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Topic: Ionic Equilibirum - Solubiliy Product  (Read 3297 times)

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Offline novice

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Ionic Equilibirum - Solubiliy Product
« on: May 25, 2007, 06:09:00 AM »
Hi everyone, just have a question that I have spent ages trying to solve without success.

What is the wight of Mg(2+) that must be added to 5 litres of a saturated Mg(OH)2 solution in order to lower the solubility of the Mg(OH)2 to 1/3 of its original value.

K(sp) of Mg(OH)2 at 25 degrees celcius = 1.40x10^-11
The original solubility of Mg(OH)2 i worked out to be 1.52x10^-4 M

I've tried manipulating K(sp)=[Mg2+][OH-]^2

Thankyou in advance!

PS: The answer is supposedly 0.160g

Offline Borek

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Re: Ionic Equilibirum - Solubiliy Product
« Reply #1 on: May 25, 2007, 07:02:18 AM »
What will be concentration of OH- when the solubility is three times lower than original?
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Offline novice

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Re: Ionic Equilibirum - Solubiliy Product
« Reply #2 on: May 25, 2007, 07:11:43 AM »
Is that an actual question, or is that the way to solve the problem, ascertain [OH-]

Offline Borek

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Re: Ionic Equilibirum - Solubiliy Product
« Reply #3 on: May 25, 2007, 11:26:34 AM »
It's a hint.
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