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Find the ratio in which the line 2x + 3y – 5 = 0 divides the line segment joining the points (8, –9) and (2, 1). Also find the coordinates of the point of division.

Solution
    

Section\, formula\left ( \frac{m_{1}x_{2}+m_{2}x_{1}}{m_{1}+m_{2}},\frac{m_{1}y_{2}+m_{2}y_{1}}{m_{1}+m_{2}} \right )

Let point p(x, y) divides the line segment joining the points A(8, –9) and B(2, 1) in ratio k : 1.
(x1, y1) = (8, -9)                       (x2, y2) = (2, 1)
m1 : m2 = k:1
using section formula we have
P\left ( x,y \right )= \left [ \frac{2k+8}{k+1},\frac{k-9}{k+1} \right ]
Given equation is 2x + 3y – 5 = 0       …(2)
Put values of x and y in eqn. (2)
2\left [ \frac{2k+8}{k+1} \right ]+3\left [ \frac{k-9}{k+1} \right ]-5= 0

2(2k + 3) + 3(k – 9) – 5(k + 1) = 0
4k + 16 + 3k – 27 – 5k – 5 = 0
2k – 16 = 0
k = 8
Hence, p divides the line in ration 8 : 1.
Put k = 5 in eqn. (1)
\left ( x,y \right )= \left [ \frac{2\left ( 8 \right )}{8+1},\frac{8-9}{8+1} \right ]
= \left ( \frac{16+8}{9},\frac{-1}{9} \right )= \left ( \frac{24}{9} ,\frac{-1}{9}\right )= \left ( \frac{8}{3},\frac{-1}{9} \right )
Required point is P\left ( \frac{8}{3} ,\frac{-1}{9}\right )

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Find the values of k if the points A(k + 1, 2k), B(3k, 2k + 3) and C (5k –1, 5k)are collinear.

Solution.     If points A(k + 1, 2k), B(3k, 2k + 3) and C(5k – 1, 5k) are collinear then area of triangle is equal to zero
\frac{1}{2}\left [ x_{1}\left ( y_{2}-y_{3} \right )+x_{2}\left ( y_{3}-y_{1} \right ) +x_{3}\left ( y_{1}-y_{2} \right )\right ]= 0
\left [ x_{1}\left ( y_{2}-y_{3} \right )+x_{2}\left ( y_{3}-y_{1} \right ) +x_{3}\left ( y_{1}-y_{2} \right )\right ]= 0
[(k + 1) (2k + 3 – 5k) + 3k(5k – 2k) + (5k – 1)(2k – 2k – 3)] = 0
[(k + 1) (3 – 3k) + 3k(3k) + 5(k – 1) (–3)] = 0
[3k – 3k2 + 3 – 3k + 9k2 – 15k + 3] = 0
6k2 – 15k + 6 = 0
6k2 – 12k – 3k + 6 = 0
6k(k – 2) – 3(k – 2) = 0
(k – 2)(6k – 3 )
k= 2,k= \frac{3}{6}
          = \frac{1}{2}
Hence, values of k are 2, 1/2

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Find the coordinates of the point R on the line segment joining the points P(–1, 3) and Q(2, 5) such that PR= \frac{3}{5}PQ

Solution
                 

section\, formula \left ( \frac{m_{1}x_{2}+m_{2}x_{1}}{m_{1}+m_{2}},\frac{m_{1}y_{2}+m_{2}y_{1}}{m_{1}+m_{2}} \right )
According to question let R = (x, y) and PR = \frac{3}{5} PQ
\frac{PQ}{PR}= \frac{3}{5}
R lies on PQ                \therefore PQ = PR +RQ

\frac{PR+PQ}{PR}= \frac{5}{3}
On dividing separately we get
1+\frac{RQ}{PR}= \frac{5}{3}
\frac{RQ}{PR}= \frac{5}{3}-1= \frac{2}{3}
\Rightarrow PR:RQ= 3:2
Hence, R divides PQ in ratio 3 : 2 using section formula we have
(x1, y1) = (-1, 3)                       (x2, y2) = (2, 5)
m1 = 3, m2 = 2
R\left ( x,y \right )= \left ( \frac{3\left ( 2 \right )+2\left ( -1 \right )}{3+2} ,\frac{3\left ( 5 \right )+2\left ( 3 \right )}{3+2}\right )
R\left ( x,y \right )= \left ( \frac{6-2}{5},\frac{15+6}{5} \right )
R\left ( x,y \right )= \left ( \frac{4}{5},\frac{21}{5} \right )
Here co- ordinates of R is \left ( \frac{4}{5},\frac{21}{5} \right )
           

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  The points A (2, 9), B (a, 5) and C (5, 5) are the vertices of a triangle ABC right angled at B. Find the values of a and hence the area of \triangleABC.

Solution.
           

distance\, formula= \sqrt{\left ( x_{2}-x_{1} \right )^{2}+\left ( y_{2}-y_{1} \right )^{2}}
\triangleABC is a right angle triangle by using Pythagoras theorem we have
(AC)2 = (BC)2 + (AB)2
[(5 – 2)2 + (5 - 9)2] = [(2 – a)2+ (9 – 5)2] + [(a – 5)2 + (5 + 5)2]
(3)2 + (–4)2 = 4 + a2 – 4a + (4)2 + a2 + 25 – 10a
9 + 16 = 4 + a2 – 4a + 16 + a2 + 25 – 10a
25 = 2a2 – 14a + 45
2a2 – 14a + 45 – 25 = 0
2a2 – 14a + 20 = 0
Dividing by 2 we have
a2 – 7a + 10 = 0
a2 – 5a - 2a + 10 = 0
a(a – 5) – 2(a – 5) = 0
(a – 5) (a – 2) = 0
a = 5, a = 2
a = 5 is not possible because if a = 5 then point B and C coincide.
\therefore a = 2
Area \, of \, triangle = \frac{1}{2}\left [ x_{1} \left ( y_{2} -y_{3}\right )+x_{2} \left ( y_{3} -y_{1}\right )+x_{3} \left ( y_{1} -y_{2}\right )\right ]
= \frac{1}{2}\left [ 2\left ( 5-5 \right )+2\left ( 5-9 \right )+5\left ( 9-5 \right )\right ]
= \frac{1}{2}\left [ 0-8+20\right ]
= \frac{1}{2}\left [ 16\right ]
= 8 sq. units.

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\text{If } D\left ( \frac{-1}{2},\frac{5}{2} \right ) , E (7, 3) \ and F\left ( \frac{7}{2},\frac{7}{2} \right ) are the midpoints of sides of  \Delta ABC find the area of the \Delta ABC

Solution.
            

D is mid-point of AB using mid-point formula we get:
-\frac{1}{2}= \frac{x_{1}+x_{2}}{2}           \frac{5}{2}= \frac{y_{1}+y_{2}}{2}

x1 + x2 = –1     ……(1)                        5 = y1 + y2       .…(2)

E is mid-point of BC using mid-point formula we get:
\frac{x_{2}+x_{3}}{2}= 7            \frac{y_{2}+y_{3}}{2}= 3

x2 + x3 = 14     …..(3)              y2 + y3 = 6       ….(4)
F is mid-point of AB using mid-point formula we get:
\frac{x_{1}+x_{3}}{2}= \frac{7}{2}               \frac{y_{1}+y_{3}}{2}= \frac{7}{2}

x1 + x3 = 7       ….(5)               y1 + y3 = 7       …..(6)
Simplifying the above equations for values of x1, y1, x2, y2, x3 and y3
x1 + x2 = –1
x3 + x3 = 14               {using (1) and (3)}
–  –   –   
x1 – x3 = –15   ….(7)
Use (5) and (7) we get
x1 + x3 = 7
x1– x3 = –15
2x1 = –8
x1 = –4
put x1 = 4 in (1) we get
–4 + x2 = –1
X2 = –1 + 4 = 3
Punt x2 = 3 in (3) we get
3 + x3 = 14
x3 = 11
Using equation (2) and (4) we get
y1 + y2 = 5
y3 + y3 = 6
-  -   –
y1 - y3 = –1      ….(8)
Adding equation (6) and (8) we get
y1 + y3 = 7
y1 – y3 = –1
-------------------
2y1 = 6
y1 = 3
Put y1 = 3 in eqn. (2)
5 – 3 = y2
2 = y2
Put y2 = 2 in eqn. (4)
2 + y3 = 6
y3 = 6 – 2
y3 = 4
Hence, x1 = –4             y1 = 3
  x2 = 3               y2 = 2
  x3 = 11             y3 = 4
A = (x1, y1) = (–4, 3), B = (x2, y2) = (3, 2), C = (x3, y3) = (11, 4)
Area \, of \, triangle = \frac{1}{2}\left [ x_{1} \left ( y_{2} -y_{3}\right )+x_{2} \left ( y_{3} -y_{1}\right )+x_{3} \left ( y_{1} -y_{2}\right )\right ]
= \frac{1}{2}\left [ \left ( -4 \right )\left ( 2-4 \right )+\left ( 3 \right )\left ( 4-3 \right ) +11\left ( 3-2 \right )\right ]
= \frac{1}{2}\left [ \left ( -4 \right )\left ( -2 \right )+3\left ( 1 \right )+11\left ( 1 \right ) \right ]
= \frac{1}{2}\left [ 8+3+11 \right ]
= \frac{1}{2}\left [ 22 \right ]
= 11 sq. units

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The line segment joining the points A (3, 2) and B (5,1) is divided at the point P in the ratio 1:2 and it lies on the line 3x – 18y + k = 0. Find the value of k.

Solution:
               

Here points A(3, 2) and B(5, 1) is divided at the point P in the ratio 1 : 2
(x1, y1) = (3, 2)            (x2, y2) = (5, 1)
m1 = 1, m2 = 2
By section formula we have
P\left ( x,y \right )= \left [ \frac{1\times 5+2\times 3}{1+2},\frac{1\times 1+2\times 2}{1+2} \right ]
                 = \left [ \frac{5+6}{3},\frac{1+4}{3} \right ]
                 = \left [ \frac{11}{3},\frac{5}{3} \right ]
Line is 3x – 18y + k = 0     ......(1)
 Put\, point\, P\left ( \frac{11}{3},\frac{5}{3} \right ) in \left ( 1 \right )
 Put\, x= \frac{11}{3},y= \frac{5}{3}
3\left ( \frac{11}{3} \right )-18\left ( \frac{5}{3} \right )+k= 0

11 – 30 + k = 0
–19 + k = 0
      k = 19

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The centre of a circle is (2a, a – 7). Find the values of a if the circle passes through the point (11, –9) and has diameter 10\sqrt{2}  units.

Solution
 

distance\: formula= \sqrt{\left ( x_{2}-x_{1} \right )^{2}+\left ( y_{2}-y_{1} \right )^{2}}
Given points area A(2a, a –7) and B(11, –9)
Diameter= 10\sqrt{2}
Radius= \frac{10\sqrt{2}}{2}= 5\sqrt{2}
Distance= 5\sqrt{2}
(x1, y1) = (2a, a - 7)                  (x2, y2) = (11, -9)
= \sqrt{\left ( 11-2a \right )^{2}+\left ( -9-a+7 \right )^{2}}= \left ( 5\sqrt{2} \right )

Squaring both sides
 \left ( 11-2a \right )^{2}+\left ( -2-a \right )^{2}= \left ( 5\sqrt{2} \right )^{2}
121 + 4a2 – 44a + 4 + a2 + 4a = 50
502 – 40a + 125 – 50 = 0
5a2 – 40a + 75 = 0
Dividing by 5 we get
a2 – 8a + 15 = 0
a2 – 5a - 3a + 15 = 0
a(a – 5) – 3(a – 5) = 0
(a – 5) (a – 3) = 0
a = 5, 3

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If (a, b) is the mid-point of the line segment joining the points A (10, –6) and B (k, 4) and a – 2b = 18, find the value of k and the distance AB.

Solution
 

mid-point\, formula\, x= \frac{x_{1}+x_{2}}{2},y= \frac{y_{1}+y_{2}}{2}
Point P (a, b) divide A(10, –6) and B(k, 4) in two equal parts.
a= \frac{10+k}{2}                b= \frac{-6+4}{2}= \frac{-2}{2}= -1
Given :  a – 2b = 18
Put b = –1
a – 2(–1) = 18
a = 18 – 12
a = 16
Now, a= \frac{10+k}{2}
16= \frac{10+k}{2}
32 = 10 + k
32 – 10 = k
22 = k
\therefore A (10, –6), B(22, 4)
AB= \sqrt{\left ( 22-10 \right )^{2}+\left ( 4+6 \right )^{2}}
= \sqrt{\left ( 12 \right )^{2}+\left ( 10 \right )^{2}}
= \sqrt{144+100}
= \sqrt{244}
=2 \sqrt{61}

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 If P(9a – 2, –b) divides line segment joining A(3a + 1, –3) and B(8a, 5)in the ratio 3: 1, find the values of a and b.

Solution
              

Point P(9a – 2, –b) divides line segment joining the points A(3a + 1, –3) and B(8a, 5) in ration 3 : 1.
(x1, y1) = (3a+1, -3)                 (x2, y2) = (8a, 5)
m1 = 3, m2 = 1
Using section formula we have
\left ( 9a-2,-b \right )= \left [ \frac{3\left ( 8a \right )+1\left ( 3a+1 \right )}{3+1} ,\frac{3\left ( 5 \right )+1\left ( -3 \right )}{3+1}\right ]
\left ( 9a-2,-b \right )= \left [ \frac{24a+3a+1}{4},\frac{15-3}{4}\right ]
\left ( 9a-2,-b \right )= \left [ \frac{27a+1}{4},\frac{12}{4}\right ]
Equate left-hand side and the right-hand side we get
9a-2= \frac{27a+1}{4}              -b= \frac{12}{4}

36a – 8 = 27a + 1        –b = 3
9a = 9                     b = –3
a= \frac{9}{9}
a = 1

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Find the ratio in which the point P\left ( \frac{3}{4},\frac{5}{12} \right ) divides the line segment joining the points A\left ( \frac{1}{2},\frac{3}{2} \right ) and  B (2, -5).

Solution
       

P\left ( X,Y \right )= \left ( \frac{m_{1}x_{2}+m_{2}x_{1}}{m_{1}+m_{2}},\frac{m_{1}y_{2}+m_{2}y_{1}}{m_{1}+m_{2}} \right )

Let the point P\left ( \frac{3}{4},\frac{5}{12} \right )  divides the line segment joining the points A\left ( \frac{1}{2},\frac{3}{2} \right )  and B(2, –5) in the ration k : 1.
(x1, y1) = (1/2, 3/2)                  (x2, y2) = (2, -5)
m1 = k, m2 = 1
Using section formula we have
\left ( \frac{3}{4},\frac{5}{12} \right )= \left [ \frac{2k+1/2}{k+1} ,\frac{-5k+3/2}{k+1}\right ]
\left ( \frac{3}{4},\frac{5}{12} \right )= \left [ \frac{4k+1}{2k+1},\frac{-10k+3}{2k+2} \right ]
\frac{4k+1}{2k+1}= \frac{3}{4}               \frac{-10k+3}{2k+2}= \frac{5}{12}

16k + 4 = 6k + 6                 –120k + 36 = 10k + 10
16k – 6k = 6 – 4                 –130k = –26    
k= \frac{2}{10}= \frac{1}{5} 
Therefore the required ratio is 1 : 5
i.e. 1 : 5

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