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littleboy

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hey, can you guys help me out with these questions?

1. Determine the locus of the complex number z given arg (z-2) = arg ( z+2) + pi/4 . Sketch the locus on argand diagram

2. If q is real and z = (3+iq)/(3-iq) show that q varies the point in the complex plane which represents z lies on a circle. Find the centre and radius of this circle.

3. If x is real and (x+i)^4 is imaginary, find the possible values of x in surd form
 

香港!

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littleboy said:
hey, can you guys help me out with these questions?

1. Determine the locus of the complex number z given arg (z-2) = arg ( z+2) + pi/4 . Sketch the locus on argand diagram

2. If q is real and z = (3+iq)/(3-iq) show that q varies the point in the complex plane which represents z lies on a circle. Find the centre and radius of this circle.

3. If x is real and (x+i)^4 is imaginary, find the possible values of x in surd form
1.arg (z-2) = arg ( z+2) + pi/4
arg (z-2)-arg (z+2)=pi\4
arg [ (z-2)\(z+2) ] =pi\4
so locus would be half a circle drawn from 2 to -2 anti clockwise such that angle inscribed in it is pi\4

3. (x+i)^4=x^4+4x³i+6x²i²+4xi³+i^4
=x^4-6x²+1+i(....)
its imaginary so real parts=0
x^4-6x²+1=0
x²=[6+-sqrt(36-4)]\2
=[6+-4sqrt 2]\2
=3-2sqrt 2
.: x=+-sqrt (3-2sqrt 2)

haven't done dis stuff for long time... plz correct me if any is wrong:)

I don't get that q2 btw.. "q varies the point in the complex ...."
 

Antwan23q

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very nice with question 3, but i dont get how the first one, i get the working, but dont u get an actualy locus equation? like x+y or something like that?
 

香港!

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antwan2bu said:
very nice with question 3, but i dont get how the first one, i get the working, but dont u get an actualy locus equation? like x+y or something like that?
dunno..
but in all the types of q's like this one that i've done...
the locus are just descriptions, i nvr saw an equation
 

robbo_145

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Question 2

z = (3 + iq)2/(3-iq)(3+iq)
= (9 + 6qi - q2)/( 9 + q2)

z = (9-q2)/(9+q2) + 6qi/(9+q2)
let z = x + iy
x = (9-q2)/(9+q2)
y = 6qi/(9+q2)

the question says it should be a circle so square both sides

x2 = (9-q2)2/(9+q2)2
x2 = ((9+q2)2 - 36q2)/(9+q2)2
x2 = 1 - 36q2/(9+q2)2

y2 = 36q2/(9+q2)2

∴ x2 + y2 = 1
 
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香港!

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sagarn88 said:
for question 3 you have
=[6+-4sqrt 2]\2

and then the next line you have
=3-2sqrt 2

shouldn't it be "3+-2sqrt 2"

so the answer would be
x=+-sqrt (3+-2sqrt 2)
But if you use the "3+2sqrt 2", and put it in your calculator, it turns out to be not a solution. So I left it out...
hehe
But maybe im made a typing mistake.......
 

sagarn88

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香港! said:
1.arg (z-2) = arg ( z+2) + pi/4
arg (z-2)-arg (z+2)=pi\4
arg [ (z-2)\(z+2) ] =pi\4
so locus would be half a circle drawn from 2 to -2 anti clockwise such that angle inscribed in it is pi\4

3. (x+i)^4=x^4+4x³i+6x²i²+4xi³+i^4
=x^4-6x²+1+i(....)
its imaginary so real parts=0
x^4-6x²+1=0
x²=[6+-sqrt(36-4)]\2
=[6+-4sqrt 2]\2
=3-2sqrt 2
.: x=+-sqrt (3-2sqrt 2)

haven't done dis stuff for long time... plz correct me if any is wrong:)

I don't get that q2 btw.. "q varies the point in the complex ...."
for question 3 you have
=[6+-4sqrt 2]\2

and then the next line you have
=3-2sqrt 2

shouldn't it be "3+-2sqrt 2"

so the answer would be
x=+-sqrt (3+-2sqrt 2)
 

robbo_145

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using the circumference-centre angle property of a circle it can be shown the circle is
x2 + (y-2)2 = 8
(in the diagram W = π/4)
 

Antwan23q

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Ive got some working out for question 3.

arg(z-2) - arg(z+2) =pi/4
arg [(z-2)/(z+2)] = pi/4

(z-2)/(z+2) = (x-2+iy)/(x+2+iy) then rationalising the denomiator

= (x-2+iy)(x+2-iy)/[(x+2)^2+y^2]

=[x^2-4+4iy]/[(x+2)^2+y^2]

now taking the seperating the real and imaginary

= (x^2+y^2-4)/[(x+2)^2+y^2] + 4yi/[(x+2)^2+y^2]

tan(pi/4) = {4y/[(x+2)^2+y^2]} / {(x^2+y^2-4)/[(x+2)^2+y^2]}

4y/(x^2+y^2-4) = 1

x^2+y^2-4=4y

x^2+(y-2)^2 = 8
 

KFunk

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Also make sure you account for the fact that 0 < y &le; 2(1 + &radic;2)
 

jake2.0

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robbo_145 said:
using the circumference-centre angle property of a circle it can be shown the circle is
x2 + (y-2)2 = 8
(in the diagram W = &pi;/4)
would the circle be present under the x-axis?
 

Antwan23q

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no, so it shouldnt have a line in that picture, and yes, kfunk right yet again
 

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