Wednesday, December 25, 2019

ADDITION AND SUBTRACTION

Addition and Subtraction


Addition:- Addition can explain by following example

Lets ram has 2 apple and john has 3 Apple

So if ram gives all 2 apple to john then john will have total 2+3=5
i.e. 5 Apple.
 So addition means 2+3=5

Addition method on number line
 lets say we have to add 2 and 3
then draw number line

—1—2—3—4—5—6—7—8-
So after 2 on the no. line we have to add 3, so after 2-3, 3-4 and 4-5 so after 3 interval or addition of 3 on 2 we get 5.

Subtraction: Subtraction is loosing of quantity.
Lets say amy has 5 mangoes and she gives 2 mangoes to john then amy will now remaining 5-2=3 mangoes.
On the number line:
—1—2—3—4—5—6—7—8—9—10-
On the number line if the 5-4 and 4-3 so the total reduction after 2 interval is 3.



Wednesday, March 20, 2019

COMPLEX NUMBER

Complex no has both real and imaginary part.
It is represent by A+Bi
where A is real part and B is imaginary part.
i is the iota and its value i=√-1

Complex no. also represent by e or cosθ+isinθ

1. Addition of complex no.
 z1=x+yi and z2=x1+y1i
then
z1+z2=x+yi+x1+y1i
z1+z2=x+x1+yi+y1i
z1+z2=x+x1+yi+y1i
z1+z2=x+x1+(yi+y1)i
2. Subtraction of two complex no.
 z1=x+yi and z2=x1+y1i
then
z1-z2=x+yi-(x1+y1i)
z1-z2=x-x1+yi-y1i
z1-z2=x-x1+yi-y1i
z1-z2=x-x1+(yi-y1)i

3. Product of two complex no.
 z1=x+yi and z2=x1+y1i
then
Z1.Z2=(x+yi).(x1+y1i)
Z1.Z2=(xx1+x1yi+xy1i+yy1i)
Z1.Z2=(xx1+(x1y+xy1)i+yy1i²)
Z1.Z2=(xx1+(x1y+xy1)i-yy1)
Z1.Z2=(xx1-yy1+(x1y+xy1)i

4. Product of two complex no.
 z1=x+yi and z2=x1+y1i
then
z1/z2=(x+yi)/(x1+y1i)


RATIO AND PROPORTION

Ratio and ProportionA ratio is a comparison of two or more quantities of similar kind.
It is represent by A:B or A/B
Properties:


i) If both the terms of a ratio are multiplied or divided by same non zero quantity then the value of ratio remains same.
If A/B=p/q then A/B=kp/kq

ii) If the ratio is square or multiply by a constant then ratio will be remains same.

iii) 


Thursday, August 23, 2018

PARTIAL FRACTIONS

FIND THE PARTIAL FRACTION OF (x+14)/(x-4)(x+2)
(x+14)/(x-4)(x+2)=a/(x-4)+b/(x+2).......1.
(x+14)/(x-4)(x+2)=⟦a(x+2)+b(x-4)⟧(x-4)(x+2)
or
(x+14)=⟦a(x+2)+b(x-4)⟧
put 
x=-2
-2+14=⟦a(-2+2)+b(-2-4)⟧
12=b(-6)
b=-2
and
put
x=4
4+14=⟦a(4+2)+b(4-4)⟧
18=6a
a=3
hence
from 1.
(x+14)/(x-4)(x+2)=3/(x-4)-2/(x+2) 


Simplify (1/16x)+(1/8)) / ((1/4)+(1/8x))?

((1/16x)+(1/8)) / ((1/4)+(1/8x)) =y assume y=N/D
N=numerator=((1/16x)+(1/8))
and
D=(1/4)+(1/8x)
N=((1/16x)+(1/8))=
Now solve this
N=(1+2x)/16x
and
D=(1/4)+(1/8x)
D=(2x+1)/8x
Now y=N/D=(1+2x)/16x/(2x+1)/8x=8x/16x=1/2

SPEED, TIME AND DISTANCE

The time taken by a train running at 30kmph to pass a man walking in the same direction at a speed of 6 kmph is 3/7 th of the time taken by the train to cross a platform. If the length of the train is 96 mts. What is the length of the platform?

let the time taken for train to cross the man is t1
then 
relative speed=30-6=24kmph=6.66mps
t1=96/6.66
and
t2=time taken for train to cross the platform is t2
speed of train=30kmph=8.33mps
t2=(96+l)
l=length of train
Now according to given condition
t1=(3/7)t2
96/6.66=(3/7)(96+l)/8.33
solve for l
l=184m

A boat takes twice as much time going upstream as it takes to go downstream. While covering the same distance. If the speed of the boat in still water is 6 km/hr. What is the speed of the current?
———→ downstream 
Assume speed of current is V.
Relative velocity= V+6 and time= T1
and 
←———upstream
Relative velocity=6-V  and time T2
Note: Relative velocity=6-V not V-6 becuse if V>6 i.e. velocity of current is greater then velocity of boat then boat will not go to upstream.
Now,
i.e.T2=2T1
d/(6-V)=2d/(V+6)
V+6=2(6-V)
V+6=12-2V
3V=6
V=2kmph

The speed of the boat in still water is 22 kmph. It takes the same time for the boat to travel 1.2 km upstream as it does to travel 32km downstream. What is the speed of the current?
———→ downstream
Assume speed of current is V.
Relative velocity= V+22 and time= T1 
Distance=32km
and 
←———upstream
Relative velocity=22-V  and time T2
Distance=1.2km
Note: Relative velocity=22-V not V-22 becuse if V>22 i.e. velocity of current is greater then velocity of boat then boat will not go to upstream.
Now,
i.e.T2=T1
1.2/(22-V)=32/(V+22)
(V+22)1.2=32(22-V)
1.2V+22×1.2=32×22-32V

V=20.4kmph

Friday, August 17, 2018

SURDS AND INDICES


How do I solve ?

4x2x2=0

22X-2X-2=0
Assume 2x=t
then
above equation become
t²-t-2=0
t²-2t+t-2=0
from this
t=2 and t=-1
but 2x=t
2x=2
x=1 
and
2x=-1
for above condition x value not possible
y=√ab/∛a∛b
y=√a√b/∛a∛b     because √ab=√a√b
y=a^(1/2-1/3)×b^(1/2-1/3)  because ax/ay=ax-y
y=a^(5/6)×b^(5/6)      because ax×bx=(ab)x
a+1/a=3
squering both sides
a²+1/a²+2×a×(1/a)=9
a²+1/a²+2=9  use formula (x+y)²=x²+y²+2xy

a²+1/a²=7

If (8x²)8-r(2x)-r=2axb   then find a and b in terms of r ?
(8x²)8-r(2x)-r=2axb
(2³x²)8-r(2x)-r=2axb

23(8-r)x2(8-r)=2axb
2(24-3r)x(16-2r)=2axb
now compare the power of 2 and x
a=(24-3r)
and b=16-2r

IF (8-√18)/√2=a+b√2 then find a and b ?
we have to eliminate √2 denominator.
for this multiply and divide by √2
i.e.
(8-√18)/√2=(8-√18)×√2/(√2×√2) 
                   =(8-√18)×√2/2
                   =(8√2-√18√2)/2
                   =(8√2-√36)/2
                   =(8√2-2√3)/2
                    =4√2-√9
                      =-3+4√2
a+b√2=-3+4√2

a=-3 and b=4
What is the value of 
2^2014 - 2^2013
= 2^(2013+1) - 2^2013
= 2^2013 (2^1- 1)
= 2^ 2013 * (2–1)
= 2^ 2013 * 1
= 2^2013

CIRCLE

Circle

Curve that is radius away from centre point.
or
All points are same distance from centre. 

Image result for circle

Radius: Distance from centre to outwards only one side.
Diameter: Distance from centre to outwards on both sides.
Circumference: It is a distance once around the circle.

The ratio of circumference to the diameter is called Π.
important relation:
circumference
         ↑ ×Π
     Diameter
         ↑×2
      Radius
Area of circle: It is the Π times the radius square.
i,e,
Area of circle=Πr²

Unit of Area: If the unit of the radius is meter(m) then the unit of area is meter square (m²).

Example: Find the area of circle whose radius is 3m?

Area of circle: Πr²
A=Π×r×r
A=Π×3×3
A=3.14×3×3
A=28.26m²

Lines
Chord: Chord is the line between any two points on the circumference.
Diameter: Diameter is the longest chord of the circle.
Tangent: When the line touches at only one point on the circumference, it is called tangent.

General Equation of circle
General equation of circle if (a,b) and r is the radius is given by:
(x-a)²+(y-b)²=r²




Centre (4,5)
Radius=5 since it is touching the x axis hence y coordinate of center will be radius.
General equation of circle if (a,b) and r is the radius:
(x-a)²+(y-b)²=r²
(x-4)²+(y-5)²=5²
(x-4)²+(y-5)²=25
when it cut the y-axis where x=0
i.e.
(0-4)²+(y-5)²=25
16+(y-5)²=25
(y-5)²=25-16
(y-5)²=9
y-5=±3
from this
y=5+3 and 5-3
y=8 and 2

hence the circle cut the y axis at 2 and 8

The equation for a circle is x^2 + y^2 + 10y - 7 = 0. What is the centre of the circle?

Given
x²+y²+10y-7=0
General equation of circle if (a,b) and r is the radius:
(x-a)²+(y-b)²=r²
x²+y²+10y-7=0
x²+y²+10y+25=25+7

x²+(y+5)²=(√32)²

(x-a)²+(y-b)²=r²

comparing both
Centre =(0,-5)
and
Radius =√32

In a circle with a radius of 5 cm, what is the length of the chord which is at a distance of 3 cm from its center?
Given radius (r)=5cm
and let BAC is the chord. Midpoint is B
perpendicular from centre to chord (OA)=3cm
then BA=(√(5²-3²)=√16=4cm
length of chord (BAC)=2BA because BA=AC

length of chord (BAC)=2*4=8cm




Equation of line

 Find the equation of line having intercept are 3 and 2 General equation of line having intercept a and b is  X/a + Y/b=1 X/3+Y/2=1 The angl...