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VCE Stuff => VCE Mathematics => VCE Mathematics/Science/Technology => VCE Subjects + Help => VCE General & Further Mathematics => Topic started by: Richard Feynman 101 on November 04, 2018, 01:45:28 pm

Title: Beyond the course?
Post by: Richard Feynman 101 on November 04, 2018, 01:45:28 pm
Just wondering if VCAA went beyond on the SD on this question
Title: Re: Beyond the course?
Post by: VeryJuicyLemon on November 04, 2018, 01:49:07 pm
No, why?

Use cosine rule to find the vertical length of the triangle, divide by 2 then use Pythagoras to find the horizontal length of the triangle. Add that with the radius and the length of the square = the length of pathway.

Sunrise is beyond the course  >:( >:( >:(
Title: Re: Beyond the course?
Post by: Richard Feynman 101 on November 04, 2018, 02:53:50 pm
Do you know what the sagitta is?
Title: Re: Beyond the course?
Post by: VeryJuicyLemon on November 04, 2018, 02:58:47 pm
Quote from: Richard Feynman 101 on November 04, 2018, 02:53:50 pm
Do you know what the sagitta is?
yes but you can combine rules learnt in further maths to solve it, just like majority of past geometry question ever questioned at the last page
Title: Re: Beyond the course?
Post by: Richard Feynman 101 on November 04, 2018, 03:55:30 pm
Quote from: VeryJuicyLemon on November 04, 2018, 02:58:47 pm
yes but you can combine rules learnt in further maths to solve it, just like majority of past geometry question ever questioned at the last page

Mmmm. Very interesting
Title: Re: Beyond the course?
Post by: AngelWings on November 04, 2018, 04:40:39 pm
Quote from: VeryJuicyLemon on November 04, 2018, 01:49:07 pm
No, why?

Use cosine rule to find the vertical length of the triangle, divide by 2 then use Pythagoras to find the horizontal length of the triangle. Add that with the radius and the length of the square = the length of pathway.
An alternative solution:
1. the diameter of the circle is 100m, add this with the 65m from the square
2. find the overlap between the two shapes and subtract this from the length found in Step 1:
   a. use Pythagoras' theorem using 50m and (65/2)m to find the distance between the centre of the circle to where it meets the square (You can do this because parallel lines from square and corresponding angles gives right-angled triangle.)
   b. radius distance minus distance between the centre of the circle to where it meets the square

This sort of thing uses a little out of the box thinking, but isn't unusual, especially given that they need to separate people at the top end. The use of out of the box thinking usually happens at the end of Methods Exam 1, but has on rare occasions appeared in Further Exam 2 to intentionally stump people. Good news is now you're prepared for this type of question.