Trig Ratios (1 Viewer)

Lukybear

Active Member
Joined
May 6, 2008
Messages
1,466
Gender
Male
HSC
2010
How do you find tan105 as a exact value? Please some1 tell me.
 

Lukybear

Active Member
Joined
May 6, 2008
Messages
1,466
Gender
Male
HSC
2010
Also sin2x=cosx. Ive never dont that as well, how are we suppose to do it?
 

Lukybear

Active Member
Joined
May 6, 2008
Messages
1,466
Gender
Male
HSC
2010
I dont think so. Our prelim course has only done up to basic trig i.e. 1+tan^2x=sec^2x

Also; how do you do this?
sqrt3cotx+1=cosecx
 

addikaye03

The A-Team
Joined
Nov 16, 2006
Messages
1,267
Location
Albury-Wodonga, NSW
Gender
Male
HSC
2008
Let all values be in terms of degrees, no denotion

tan(105)=tan(45+60)

=tan45+tan60/(1-tan45tan60

Now from our exact value triangles tan45=1 and tan60=rt 3

therefore (1+rt3)/(1-rt3) #

Im almost 100% sure that would get full marks but just incase i would consider rationalising it:

(1+rt3)(1+rt3)/(1+rt3)(1-rt3)

=4+2rt3/-2

=-2-rt3

Edit: Ah, beat me to it
 

kurt.physics

Member
Joined
Jun 16, 2007
Messages
840
Gender
Undisclosed
HSC
N/A
Also; how do you do this?
sqrt3cotx+1=cosecx
This is an example of a transcendental equation. The best method, and the method which you would be required to use in the HSC, is to graph the two functions, then estimate their values from the intersection of the graph.
 

hermand

je t'aime.
Joined
Aug 28, 2008
Messages
1,432
Gender
Female
HSC
2009
Also sin2x=cosx. Ive never dont that as well, how are we suppose to do it?
[double angle rule]

you can't cancel the cos's out because they can equal zero.


&
when cosx=0, x=90, 270. [did that without calculator, might want to check it].
when 2sinx-1=0 --> 2sinx=1 --> sinx=1/2 then x=30, 150.
 

addikaye03

The A-Team
Joined
Nov 16, 2006
Messages
1,267
Location
Albury-Wodonga, NSW
Gender
Male
HSC
2008
I dont think so. Our prelim course has only done up to basic trig i.e. 1+tan^2x=sec^2x

Also; how do you do this?
sqrt3cotx+1=cosecx
rt3(cosx/sinx)+1=1/sinx

(rt3cosx+sinx)/sinx=1/sinx

rt3cosx+sinx=1

Now we can use the tranformations form, where acosx+bsinx=Rcos(@-alpha)

R=rt(a^2+b^2)

tan (alpha)=b/a

Have a go, if you can't do it then i'll help you out
 

gurmies

Drover
Joined
Mar 20, 2008
Messages
1,209
Location
North Bondi
Gender
Male
HSC
2009
For tan105, I would probably call it -tan75 and then - tan (30 + 45)...for some reason I didn't see that 105 = 60 + 45 -.-
 

gurmies

Drover
Joined
Mar 20, 2008
Messages
1,209
Location
North Bondi
Gender
Male
HSC
2009
haha aw alex... you can think of some very efficent and clean methods...this wasn't one of them man lol
Every dawg has it's day xD. I remember this was in one of our prelim exams, and I did it the 45 + 60 way...Didn't get any wiser -.-
 

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

Top