICSE Solutions for Selina Concise Chapter 9 Triangles Class 9 Maths
Exercise 9(A)
1. Which of the following pairs of triangles are congruent? In each case, state the condition of congruency:(a) In ΔABC and ΔDEF, AB = DE, BC = EF and B = E.
(b) In ΔABC and ΔDEF, B = E = 90o; AC = DF and BC = EF.
(c) In ΔABC and Δ QRP, AB = QR, B = R and C = P.
(d) In ΔABC and Δ PQR, AB = PQ, AC = PR and BC = QR.
(e) In ΔADC and Δ PQRΔ, BC = QR, A = 90o, C = R = 40o and Q = 50o.
( f) In Triangle ABC and Triangle BCD, ∠ABC = ∠DCB (each = 90°) and ∠A =40°
Answer(a)
In ⧍ABC and ⧍DEF
AB = DE [Given]
∠B = ∠E [Given]
BC = EF [Given]
By Side - Angle - Side criterion of congruency, the triangles ⧍ABC and ⧍DEF are congruent to each other .
∴ ∆ABC ≅ DEF
(b)
In ∆ABC and ∆DEF
∠B = ∠E = 90°
Hyp. AC = Hyp.DF
BC = EF
By Right Angle – Hypotenuse – Side criterion of congruency, the triangles ∆ABC and ∆DEF are congruent to each other.
∴ ∆ABC ≅ ∆DEF
(c)
In ∆ABC and ∆QRP
∠B =∠R [Given]
∠C = ∠P [Given]
AB = QR [Given]
By Angle – Angle – Side criterion of congruency, the triangles ∆ABC and ∆QRP are congruent to each other.
∴ ∆ABC ≅ ∆QRP
(d)
In ∆ABC and ∆PQR
AB = PQ [Given]
AC = PR [Given]
BC = QR [Given]
By Side – Side – Side criterion of congruency, the triangles ∆ ABC and ∆PQR are congruent to each other.
∴ ∆ABC ≅ ∆PQR
(e)
In ∆PQR
∠R = 40°, ∠Q = 50°
∠P +∠Q+∠R = 180° [Sum of all the angles in a triangle = 180°]
⇒ ∠P +50° + 40° = 180°
⇒ ∠P + 90° = 180°
⇒ ∠P = 180°−90°
⇒ ∠P = 90°
In ∆ ABC and ∆ PQR
∠ A = ∠P
∠C = ∠R
BC =QR
By Angel –Angel –Side criterion of congruency, the triangles ∆ABC and ∆PQR are congruent to each other.
∴ ∆ABC ≅ ∆PQR
(f)
In ∆ABC and ∆DCB
∠ABC = ∠DCB (each = 90°)
Hyp. AC = Hyp. BD
side BC = Side BC (common)
∴ ∆ABC ≅ ∆DCB (R.H.S. axiom of congruency)
Show that OP is perpendicular to AB
AnswerGiven : In the figure, O is centre of the circle, and AB is chord. P is a point of AB such that AP = PB.
We need to prove that, OP⟂AB
Proof:
In △OAP and △OBP
OA = OB [radii of the same circle]
OP = OP [common]
AP = PB [given]
∴ By Side - Side - Side criterion of congruency,
△OAP ≅ △OBP
The corresponding parts of the congruent triangles are congruent.
∴ ∠OPA = ∠OPB [by c.p.c.t]
But ∠OPA + ∠OPB = 180° [linear pair]
∴ ∠OPA = ∠OPB = 90°
Hence OP ⟂ AB
3. The following figure shows a circle with centre O.
If OP is perpendicular to AB, prove that AP = BP.
AnswerGiven: In the figure, O is centre of the circle, and AB is chord. P is a point of AB uch that AP = PB.
we need to prove that , AP = BP
Construction : Join OA and OB
Proof :
In right triangles △OAP and △OBP
Hypotenuse OA = OB [radii of the same circle]
Side OP =OP [common]
∴ By Right Angle -Hypotenuse -Side criterion of congruency,
△OAP ≅ △OBP
The corresponding parts of the congruent triangles are congruent.
∴ AP = BP [by c.p.c.t]
Hence, proved.
4. In a triangle ABC, D is mid-point of BC; AD is produced upto E so that DE = AD. Prove that:
(i) ABD and ECD are congruent.
(ii) AB = CE.
(iii) AB is parallel to EC.
AnswerGiven : A △ABC in which D is the mid - point of BC.
AD is produced to E so that DE = AD
We need to prove that
(i) △ABD ≅ △ECD
(ii) AB = EC
(iii) AB ∥ EC
BD = DC [D is the midpoint of BC]
∠ADB = ∠CDE [vertically opposite angles]
AD = DE [Given]
∴ By Side - Angle - Side criterion of congruence, we have,
△ABD ≅ △ECD
(ii) The corresponding parts of the congruent triangles are congruent.
∴ AB = EC [c.p.c.t]
(iii) Also, ∠DAB = ∠DEC [c.p.c.t]
AB ∥ EC [∠DAB and ∠DEC are alternate angles]
Prove that:
(i) The perpendiculars from the mid-point of BC to AB and AC are equal.
(ii) The perpendiculars form B and C to the opposite sides are equal.
Answer(i) Given: A △ABC in which ∠B = ∠C.
DL is the perpendicular from D to AB
DM is the perpendicular from D to AC
We need to prove that
DL = DM
Proof:
In △DLB and △DMC
∠DLB = ∠DMC = 90° [DL ⟂AB and DM ⟂ AC]
∠B = ∠C [Given]
BD = DC [D is the midpoint of BC]
∴ By Angle - Angle - Side criterion of congruence,
△DLB ≅ △DMC
The corresponding parts of the congruent triangles are congruent.
∴ DL = DM [c.p.c.t]
(ii) Given : A △ABC in which ∠B = ∠C .
BP is the perpendicular from D to AC
CQ is the perpendicular from C to AB
We need to prove that
BP = CQ
Proof :
In △BPC and △CQB
∠B = ∠C [Given]
∠BPC = ∠CQB = 90° [BP ⟂ AC and CQ⟂AB]
BC = BC [Common]
∴ By Angle - Angle - Side criterion of congruence,
△BPC ≅ △CQB
The corresponding parts of the congruent triangles are congruent.
∴ BP = CQ [c.p.c.t]
Prove that: IA = IB = IC.
AnswerGiven : A △ABC in which AD is the perpendicular bisector of BC
BE is the perpendicular bisector of CA
CF is the perpendicular bisector of AB
AD, BE and CF meet at I
We need to prove that
IA = IB = IC
Proof :
In △BID and △CID
BD = DC [Given]
∠BDI = ∠CDI = 90° [AD is the perpendicular bisector of BC]
BC = BC [Common]
∴ By Side - Angle - Side criterion of congruence,
△BID ≅ △CID
The corresponding parts of the congruent triangles are congruent.
∴ IB = IC [c.p.c.t]
Similarly,
In △CIE and △AIE
CE = AE [Given]
∠CEI = ∠AEI = 90° [AD is the perpendicular bisector of BC]
IE = IE [Common]
∴ By Side - Angle - Side criterion of congruence,
△CEI ≅ △AIE
The corresponding parts of the congruent triangles are congruent.
∴ IC = IA [c.p.c.t]
Thus, IA = IB = IC
Given : A △ABC in which AB is bisected at P
PQ is perpendicular to AB
QA = QB
Proof :
In △APQ and △BPQ
AP = PB [P is the mid - point of AB]
∠APQ = ∠BPQ = 90° [PQ is perpendicular to AB]
PQ = PQ [Common]
∴ By Side - Angle - Side criterion of congruence,
△APQ ≅ △BPQ
The corresponding parts of the congruent triangles are congruent.
∴ QA = QB [c.p.c.t]
8. If AP bisects angle BAC and M is any point on AP, prove that the perpendiculars drawn from M to AB and AC are equal. Answer
From M, draw ML such that ML is perpendicular to AB and MN is perpendicular to AC
∠LAM=∠MAN [AP is the bisector of ∠BAC]
∠ALM=∠ANM=90° [ML ⟂ AB, MN⟂ AC]
AM = AM [Common]
∴ By Angle-Angle-Side criterion of congruence,
△ALM = △ANM
The corresponding parts of the congruent triangles are congruent.
Hence proved.
Prove that:
(i) DCE LBE
(ii) AB = BL.
(iii) AL = 2DC
AnswerGiven: ABCD is a parallelogram in which E is the mid-point of BC.
We need to prove that
(i) ADCE =JLBE
(ii) AB = BL
(iii) AL = 2DC
(i) In △DCE and △LBE
∠DCE = ∠EBL [DC ||AB, alternate angles]
CE=EB [E is the midpoint of BC]
∠DEC= ∠LEB [vertically opposite angles]
By Angle-Side-Angle criterion of congruence, we have,
△DCE = △LBE
The corresponding parts of the congruent triangles are congruent.
DC = LB [c.p.c.t] ...(1)
(ii) DC=AB [opposite sides of a parallelogram]...(2)
From (1) and (2),
AB=BL ...(3)
(iii) AL = AB+BL ...(4)
From (3) and (4),
AL=AB+AB
AL = 2AB
AL = 2DC [from (2)]
If ∠ABD = 58o,
∠DBC = (2x – 4)o,
∠ACB = y + 15o and
∠DCB = 63o ; find the values of x and y.
AnswerGiven: In the figure, AB=DB, AC=DC, ∠ABD=58°,
∠DBC=(2x- 4)°, ∠ACB = (y +15)° and ∠DCB= (63°)
We need to find the values of x and y.
In △ABC and △DBC
AB = DB [given]
AC=DC [given]
BC = BC [common]
∴ By Side-Side-Side criterion of congruence, we have,
△ABC = △DBC
The corresponding parts of the congruent triangles are congruent.
∠ACB=∠DCB [c.p.c.t]
⇒ y° + 15°=63°
⇒ y°=63° - 15°
⇒ y°=48°
and ∠ABC =∠DBC [c.p.c.t]
But, ∠DBC = (2x - 4)°
We have ∠ABC+∠DBC=∠ABD
⇒ (2x - 4)° + (2x - 4)° = 58°
⇒ 4x - 8° = 58°
⇒ 4x = 58° + 8°
⇒ 4x = 66°
⇒ x = 66°/4
⇒ x = 16.5°
Thus the values of x and y are :
x = 16.5° and y = 48°
(i) BG = DF
(ii) CF = EG
AnswerIn the given figure AB ∥ FD,
⇒ ∠ABC =∠FDC
Also, AC ∥ GE,
⇒ ∠ACB=∠GEB
Consider the two triangles △GBE and △FDC
∠B=∠D
∠C=∠E
Also given that
BD = CE
⇒ BD+DE=CE+DE
⇒ BE = DC
By Angle - Side - Angle criterian of congruence
△GBE ≅ △FDC
GB/FD = BE/DC = GE/FC
But BE =DC
⇒ BE/DC = BE/BE = 1
GB/FD = BE/DC = 1
⇒ GB = FD
GE/FC = BE/DC
⇒ GE = FC
AB = AC (Since △ABC is an isosceles triangle)
AD = AD (common side)
∠ADB = ∠ADC (Since AD is the altitude so each is 90°)
⇒ △ADB ≅ △ADC (RHS congruence criterion)
BD = DC (c.p.c.t)
⇒ AD is the median.
Prove that AD is a median of triangle ABC.
AnswerBL = CM (given)
∠DLB = ∠DMC (Both are 90°)
∠BDL = ∠CDM (vertically opposite angles)
∴△DLB ≅△DMC (AAS congruence criterion)
BD = CD (c.p.c.t)
Hence, AD is the median of LABC.
Prove that :
(i) BD = CD
(ii) ED = EF
Answer(i) In △ADB and △ADC,
∠ADB = ∠ADC (Since AD is perpendicular to BC)
AB = AC (given)
AD = AD (common side)
∴ △ADB ≅ △ADC (RHS congruence criterion)
⇒ BD = CD (cpct)
(ii) In △EFB and △EDB,
∠EFB = ∠EDB (both are 90°)
EB = EB (common side)
∠FBE = ∠DBE (given)
∴ △EFB ≅ △EDB (PAS congruence criterion)
⇒ EF = ED (cpct)
that is, ED = EF.
(i) AB = FE
(ii) BD = CF
AnswerIn △ABC and AEFD,
AB ∥ EF ⇒ ∠ABC = ∠EFD (alternate angles)
AC = ED (given)
∠ACB = ∠EDF (given)
∴ △ABC ≅ △EFD (AAS congruence criterion)
⇒ AB = FE (c.p.c.t)
and BC = DF (c.p.c.t)
BD + DC = CF+ DC (B-D -C-F)
BD = CF
Exercise 9(B)
Prove that: (i) CAD = BAE (ii) CD = BE.
AnswerGiven : △ABD is an equilateral triangle
△ACE is an equilateral triangle
We need to prove that
(i) ∠CAD = ∠BAE
(ii) CD = BE
Proof :
(i)
△ABD is equilateral
∴ Each angle = 60°
⇒ ∠BAD = 60° ....(1)
Similarly,
△ACE is equilateral
∴ Each angle = 60°
⇒ ∠CAE = 60° ....(2)
⇒ ∠BAD = ∠CAE [from (1) and (2)] ....(3)
Adding ∠BAC to both sides, we have
∠BAD + ∠BAC = ∠CAE + ∠BAC
⇒ ∠CAD = ∠BAE ....(4)
AC = AE [△ACE is equilateral]
∠CAD = ∠BAE [from (4)]
AD = AB [△ABD is equilateral]
∴ By Side - Angle- Side criterion of congruency,
△CAD ≅ △BAE
The corresponding parts of the congruent triangles are congruent.
∴ CD = BE [by c.p.c.t]
Hence, proved.
In each case,
(i) Prove that: .ΔAPD = Δ BPC
(ii) Find the angles of .Δ DPC
AnswerGiven: ABCD is a square and △APB is an equilateral triangle.
We need to
(i) Prove that, △APD ≅ △BPC
(ii) To find angles of △DPC
(i) Proof :
AP = PB = AB [△APB is an equilateral triangle]
Also, we have,
∠PBA = ∠PAB =∠APB = 60° ...(i)
Since ABCD is a square, we have
∠A = ∠B =∠C =∠D = 90° ....(2)
Since,
⇒ ∠DAP = 90°- 60°
⇒ ∠DAP = 30° [from (1) and (2)] ...(4)
Similarly,
⇒ ∠CBP = 90° - 60°
⇒ ∠DAP = ∠CBP [from (4) and (5)] ...(6)
In △APD and △BPC
AD = BC [Sides of square ABCD]
∠DAP = ∠CBP [from (6)]
AP = BP [Sides of equilateral △APB]
∴ By Side - Angle - Side criterion of congruence, we have,
△APD ≅ △BPC
AB = BC = CD = DA [Sides of square ABCD]....(8)
From (7) and (8), we have
AP = DA and PB = BC ...(9)
In △APD,
AP = DA [from (9)]
∴ ∠ADP = ∠APD [Angles opposite to equal sides are equal]...(10)
∠ADP + ∠APD +∠DAP = 180° [Sum of angles of a triangle = 180°]
⇒∠ADP + ∠ADP + 30° = 180° [from (3), ∠DAP = 30° from (10), ∠ADP = ∠APD]
⇒ ∠ADP + ∠APD = 180° - 30°
⇒ ∠ADP = 150°/2
⇒ ∠ADP = 75°
We have,
⇒ ∠PDC = 90° - 75°
⇒ ∠PDC = 15° ...(11)
In △BPC,
PB = BC [from (9)]
∴ ∠PCB = ∠BPC [Angles opposite to equal sides are equal] ...(12)
∠PCB + ∠BPC + ∠CBP = 180° [Sum of angles of a triangle = 180°]
⇒ ∠PCB + ∠PCB + 30° = 180° [from (5), ∠CBP = 30° from (12), ∠PCB = ∠BPC]
⇒ 2∠PCB = 180° - 30°
⇒ ∠PCB = 150°/2
⇒ ∠PCB = 75°
We have,
⇒ ∠PCD = 90° - 75°
In △BPC,
PB = BC [from (9)]
∴ ∠PCB = ∠BPC [Angles opposite to equal sides are equal] ...(12)
∠PCB + ∠BPC + ∠CBP = 180° [Sum of angles of a triangle = 180°]
⇒ ∠PCB+∠PCB + 30° = 180° [from (5), ∠CBP = 30° and from (12) ∠PCB = ∠BPC]
⇒ 2∠PCB = 180° - 30°
⇒ ∠PCB = 150°/2
⇒ ∠PCB = 75°
We have,
⇒ ∠PCD = 90° - 75° = 15° ...(13)
In △DPC,
∠PDC = 15°
∠PCD = 15°
∠PCD + ∠PDC + ∠DPC = 180° [Sum of angles of a triangle = 180°]
⇒ 15° +15° + ∠DPC = 180°
⇒ ∠DPC =150°
∴ Angles of △DPC, are : 15°, 150°, 15°
AP = PB = AB [△APB is an equilateral triangle]
Also, we have,
∠PBA = ∠PAB = ∠APB = 60° ...(1)
Since ABCD is a square, we have
∠A = ∠B =∠C = ∠D = 90° ....(2)
Since ∠DAP = ∠A + ∠PAB ...(3)
⇒ ∠DAP = 90° + 60°
⇒ ∠DAP = 150° [from (1) and (2)] ...(4)
⇒ ∠CBP = 90° + 60°)
⇒ ∠DAP = ∠CBP [from (4) and (5)] ....(6)
In △APD and △BPC
AD = BC [Sides of square ABCD]
∠DAP = ∠CBP [from (6)]
AP = BP [Sides of equilateral △APB]
∴ By Side - Angle - Side criterion of congruence, we have,
△APD ≅ △BPC
AB = BC = CD = DA [Sides of square ABCD]...(8)
From (7) and (8), we have
AP = DA and PB = BC ...(9)
In △APD,
AP = DA [from (9)]
∴ ∠ADP = ∠APD [Angles opposite to equal sides are equal] ...(10)
∠ADP + ∠APD + ∠DAP = 180° [Sum of angles of a triangle = 180°]
⇒∠ADP + ∠ADP + 150° = 180° [from (3),∠DAP =150° and from(10), ∠ADP= ∠APD]
⇒∠ADP = 30°/2 = 15°
We have,
⇒∠PDC = 90° - 15°
⇒∠PDC = 75° ....(11)
In △BPC,
PB = BC [from (9)]
∴ ∠PCB = ∠BPC [ Angles opposite to equal sides are equal] ...(12)
∠PCB +∠BPC + ∠CBP = 180° [Sum of angles of a triangle = 180°]
⇒ ∠PCB +∠PCB + 150° = 180° [from (5),∠CBP =150° and from (12) ∠PCB=∠BPC]
⇒ ∠PCB =30°/2
We have ∠PCD = ∠C - ∠PCB
⇒ ∠PCD = 75° ...(13)
In △DPC,
∠PDC = 75°
∠PCD = 75°
∠PCD + ∠PDC + ∠DPC = 180° [Sum of angles of a triangle = 180°]
⇒75° + 75° + ∠DPC = 180°
3. In the figure, given below, triangle ABC is right-angled at B. ABPQ and ACRS are squares.
(i) ΔACQ and ΔASB are congruent.
(ii) CQ = BS
AnswerGiven : A △ABC is right angled at B.
ABPQ and ACRS are squares
We need to prove that
(i) △ACQ ≅ △ASB
(ii) CQ = BS
Proof :
(i)
∠QAB =90° [ABPQ is a square] ...(1)
∠SAC = 90° [ACRS is a square] ...(2)
From (1) and (2), we have
∠QAB = ∠SAC ...(3)
Adding ∠BAC to both sides of (3), we have
∠QAB +∠BAC = ∠SAC + ∠BAC
⇒ ∠ QAC = ∠SAB ...(4)
In △ACQ and △ASB,
QA = QB [sides of a square ABPQ]
∠QAC = ∠SAB [from (4)]
AC = AS [Sides of a square ACRS]
∴ By Angle - Angle - Side criterion of congruence,
△ACQ ≅ △ASB
(ii) The corresponding parts of the congruent triangles are congruent.
∴ CQ = BS [c.p.c.t]
Given: A △ABC in which BD is the median to AC.
BD is produced to E such that BD = DE.
We need to prove that AE ∥ BC.
Construction: Join AE
Proof :
AD = DC [BD is median to AC] ...(1)
In △BDC and △ADE
BD = DE [Given]
∠BDC = ∠ADE = 90° [vertically opposite angles]
AD = DC [from (1)]
∴ By Side - Angle - Side criterion of congruence,
△BDC ≅ △ADE
The corresponding parts of the congruent triangles are congruent.
∴ ∠EAD = ∠BCD [c.p.c.t]
But these are alternate angles and AC is the transversal thus, AE∥BC.
If XS ⟂ QR and XT ⟂ PQ ; prove that:
(i) △XTQ ≅ △XSQ
(ii) PX bisects angle P.
AnswerGiven: A △PQR in which QX is the bisector of ∠Q and RX is the bisector of ∠R.
XS ⟂ QR and XT ⟂PQ .
We need to prove that
(i) △XTQ ≅ △XSQ
(ii) PX bisects ∠P
Construction: Draw XZ ⟂PR and join PX.
Proof:
(i) In △XTQ and △XSQ
∠QTX = ∠QSX = 90° [XS ⟂ QR and XT ⟂PQ ]
∠TQX = ∠SQX [QX is bisector of ∠Q]
QX = QX [Common]
∴ By Angle - Angle - Side criterion of congruence,
△XTQ≅△XSQ ...(1)
∴ XT =XS [c.p.c.t]
In △XSR and △XZR
∠XSR = ∠XZR = 90° [ XS ⟂ QR and ∠XSR = 90°]
∠SRX = ∠ZRX [RX is bisector of ∠R]
RX = RX [Common]
∴ By Angle - Angle - Side criterion of congruence,
△XSR ≅ △XZR
The corresponding parts of the congruent triangles are congruent.
∴ XS = XZ [c.p.c.t]...(2)
From (1) and (2)
XT = XZ ...(3)
In △XTP and △XZP
∠XTP = ∠XZP = 90° [Given]
Hyp. XP = Hyp. XP [Common]
XT = XZ [from (3)]
∴ By Right Angle - Hypotenuse - Side criterion of congruence,
△XTP ≅△XZP
The corresponding parts of the congruent triangles are congruent.
∴ ∠XPT = ∠XPZ [c.p.c.t]
∴ PX bisects ∠P
Prove that: XA = YC.
AnswerABCD is a parallelogram in which ∠A and ∠C are obtuse.
Points X and Y are taken on the diagonal BD
such that ∠XAD = ∠YCB = 90°
We need to prove that XA = YC
Proof :
In △XAD and △YCB
∠XAD = ∠YCB = 90° [Given]
AD = BC [Opposite sides of a parallelogram]
∠ADX = ∠CBY [ Alternate angles]
∴By Angle - Side- Angle criterion of congruence,
△XAD ≅ △YCB
The corresponding parts of the congruent triangles are congruent.
∴ XA = YC [c.p.c.t]
Hence, proved.
Prove that: Δ BEC=Δ DCF.
AnswerABCD is a parallelogram. The sides AB and AD are produced to E and F respectively, Such that AB = BE and AD = DF.
We need to prove that △BEC ≅ △DCF
Proof :
AB = DC [Opposite sides of a parallelogram ] ...(1)
AB = BE [Given] ...(2)
From (1) and (2), we have
BE = DC ...(3)
AD = BC [Opposite sides of a parallelogram] ...(4)
AD = DF [Given] ...(5)
From (4) and (5), we have
BC = DF ....(6)
Since AD ∥ BC, the corresponding angles are equal.
∴ ∠DAB = ∠CBE ...(7)
Since AB ∥ DC, the corresponding angles are equal.
∴ ∠DAB = ∠FDC ....(8)
From (7) and (8), we have
∠CBE = ∠FDC ...(9)
In △BEC and △DCF
BE = DC [from (3)]
∠CBE = ∠FDC [from (9)]
BC = DF [from (6)]
∴ By Side - Angle - Side criterion of congruence,
△BEC ≅ △DCF
Hence, proved.
Since, BC = QR, we have
BD = QS and DC = SR [D is the midpoint of BC and S is the midpoint of QR]
In △ABD and △PQS
AB = PQ ...(1)
AD = PS ...(2)
BD = QS ...(3)
Thus, by Side - Side - Side criterion of congruence,
We have △ABD ≅ △PQS
Similarly, in △ADC and △PSR
AD = PS ...(4)
AC = PR ...(5)
DC = SR ...(6)
Thus, by Side - Side - Side criterion of congruence,
we have △ADC ≅ △PSR
We have
BC = BD + DC [D is the midpoint of BC]
= QS + SR [from (3) and (6)]
= QR [S is the midpoint of QR ] ...(7)
Now consider the triangles △ABC and △PQR
AB = PQ [from (1)]
BC = QR [from (7)]
AC = PR [from (7)]
∴ By Side - Side - Side criterion of congruence, we have
△ABC ≅ △PQR
Hence, proved.
Prove that:
(i) △AOP ≅ △BOQ
(ii) AB and PQ bisect each other.
AnswerIn the figure, AP and BQ are equal and parallel to each other ,
∴ AP = BQ and AP ∥ BQ .
We need to prove that
(i) △AOP ≅ △BOQ
(ii) AB and PQ bisect each other
Proof:
(i) ∵ AP ∥ BQ
∴ ∠APO = ∠BQO [Alternate angles]...(1)
and ∠PAO = ∠QBO [Alternate angles]...(2)
Now in △AOP and △BOQ,
∠APO = ∠BQO [from (1)]
AP = BQ [Given]
∠PAO = ∠QBO [from (2)]
∴ By Angle - Side - Angle criterion of congruence, we have
△AOP ≅ △BOQ
(ii) The corresponding parts of the congruent triangles are congruent.
∴ OP = OQ [c.p.c.t]
OA = OB [c.p.c.t]
Hence AB and PQ bisect each other.
Prove that:
(i) AOB = 90o
(ii) triangle AOD =triangle COD
(iii) AD = CD
AnswerIn the figure, OA = OC, AB = BC
We need to prove that,
(i) ∠AOB = 90°
(ii) △AOD ≅ △COD
(iii) AD = CD
AB = BC [Given]
AO = CO [Given]
OB = OB [Common]
∴ By Side - Side - Side criterion of congruence, we have
△ABO ≅ △CBO
∴ ∠ABO = ∠CBO [c.p.c.t]
⇒ ∠ABD = ∠CBD
and, ∠AOB = ∠COB [c.p.c.t]
We have
∠AOB + ∠COB = 180° [Linear pair]
⇒ ∠AOB = ∠COB = 90° and AC ⟂BD
OD = OD [Common]
∠AOD = ∠COD [each = 90°]
AO = CO [given]
∴ By Side - Angle - Side criterion of congruence, we have
∴ AD = CD [c.p.c.t]
Hence, proved.
Prove that:
(i) AM = AN
(ii)triangle AMC = triangle ANB
(iii) BN = CM
(iv) triangle BMC = triangle CNB
AnswerIn △ABC, AB = AC. M and N are points on AB and AC such that BM = CN.
BN and CM are joined.
(i) In △AMC and △ANB
AB = AC [Given]...(1)
BM = CN [Given] ...(2)
Subtracting (2) from (1), we have
AB - BM = AC - CN
⇒ AM = AN ...(3)
AC = AB [Given]
∠A = ∠A [common]
AM = AN [from (3)]
∴ By Side - Angle - Side criterion of congruence, we have
(ii) The corresponding parts of the congruent triangles are congruent.
∴ CM = BN [c.p.c.t] ...(4)
BM = CN [given]
BC = BC [common]
CM = BN [from (4)]
∴ By Side - Side - Side criterion of congruence, we have
12. In a triangle ABC, AB = BC, AD is perpendicular to side BC and CE is perpendicular to side AB. Prove that : AD = CE.
AB = BC (given)
∠ADB = ∠CEB = 90°
∠B = ∠B (common angle)
∴ △ABD ≅ △CBE (by SAS congruence)
⇒ AD = CE (c.p.c.t)
13. PQRS is a parallelogram. L and M are points on PQ and SR respectively such that PL= MR. Show that LM and QS bisect each other.
To prove: SP = PQ and MP = PL
Proof:
Since SR and PQ are opposite sides of a parallelogram,
PQ = SR ...(1)
Also, PL = RM ...(2)
Subtracting (2) from (1),
PQ - PL = SR - RM
⇒ LQ = SM ....(3)
Now, in △ASM and △QLP,
∠MSP = ∠PQL (alternate interior angles)
∠SMP = ∠PLQ (alternate interior angles)
∴ △SMP ≅ △QLP (by ASA congruence)
⇒ SP = PQ and MP = PL (c.p.c.t)
⇒ LM and QS bisect each other.
Prove that QR bisects PC.
Hint: (Show that ∆QBP is equilateral ⇒ BP = PQ, but BP = CR ⇒ PQ = CR ⇒ ∆ QPM ≅ ∆ RCM)
Answer△ABC is an equilateral triangle.
So, each of its angles equals 60° .
QP is parallel to AC,
⇒ ∠PQB = ∠RAQ = 60°
In △QBP,
∠PBQ = ∠BQP = 60°
So, ∠PBQ + ∠BQP +∠BPQ = 180° (angle sum property)
⇒ 60° + 60° +∠BPQ = 180°
⇒ ∠BPQ = 60°
So, △BPQ is an equilateral triangle.
⇒QP = BP
⇒QP = CR ...(i)
Now, ∠QPM + ∠BPQ = 180° (linear pair)
⇒∠QPM +60° = 180°
⇒∠QPM = 120°
Also, ∠RCM + ∠ACB = 180° (linear pair)
⇒∠RCM +60° = 180°
⇒∠RCM = 120°
In △RCM and △QMP,
∠RCM = ∠QPM (each is 120°)
∠RMC = ∠QMP (vertically opposite angles)
QP = CR [(from (i)]
⇒ △RCM ≅ △QMP (AAS congruence criterion)
So, CM = PM
⇒ QR bisects PC.
In triangles AOE and COD,
∠A = ∠C (Given)
∠AOE = ∠COD (vertically opposite angles)
∴ ∠A + ∠AOE = ∠C + ∠COD
⇒ 180° - ∠AEO = 180° - ∠CDO
⇒ ∠AEO = ∠CDO ...(i)
Now,
And, ∠CDO + ∠ODB = 180° (linear pair)
∴ ∠AEO + ∠OEB =∠CDO + ∠ODB
⇒ ∠OEB = ∠ODB [using (i)]
Now, in △ABD and △CBE,
∠A =∠C (given)
∠ADB = ∠CEB [From (ii)]
AB = BC (given)
⇒ △ABD ≅ △CBE (by AAS congruence criterion)
In △AOD and △BOC,
∠AOD = ∠BOC (vertically opposite angles)
∠DAO = ∠CBO (each 90°)
AD = BC (given)
∴ △AOD ≅ △BOC (by AAS congruence criterion)
⇒ AO = BO [c.p.c.t]
⇒ O is the mid- point of AB.
Hence, CD bisects AB.
(i) BO = CO
(ii) AO bisects angle BAC.
Answer
In △ABC,
AB = AC
⇒ ∠B = ∠C (angles opposite to equal sides are equal)
⇒ (1/2)∠B = (1/2)∠C
⇒ ∠OBC = ∠OCB
⇒ OB = OC (Sides opposite to equal angles are equal)...(ii)
Now, in △ABO and △ACO,
AB = AC (given)
∠OBC = ∠OCB [From (i)]
OB = OC [From (ii)] (proved)
∴ △ABO ≅ △ACO (by SAS congruence criterion)
⇒ ∠BAO = ∠CAO (c.p.c.t)
⇒ AO bisects ∠BAC (proved)
Prove that AD = FC.
Answer
Given that, BC = DE
⇒ BC + CD = DE + CD (Adding CD on both sides)
⇒ BD = CE ...(i)
Now, in △ABD and △FEC,
AB = EF (given)
∠ABD = ∠FEC (Each 90°)
BD = CE [From (i)]
⇒ △ABD ≅ △FEC (by SAS congruence criterion)
⇒ AD = FC (c.p.c.t)
In △AOD and △AOB,
AD = AD (given)
AO = AO (common)
OD = OB (given)
⇒ △AOD ≅ △AOB (by SSS congruence criterion)
⇒ ∠AOD = ∠AOB (c.p.c.t)...(i)
Similarly, △DOC ≅ △BOC
⇒ ∠DOC = ∠BOC (c.p.c.t)...(ii)
But, ∠AOB + ∠AOD +∠COD + ∠BOC = 4 Right angles (Sum of the angles at a point is 4 Right angles)
⇒2∠AOD + 2∠COD = 4 Right angles [Using (i) and (ii)]
⇒ ∠AOD + ∠COD = 2 Right angles
⇒∠AOD + ∠COD = 180°
⇒ ∠AOD and ∠COD form a linear pair.
⇒AO and OC are in the same straight line.
⇒AOC is a straight line.
(i) ∠ADB = ∠BCA
(ii) ∠DAB = ∠CBA
Answer
In △ABD and △BAC,
AD = BC (given)
BD = CA (given)
AB = AB (common)
∴ △ABD ≅ △BAC (by SSS congruence criterion)
⇒ ∠ADB = ∠BCA and ∠DAB = ∠CBA (c.p.c.t)