Geometry: grade 11 problem#4

lakeheadca · 2010-06-24 17:17:56

BD=4
DC = 6
find AC

EXPLAIN PLEASE.THANKS

ZHero · 2010-06-24 17:23:08

BC = √(4² + 6²) = 10

Let AB = x

10² + x² = (6 + √(x² - 4²))²

Solve for 'x'

bobbym · 2010-06-24 17:43:27

Hi lakeheadca;

Find triangle BDC by pythagorean theorem.

4^2 + 6^2 = c^2 = 52

Side BC = √52

Now find the other triangle:

Side AB = s, Side AC = 6 + x, x = AD

s^2 + (√52)^2 = (6 +x)^2

4^2 + x^2 = s^2

Add the two equations up.

68 + x^2 = ( 6 + x )^2

x = 8 / 3

So Side AC is 6 + 8 / 3 = 26 / 3

lakeheadca · 2010-06-29 03:11:41

Thank you guys,
but I really have no Idea what ZHERO did? HOW you come with
10² + x² = (6 + √(x² - 4²))² ?????????????

Bobby
4^2 + 6^2 = c^2 = 52 (c should be 10)
4^2 + x^2 = s^2 (4 + x^2 = s^2 <--- should be this)??
I know, I ask so many questions, sorry my teachers told me too.
I hate this question. Help me, Please,

Last edited by lakeheadca (2010-06-29 03:12:32)

bobbym · 2010-06-29 09:25:06

Hi lakeheadca;

side BC =√52

side BC is the bottom of triangle ABC

Now if you call segment AD = x

Now you have 2 equations:

(AB)^2 + (√52)^2 = (6 + AD)^2

4^2 + (AD)^2 = (AB)^2 Both by pythagorean theorem.

Remember AB is side AB. And AD is segement AD. Now you have 2 equations and 2 unknowns. Rearrange:

(AB)^2 + (√52)^2 = (6 + AD)^2

4^2 + (AD)^2 - (AB)^2 =0 If you add both equations notice side (AB)^2 cancels out.

Can you now solve for AD?

Math Is Fun Forum

#1 2010-06-24 17:17:56

Geometry: grade 11 problem#4

#2 2010-06-24 17:23:08

Re: Geometry: grade 11 problem#4

#3 2010-06-24 17:43:27

Re: Geometry: grade 11 problem#4

#4 2010-06-29 03:11:41

Re: Geometry: grade 11 problem#4

#5 2010-06-29 09:25:06

Re: Geometry: grade 11 problem#4

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