On the right side one of the terms is ##2x12c_3w##. Should that have been ##2x^{12}c^3##? Also, you're missing a right parenthesis.science_rules said:##(12c_3wx_2 + 2x12c_3w + 12c_3w)/(18cw_3x_2 - 18cw_3##
Do you mean ##\frac{x^2+2x+1}{18cw^3}\frac{12c^3w}{x^2-1}##?science_rules said:((x2 + 2x + 1)/(18cw3) times ((12c3w)(x2 - 1))
It should have been as haruspex said: (x2 + 2x + 1)/(18cw3) times (12c3w)/(x2-1)Mark44 said:On the right side one of the terms is ##2x12c_3w##. Should that have been ##2x^{12}c^3##? Also, you're missing a right parenthesis.
Yes, that is what I meant.haruspex said:Do you mean ##\frac{x^2+2x+1}{18cw^3}\frac{12c^3w}{x^2-1}##?
If so, there is a lot of cancellation available. Factorise the two expressions involving x.
science_rules said:Yes, that is what I meant.
(x+1)(x+1)/(18cw3) times (12c3w)/(x-1)(x+1)haruspex said:Do you mean ##\frac{x^2+2x+1}{18cw^3}\frac{12c^3w}{x^2-1}##?
If so, there is a lot of cancellation available. Factorise the two expressions involving x.
More cancellation to go. Look at the constants, look at the powers of c and w.science_rules said:(x+1)(x+1)/(18cw3) times (12c3w)/(x-1)(x+1)
The x+1 cancels, leaving: (x+1)/(18cw3) times (12c3w)/(x-1)
(x+1)/((3w)(6cw2)) times ((3w)(4c3))/(x-1) = (x+1)/(6cw2) times (4c3)/(x-1)haruspex said:More cancellation to go. Look at the constants, look at the powers of c and w.
The 3w is canceledscience_rules said:(x+1)/((3w)(6cw2)) times ((3w)(4c3))/(x-1) = (x+1)/(6cw2) times (4c3)/(x-1)
I meant that 3wc is canceled, leaving: (x+1)/(w2) times (4c2)/(x-1)science_rules said:The 3w is canceled
You made a mistake with the constants.science_rules said:I meant that 3wc is canceled, leaving: (x+1)/(w2) times (4c2)/(x-1)
Should it be: 3cw(w2) and 3cw(4c2)??haruspex said:You made a mistake with the constants.
Oops I meant: 3cw(6w2) and 3cw(4c2)science_rules said:Should it be: 3cw(w2) and 3cw(4c2)??
Yes.science_rules said:Oops I meant: 3cw(6w2) and 3cw(4c2)
Thank you for your helpharuspex said:Yes.
So the answer is: (x+1)/(6w2) times (4c2)/(x-1)haruspex said:Yes.
science_rules said:(x+1)/((3w)(6cw2)) times ((3w)(4c3))/(x-1) = (x+1)/(6cw2) times (4c3)/(x-1)
science_rules said:The 3w is canceled
science_rules said:I meant that 3wc is canceled, leaving: (x+1)/(w2) times (4c2)/(x-1)
science_rules said:Should it be: 3cw(w2) and 3cw(4c2)??
Instead of adding new posts each time you discover something you should have said, you can edit the post you want to change.science_rules said:Oops I meant: 3cw(6w2) and 3cw(4c2)
The constants can be further simplified, and then you should bring it together so you have one fraction.science_rules said:So the answer is: (x+1)/(6w2) times (4c2)/(x-1)
Like this?: (x+1)/(6w2) times (4c2)/(x-1) = 4c2x + 4c2/6w2x-6w2 = 2c(2cx+2c)/2w(3wx-3w)<------(Answer)?Thewindyfan said:The constants can be further simplified, and then you should bring it together so you have one fraction.
1)science_rules said:Like this?: (x+1)/(6w2) times (4c2)/(x-1) = 4c2x + 4c2/6w2x-6w2 = 2c(2cx+2c)/2w(3wx-3w)<------(Answer)?
2) I think you can leave the nominator as ##2c²(x+1)##, and similarly for the denominator. Certainly would give a better readable result.Thewindyfan said:The constants can be further simplified
How did you get 2c2(x+1) when it was 4c2/(x+1)?? Isn't the numerator supposed to be 2c2(2x+2)??Samy_A said:1)
2) I think you can leave the nominator as ##2c²(x+1)##, and similarly for the denominator. Certainly would give a better readable result.
You are still not doing all the simplification you could. In what you posted above, each parenthetic term has a factor that can be taken outside. Having done that, one of the primes occurs above and below the line.science_rules said:How did you get 2c2(x+1) when it was 4c2/(x-1)?? Isn't the numerator supposed to be 2c2(2x+2)??
And the denominator is supposed to be: 2w2(3x-3)??
Okay, I think I have it now: (x2 + 2x + 1)/(18cw3) times (12c3w)/(x2-1) = (x+1)2(12c3w)/(18cw2)(x+1)(x-1) Cancel the (x+1) = (12c3w)(x+1)/(18cw2)(x-1) Cancel the c and w = (12c2)(x+1)/(18w)(x-1) divided by 3 (numerator and denominator) = (4c2)(x+1)/(6w)(x-1) divided by 2 (numerator and denominator) = (2c2)(x+1)/(3w)(x-1) Answerharuspex said:You are still not doing all the simplification you could. In what you posted above, each parenthetic term has a factor that can be taken outside. Having done that, one of the primes occurs above and below the line.
Enclose the entire denominator in parentheses.science_rules said:Okay, I think I have it now: (x2 + 2x + 1)/(18cw3) times (12c3w)/(x2-1) = (x+1)2(12c3w)/(18cw2)(x+1)(x-1) Cancel the (x+1) = (12c3w)(x+1)/(18cw2)(x-1) Cancel the c and w = (12c2)(x+1)/(18w)(x-1) divided by 3 (numerator and denominator) = (4c2)(x+1)/(6w)(x-1) divided by 2 (numerator and denominator) = (2c2)(x+1)/(3w)(x-1) Answer
You could've reached the last step by recognizing that 6 is the GCF for the numerator and denominator.science_rules said:Okay, I think I have it now: (x2 + 2x + 1)/(18cw3) times (12c3w)/(x2-1) = (x+1)2(12c3w)/(18cw2)(x+1)(x-1) Cancel the (x+1) = (12c3w)(x+1)/(18cw2)(x-1) Cancel the c and w = (12c2)(x+1)/(18w)(x-1) divided by 3 (numerator and denominator) = (4c2)(x+1)/(6w)(x-1) divided by 2 (numerator and denominator) = (2c2)(x+1)/(3w)(x-1) Answer
A fraction is a number that represents a part of a whole. It consists of a numerator (the number on top) and a denominator (the number on the bottom).
To multiply a fraction by a whole number, simply multiply the whole number with the numerator of the fraction and keep the denominator the same.
The rule for multiplying two fractions is to multiply the numerators together and then multiply the denominators together. The resulting fraction is in its simplest form.
To multiply mixed numbers, first convert them to improper fractions. Then apply the rule for multiplying fractions and simplify the resulting fraction if necessary.
Understanding how to multiply fractions is important in various mathematical applications such as cooking, construction, and finance. It also serves as a foundation for more advanced mathematical concepts.