Let ABCD be a rectangle and let P,Q,R,S be the mid-points of AB, BC, CD, DA respectively. Prove that PQRS is a rhombus.
Answers
Answered by
5
Hii dear here is your solution....
This solution is verified ✅✅✅
Let us Joint AC & BD
In ∆ ABC
PQ|| AC and PQ = 1/2AC..(1) (Using mid point theorem)
In ∆ ADC
SR || AC , SR = 1/2 AC.......(2)( using mid point theorem)
From (1) &(2)
PQ || SR ,PQ =SR
Hence PQRS is ||gm
PS ||QR ,PS =QR (opposite sides of ||gm)....(3)
In ∆ BCD using mid point theorem
QR || BD and QR =1/2BD........(4)
and the diagonal of rectangle are equal
AC = BD...(5)
Using (1),(2),(3),(4),(5)
PQ = QR = RS=SP
Hence ,PQRS is rhombus.
Attachments:
RadhaG:
please mark my answer as a brainliest
Answered by
6
It is given that the points P , Q , R , S are the mid points of AB , BC , CD , DA respectively.
According to the statement :
• AP = BP = AB / 2
• AS = SD = AD / 2
• RD = RC = DC / 2
• BQ = QC = BC / 2
As the given quadrilateral is a rectangle, opposite sides should be equal.
Hence,
• AB = DC
From above,
= > AB / 2 = AP = BP = DC / 2 = RD = RC
= > AP = BP = RD = RC ---: ( 1 )
Also,
• AD = BC
From above,
= > AD / 2 = AS = SD = BC / 2 = BQ = QC
= > AS = SD = BQ = QC ---: ( 2 )
Now, by using Pythagoras Theorem :
In ∆ASP,
• SP² = AP² + AS²
In ∆BPQ,
• QP² = PB² + BQ²
From ( 1 ) & ( 2 ),
= > QP² = ( AP )² + ( AS )²
= > QP² = AP² + AS²
= > QP² = SP²
= > QP = SP
In ∆RDS,
• SR² = SD² + RD²
From ( 1 ) & ( 2 ),
= > SR² = AS² + AP²
= > SR² = SP²
= > SR = SP
In ∆RCQ,
• QR² = QC² + RC²
From ( 1 ) & ( 2 ),
= > QR² = AS² + AP²
= > QR² = SP²
= > QR = SP
Hence,
SR = SP = QR = QP
therefore,
All sides of the formed quadrilateral are equal.
Now, joining the P with D and S with Q,
As AS = BQ = SD = QC, AB || SQ || DC
And, AP = PB = RD = RC, AD || PR || BC
Hence,
Let the intersection of RP & QS be O,
As PB || QO, BQ || OP,
angle PBQ = 90° = angle BPO = angle OPQ,
And,
• angle POQ = angle SOR { vertically opposite angles }
Similarly,
• angle POS = angle QOR = 90°
Hence,
• PQ = PS = SR = RQ
• angle POQ = angle SOR = angle QOR = angle POS = 90°
Hence, the formula quadrilateral is a Rhombus.
According to the statement :
• AP = BP = AB / 2
• AS = SD = AD / 2
• RD = RC = DC / 2
• BQ = QC = BC / 2
As the given quadrilateral is a rectangle, opposite sides should be equal.
Hence,
• AB = DC
From above,
= > AB / 2 = AP = BP = DC / 2 = RD = RC
= > AP = BP = RD = RC ---: ( 1 )
Also,
• AD = BC
From above,
= > AD / 2 = AS = SD = BC / 2 = BQ = QC
= > AS = SD = BQ = QC ---: ( 2 )
Now, by using Pythagoras Theorem :
In ∆ASP,
• SP² = AP² + AS²
In ∆BPQ,
• QP² = PB² + BQ²
From ( 1 ) & ( 2 ),
= > QP² = ( AP )² + ( AS )²
= > QP² = AP² + AS²
= > QP² = SP²
= > QP = SP
In ∆RDS,
• SR² = SD² + RD²
From ( 1 ) & ( 2 ),
= > SR² = AS² + AP²
= > SR² = SP²
= > SR = SP
In ∆RCQ,
• QR² = QC² + RC²
From ( 1 ) & ( 2 ),
= > QR² = AS² + AP²
= > QR² = SP²
= > QR = SP
Hence,
SR = SP = QR = QP
therefore,
All sides of the formed quadrilateral are equal.
Now, joining the P with D and S with Q,
As AS = BQ = SD = QC, AB || SQ || DC
And, AP = PB = RD = RC, AD || PR || BC
Hence,
Let the intersection of RP & QS be O,
As PB || QO, BQ || OP,
angle PBQ = 90° = angle BPO = angle OPQ,
And,
• angle POQ = angle SOR { vertically opposite angles }
Similarly,
• angle POS = angle QOR = 90°
Hence,
• PQ = PS = SR = RQ
• angle POQ = angle SOR = angle QOR = angle POS = 90°
Hence, the formula quadrilateral is a Rhombus.
Similar questions