2u unit maths help,basic algebra (sort of tricky questions) (1 Viewer)

Riot09

Member
Joined
Oct 7, 2009
Messages
371
Location
The octagon
Gender
Male
HSC
2011
Basically,im doing the excersices from the fist chapter of my 2u excell book for this year an theirs are few questions i'm stuck on.(working out and solutions are provided at the back but-these are tricky questions that i can't get.So please explain whats going on here step wise.Thnx in advance.

All the solutions are already here but i don't get some of the steps involved to them as these are the "difficult" questions toward the end.so please provide an explanation.Thnx in advance.

Note: ------ ^2= squared. e.g,8m^8=8m squared-----------

32.c simplify

8m^8n^6/12m^5n^9 =2m^3/3n^3

50.e factorise

a^3 b^7-a^4b^6=a^3b^6(b-a)

52.c factorise

m^2-3m+2mn-6n=m(m-3)+2n(m-3)
=(m-3)(m+2n)
56.c factorise

8-125k^3=2^3-125^3
=(2-5k)(4+10k+25k^2)

56.d factorise

64p^3+34q^3=(4p+7q)(16p^2-28pq+49q^2)

58.d factorise fully

m^4-16=(m^2-4)(m^2+4)
=(m-2)9m+2) (m^2+4)

58.e factorise fully

k^2-9+7km-21m=(k-3)(k+3)+7m(k-3)
=(k-3)(k+3+7m)


58.f factorise fully

pqr+3pr-5pq-15p=p(qr+3r-5q-15)
=p[r(q+3)-5(q+3)]
=p(q+3)(r-5)
 
Last edited:

Arcorn

Ban ned
Joined
Nov 18, 2009
Messages
1,143
Gender
Male
HSC
2010
Why are you using the power to symbol for multiplication?
 

Aerath

Retired
Joined
May 10, 2007
Messages
10,169
Gender
Undisclosed
HSC
N/A
I think the power button was to symbolise power...like k^2 is k squared.
 

lpodnano

5eva alone
Joined
Mar 6, 2008
Messages
1,561
Location
;)
Gender
Female
HSC
2011
sorry i can't help, not using the power sign and stuff really confuses me.
 

mioumiou

Member
Joined
Nov 2, 2009
Messages
665
Gender
Female
HSC
2011
Try the maths forum! They have these mathematics symbols that you can click on. It's much easier and way more readable. I can't help cuz the power signs are a bit confusing.
 

ninetypercent

ninety ninety ninety
Joined
May 23, 2009
Messages
2,148
Location
Sydney
Gender
Female
HSC
2010
look mate, you should've done these in junior years, but its nice to see you studying :D

32.c simplify

8m^8n^6/12m^5n^9 =2m^3/3n^3
simplify it. 8/12 = 2/3
and then bring the powers down m^8 divided by m^5 is m^3
n^6 divided by n^3 is n^3

50.e factorise

a^3 b^7-a^4b^6=a^3b^6(b-a)
a^3 x b^6 are common factors. take them out. and then you are left with b -a

52.c factorise

m^2-3m+2mn-6n=m(m-3)+2n(m-3)
=(m-3)(m+2n)
group in pairs. and then factorise by taking out (m-3)

56.c factorise

8-125k^3=2^3-125^3
=(2-5k)(4+10k+25k^2)
(a^3 - b^3) = (a-b)(a^2 + ab + b^2)
use this, with a being 2 and b being 5k

56.d factorise

64p^3+34q^3=(4p+7q)(16p^2-28pq+49q^2)
same with question above

58.d factorise fully

m^4-16=(m^2-4)(m^2+4)
=(m-2)9m+2) (m^2+4)
difference of two squares in first line. difference of two squares again for m^2 -4
and the last line should say (m-2)(m+2)(m^2 + 4)

58.e factorise fully

k^2-9+7km-21m=(k-3)(k+3)+7m(k-3)
=(k-3)(k+3+7m)
group in two pairs, then take out (k-3) as common factor


58.f factorise fully

pqr+3pr-5pq-15p=p(qr+3r-5q-15)
=p[r(q+3)-5(q+3)]
=p(q+3)(r-5)
take out p as common factor. group in pairs for the inside, then factorise by taking out (q+3)
 

x_cp3

Member
Joined
Dec 20, 2009
Messages
134
Gender
Male
HSC
2011
lol i can't do anything im sorry.. i dun get jack shit of the thing and confusing me lol
 

xMaFF

Member
Joined
Jun 8, 2009
Messages
173
Location
Seireitei - Gotei 13 Protection Squads
Gender
Male
HSC
2011
58.f factorise fully

pqr+3pr-5pq-15p=p(qr+3r-5q-15)
=p[r(q+3)-5(q+3)]
=p(q+3)(r-5)
This one caught my eye.

pqr+3pr-5pq-15p = p(qr+3r-5q-15)

pr(q+3)-5p(q+3) = p[r(q+3)-5(q+3)]

(pr-5p)(q+3) = p(r-5)(q+3)


Aaand, that's about as far as I can go, haha. T.T
I hope this helps in some way.

If in any procedure I am incorrect, (I was never known to be mathematically-inclined) please do correct me.

Is the answer just that, or..?
 

AAEldar

Premium Member
Joined
Apr 5, 2010
Messages
2,246
Gender
Male
HSC
2011
This one caught my eye.

pqr+3pr-5pq-15p = p(qr+3r-5q-15)

pr(q+3)-5p(q+3) = p[r(q+3)-5(q+3)]

(pr-5p)(q+3) = p(r-5)(q+3)


Aaand, that's about as far as I can go, haha. T.T
I hope this helps in some way.

If in any procedure I am incorrect, (I was never known to be mathematically-inclined) please do correct me.

Is the answer just that, or..?
Judging by the way that that question was set out, there isn't a LHS=RHS, it's just the one equation. It should be:

pqr+3pr-5pq-15p
=p(qr+3r-5q-15)
=p[r(q+3)-5(q+3)]
=p(r-5)(q+3)

As you can see from your working, you could still simplify the LHS and get the same answer as the RHS :) Unless you did know all this, in which case disregard my post.
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top