I am in 7th grade and I am about to take the SAT and want to be prepared. While looking at this I had trouble solving and have not seen stuff like this before. With this in mind the work afterwards did not help me under stand it better. Thank you for you assistance.

This is substitution, while common substitution gives you things like x=5 or n=8 for you to work with, a similar thing is happening right here, however now they give you x=2y, y=4z and z=2.
Substituting y=4(2) so y=8, x=2(8) so x=16.

Given is:
a = 3b
b^2=2c
9c=d

And we start out with:
a^2 / d
plug in 9c for d
(a^2) / (9c)
plug in 3b for a
((3b)^2) / (9c)
now we simply the numerator (3b)^2 becomes 9b^2
Now we have (9)b^2 / (9)c
Divide both numerator and denominator by 9
(1)b^2 / (1)c ergo b^2 / c
Now we plug 2c for b^2 as given and we'll get
2c / c ergo 2c / 1c
Now divide both numerator and denominator by c
2 / 1 = 2 and that's our answer.

Niels

Greetings from Holland

How did they get 2c/c?

Why Dose the c come to top

Can you explain the problem again because aren't you suppose you suppose to put (9c)^2 since its a^2 / b^2?

so for this problem a can be either 3b or b^2 and b^2 can be either 2c or 9c? i've never sloved this problem..

The answer is (B).

if a=3b,b^2=2c,9c=d then a^2/d= ?????
english please?

I'm so confused on how they got that solution

Who is using Arcadia prep in 2015? Am I the only one? Cos no new posts are being made