Algebra 2 Help!! ASAP!?

Comments

• mahati-g

  May 2021

  1.

  (2/x) - (2/x-1) + (2/x-2)

  Take LCM of x, x-1 and x-2,the three denominators(Dr) which is, multiplying Nr(numerator) and Dr of each term by the other two..

  it means,

  2(x-1)(x-2)/x(x-1)(x-2) - 2x(x-2)/x(x-1)(x-2) + 2x(x-1)/x(x-1)(x-2)

  as the Dr of each term is same we can club all the three terms

  [2(x-1)(x-2) - 2x(x-2) + 2x(x-1)] / [x(x-1)(x-2)]

  Simplifying Nr. we get

  2(x-1)(x-2) - 2x(x-2) + 2x(x-1)

  = 2x²-6x +4 - (2x²-4x) + (2x²-2x)

  = 2x²-6x +4 - 2x²+4x + 2x²-2x

  =2x²-4x +4

  Dr. we get x(x-1)(x-2) = x(x²-3x+2) = x³-3x²+2x

  So simplified expression is Nr/Dr = (2x²-4x +4)/(x³-3x²+2x)

  2. Part 1:

  [(x² - x - 20)/(4)]/[(x - 5)/(10)]

  =[(x² -5x +4x - 20)/(4)]*[(10)/(x-5)]

  =[{x(x-5) +4(x-5)} /(4)]*[(10)/(x-5)]

  =[(x+4)(x-5) /(4)]*[(10)/(x-5)]

  =[(x+4)(x-5)*10 /(4*(x-5))]

  = 5(x+4)/2

  = (5x/2) + 10

  and

  [(x^2 - x - 20)/(x - 5)]/[(4)/(10)]

  =[(x² -5x +4x - 20)/(x-5)]*[(10)/(4)]

  =[{x(x-5) +4(x-5)} /(x-5)]*[(5)/(2)]

  =[(x+4)(x-5) /(x-5)]*[(5)/(2)]

  =(x+4)*(5/2)

  =(5x/2) +10

  Part 2: Yes the complex fractions are equivalent as both the expressions have same terms in the numberator and the denominator ultimately.

  3.

  1/x + 2/9 = 1/3

  Taking LCM on left hand side,

  9/9x + 2x/9x = 1/3

  (9+2x)/9x = 1/3

  By cross multiplication

  3(9+2x)=1*9x

  27 + 6x = 9x

  27 = 9x-6x

  27 = 3x

  Dividing both sides by 3

  9 = x

  so x = 9

  Hope it helped ... ... ... >
• thonen

  May 2021

  sparkling up for the two x or y in the two equation then plug what you get in the different equation for that comparable variable. as an occasion: a million.12x=3.sixty 4+a million.4y->divide the two aspects by a million.12 after which you get x=(3.sixty 4/a million.12)+(a million.4y/a million.12) (Sorry, i've got not got a calculator). Plug that final equation in for x and then slove for y. once you sparkling up for y in the surprising equation plug it in in the different equation and discover x.