MedVision ad

Harder 2 Unit Topic: Trigonometry (1 Viewer)

XcarvengerX

Chocobo
Joined
Oct 31, 2005
Messages
378
Location
Sydney
Gender
Male
HSC
2006
Just a couple of confusing questions:
1. Two interconnecting equilateral triangle-shape (note: not pyramids) buildings, ABD and BCE, are built on a horizontal plane so that AC is horizontal. AB is 4 metres and CE is 5 metres. Find the angle DE makes with the horizontal.
(Note: I managed to draw the diagram, but couldn't get the answers)

2. A circular hoop of radius 60 cm is suspended from a point by eight equal cords, each 1 metre in length. If the cords are equally spaced around the hoop, find the angle between two consecutive strings.
(Note: More like english essay than math to me)

Thank you for your help. Cheers :)
 

airie

airie <3 avatars :)
Joined
Nov 4, 2005
Messages
1,143
Location
in my nest :)
Gender
Female
HSC
2007
I can't even understand the first question :eek:

For the second question, see diagram attached. I've only drawn the parts concerned, not the whole lot. And I'm being lazy here, just giving the method :p

Say A and B are two points of contact on the loop with two of the strings, and the loop is suspended by strings from point T. Connect centre of loop, O, with A and B by two imaginative lines, then since the strings are placed equally around the loop, angle AOB is 45 degrees. Then use cosine rule on triangle OAB to get the length of AB, and use cosine rule again, this time on triangle TAB, as you know the lengths of strings TA and TB are 1m, as well as the length of AB, to get angle ATB.

Hope that helps :)
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
I don't get the "equilateral triangle shaped buildings interconnected" bit. The rest of the question just falls apart. :p
 

XcarvengerX

Chocobo
Joined
Oct 31, 2005
Messages
378
Location
Sydney
Gender
Male
HSC
2006
airie said:
Say A and B are two points of contact on the loop with two of the strings, and the loop is suspended by strings from point T. Connect centre of loop, O, with A and B by two imaginative lines, then since the strings are placed equally around the loop, angle AOB is 45 degrees. Then use cosine rule on triangle OAB to get the length of AB, and use cosine rule again, this time on triangle TAB, as you know the lengths of strings TA and TB are 1m, as well as the length of AB, to get angle ATB.

Hope that helps :)
Got it, thanks. If you can tell me, what program did you use to make such a nice diagram? Paint?

For question 1, I am not sure, but I am going to scan my diagram when I can get to a scanner. Here is how I draw it. AC is a straight line with B somewhere in the middle. AB is 4 m and BC is 5 m. D is a point that makes ABD an equilateral triangle with 4 m for each side. E is a point that makes BCE an equilateral triangle with 5 m for each side. DE is connected and extended to AC (the horizontal). I don't know if this is right or not because I can't get to the answer.
 

airie

airie <3 avatars :)
Joined
Nov 4, 2005
Messages
1,143
Location
in my nest :)
Gender
Female
HSC
2007
XcarvengerX said:
Got it, thanks. If you can tell me, what program did you use to make such a nice diagram? Paint?
Heh, yeah, Paint is the most convenient tool that also boots up the fastest :D

XcarvengerX said:
For question 1, I am not sure, but I am going to scan my diagram when I can get to a scanner. Here is how I draw it. AC is a straight line with B somewhere in the middle. AB is 4 m and BC is 5 m. D is a point that makes ABD an equilateral triangle with 4 m for each side. E is a point that makes BCE an equilateral triangle with 5 m for each side. DE is connected and extended to AC (the horizontal). I don't know if this is right or not because I can't get to the answer.
SoulSearcher said:
Well I've got 10'54' for the first question, is that the answer?
Got the same as SoulSearcher. Using cosine rule on triangle BDE to get DE=sqrt21, then sine rule to get angle DEB to be arcsin(2/sqrt7). As angles BEC and BCE are 60 degrees (equilateral triangles), 180 degrees minus the angle sum of DEC and ECB gives the angle DE makes with the horizontal. Is that right?
 

SoulSearcher

Active Member
Joined
Oct 13, 2005
Messages
6,757
Location
Entangled in the fabric of space-time ...
Gender
Male
HSC
2007
airie said:
Got the same as SoulSearcher. Using cosine rule on triangle BDE to get DE=sqrt21, then sine rule to get angle DEB to be arcsin(2/sqrt7). As angles BEC and BCE are 60 degrees (equilateral triangles), 180 degrees minus the angle sum of DEC and ECB gives the angle DE makes with the horizontal. Is that right?
Yeah, that's pretty much my method, but don't know the answer, so can't say if we're correct right now.
 

airie

airie <3 avatars :)
Joined
Nov 4, 2005
Messages
1,143
Location
in my nest :)
Gender
Female
HSC
2007
The first question doesn't look like 3D, judging from the diagram drawn :p
 

followme

Member
Joined
Feb 22, 2006
Messages
79
Gender
Male
HSC
2006
SoulSearcher said:
Yeah, that's pretty much my method, but don't know the answer, so can't say if we're correct right now.
Mmmm..I got your answer as well. Here is my working..
what did u guys get for question 2? close to 26'36'?
 
Last edited:

Shivorken

New Member
Joined
Nov 16, 2005
Messages
16
Location
right behind you ... >=D
Gender
Male
HSC
2007
Question 1 was easy once i figured out how to draw the damn thing =]

10'54' just like soulsearcher got. I believe it should be correct.

Answers?
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
Well if several people are getting the same answer, then it's highly likely to be correct.
 

XcarvengerX

Chocobo
Joined
Oct 31, 2005
Messages
378
Location
Sydney
Gender
Male
HSC
2006
Answer:
1. 17'22'
2. 26'33'

If the diagram is like what followme posted (thanks followme), then yeah I also got 10'54'. Either the answer or the diagram is wrong. Probably it is actually 3D somwhow.
 

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

Top