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  1. scardizzle

    English, Modern History, Visual Arts Tutoring - 99.55ATAR, Extended Eastern Suburbs

    Re: English, Modern History, Visual Arts Tutoring - 99.55ATAR, Extended Eastern Subur This guy would pick up the soap from the shower floor in a prison for you. He is dedicated, committed and knows his stuff I would definitely pm him if you're looking to lift up your marks!
  2. scardizzle

    Titration Indicators

    Hey BOS, this may sounds like a stupid question but in what circumstances would i not use phenolphthalein as my indicator in a titration? According to wiki: An acid-base titration is the determination of the concentration of an acid or base by exactly neutralizing the acid/base with an acid...
  3. scardizzle

    double angle integration

    yes..yes you should
  4. scardizzle

    Integration

    This may be an easy questions but I'm just not seeing it. Any help is greatly appreciated, cheers. http://i.imgur.com/cpA9K.jpg
  5. scardizzle

    Im finding these Complex Q's quite complex(more q's)

    but doesnt give the opposite result wouldnt 2arg(z-3) = argz edit: oops double post
  6. scardizzle

    Im finding these Complex Q's quite complex(more q's)

    wow, i didnt know you oculd do that, should my answer be 1 + 5i?
  7. scardizzle

    Im finding these Complex Q's quite complex(more q's)

    http://i.imgur.com/t5YSB.jpg Half Yearly's are tomorrow so any help would be great I have no idea how to do d (ii), something to do with an angle subtended at the centre of a circle is double that at the circ??? for e) how do i decide whether the vector between 2 points is z1 - z2 or z2 - z1?
  8. scardizzle

    Polynomial question.

    since there is a multiple root then nx^n-1 + m = 0 therefore x^n-1 = -m/n - [1] we also know that x(x^n-1 + m) = b subbing in [1]: x = b/(-m/n + m) = bn/m(n-1) =) x^n-1 also = [bn/m(n-1)]^n-1 solving simultaneously with [1]: [bn/m(n-1)]^n-1 = -m/n therefore [b/(n-1)] ^ n-1 . [n/m] ^ n-1...
  9. scardizzle

    More Complex No. Q's

    http://i.imgur.com/BBY7H.jpg Sorry for all these questions, I definitely need more practice with complex no.'s. Any help is greatly appreciated.
  10. scardizzle

    Complex No.

    Thanks for the help guys but i dont see how the angle at z1 made by z4 and z2 = arg(z1-z2) - arg (z1 - z4) isnt the argument take from the origin? I guess what im try to say is how can you find an argument of a vector?
  11. scardizzle

    Complex No.

    sorry man, i'm still not seeing it... arg(a-b)/arg(c-b) = arg(a-b) -arg(c-b) do you have to use the result that opposite angles of a cyclic quad are supplementary? I still cant put the pieces together.
  12. scardizzle

    Complex No.

    http://i.imgur.com/rXlgT.jpg Comes from 2002 SBHS trial have no clue how to solve part ii
  13. scardizzle

    nah, man it's its just plain old Jeff here. I made this account ages ago with Zach and I'm not...

    nah, man it's its just plain old Jeff here. I made this account ages ago with Zach and I'm not sure why we chose scardizzle, i guess we thought it was kinda funny but anyway sorry for any misconceptions caused.
  14. scardizzle

    Polynomials question

    your question isn't making much sense to me. Where did you get the b term from? The only advice i can give atm is this q probably involves differentiating and making x the subject
  15. scardizzle

    Conics

    P is a variable point on the ellipse with equation x^2/a + y^2/b = 1 and S and S' are the foci. Show that PS and PS' are equally inclined to the tangent at P.
  16. scardizzle

    Does Physics get harder?

    I would say the year 11 course and the year 12 course a fairly similar. Both are content based with a little bit of maths. If you're struggling with understanding the basic principles e.g. conservation laws, Newtons laws etc. I would consider dropping as these are built upon in the year 12 course.
  17. scardizzle

    what is your school up to in 4u

    I think he's been learning ahead, i remember seeing him last year in the 3U forums
  18. scardizzle

    complex numbers

    well w1,w2...wn are all roots of the equation z^n = 1 using the sum of roots, we know that w1 + w2 +...wn = -b/a in this case b = 0 hence w1 + w2 +...+wn = 0 (sorry for the lack of latex i cbf to learn at this point in time)
  19. scardizzle

    Complex cube roots of unity

    Prove that w, a complex cube root of unity, is a repeated root of P(x) = 3x^5 + 2x^4 + x^3 - 6x^2 - 5x - 4. EDIT(left out the other half of the q):Hence find the zeroes to the equation over the complex number field
  20. scardizzle

    Max and Min

    so (x,y) lie on the parabola y = x^2 therefore (x,y) can be written as (x,x^2) assuming the q is talking about its perpendicular distance to that line distance = | x - x^2 -1| x (1 + 1)^-1/2 = |x^2 -x +1| x 2^-1/2 (dividing by -1 this wont affect the answer since there are absolute value...
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