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We have the circle $(x-a)^2 + (y-a)^2 = a^2$ (which always is tangent to both of the axes). There are 4 of these circles which are tangent to the circle $x^2+y^2=2$. Get the 2 positive values for $a$ at which the circles are tangent (make a sketch to find the point of tangency).

Can anyone help me with this, I have no clue how to exactly get the values of $a$.

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    Did you follow the suggestion to make a sketch? What did you learn from it?2012-11-01
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    I did, it didn't really help me2012-11-01
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    What do you know about the center of the circle $(x-a)^2 + (y-a)^2 = a^2$ and it's radius? You want two positive values of $a$ such that the corresponding circles touch the circle $x^2+y^2=2$ (for which the center is ___ and radius ____). *Now, you need to clarify whether the "touching" means tangency (one point in common) and/or intersection (overlapping, with two points in common).*2012-11-01
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    It means tangency, not intersection.2012-11-01
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    If you understand the answer to this question, you should be able to draw and make sense of the sketch - which has a natural axis of symmetry and on which you should mark the centres and radii of your circles. Have you managed to create separate sketches for the four circles mentioned (now an answer has been given)? Because a good sketch makes this kind of question a whole lot easier for most people.2012-11-01

1 Answers 1

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To touch externally, the distance between the centres = the sum of the radii.

So, $(a-0)^2+(a-0)^2=(|a|+2)^2$

(i)$\implies 2a^2=a^2+4|a|+4\implies a^2-4|a|-4=0$

As $a\ge0,a^2-4a-4=0, a=2\pm2\sqrt2$

As $a\ge0,a=2+2\sqrt2$

alternatively,(ii) $2a^2=(a+2)^2\implies \sqrt2a=a+2 $ as $a>0,a+2>0$ $\implies(\sqrt2-1)a=2 \implies a=\frac 2{\sqrt2-1}=2(\sqrt2 +1)$

To touch internally, the distance between the centres = the difference of the radii.

So, $(a-0)^2+(a-0)^2=(|a|-2)^2$

(i)$a^2+4|a|-4=0$

As $a>0,a^2+4a-4=0,a=-2\pm2\sqrt 2$

So, $a=2\sqrt2-2$

alternatively,(ii) $2a^2=(a-2)^2$

$\implies \sqrt2a=a-2$ if $a\ge 2$

$\implies (\sqrt2-1)a=-2\implies a=-\frac{2}{\sqrt 2-1}<0<2$ which is impossible.

$\implies \sqrt2a=2-a$ if $a< 2$

$\implies a(\sqrt2+1)=2\implies a=2(\sqrt 2-1)$

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    How are these 4 circles? You have 2 values of $a$, but you get 4 circles.2012-11-01
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    @ZafarS, there are $2$ negative values of $a$ namely $2-2\sqrt2, -(2+2\sqrt2)$, but the question says:"Get the 2 positive values for $a$".2012-11-01
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    So the other answers would be $2-2\sqrt{2}$ and $-2\sqrt{2}-2$?2012-11-01
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    @ZafarS, yes, exactly $4$ distinct values.2012-11-01
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    I have another question. What does 'touch externally' and 'touch internally' mean?2012-11-01
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    @ZafarS, please have a look into : http://www.scruffs.shetland.co.uk/files/tcirc.htm2012-11-01
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    Extremely handy link, I thank you sir!2012-11-01
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    Why are you squaring everything?2012-11-01
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    @ZafarS, observe that the Left Hand Side $(a-0)^2+(a-0)^2$ is the square of the distance. http://freespace.virgin.net/hugo.elias/routines/r_dist.htm2012-11-01
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    But in the other link you sent me, there was nothing about squaring at all?2012-11-01
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    @ZafarS, they have extracted the square root=the distance and please find the alternative approach in the edited answer.2012-11-01
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    Thank you very much, you have done a terrific job! I understand it.2012-11-01