April 26, 2024, 04:24:56 AM
Forum Rules: Read This Before Posting


Topic: Combusting metallic magnesium  (Read 1529 times)

0 Members and 1 Guest are viewing this topic.

Offline finndingnemo

  • New Member
  • **
  • Posts: 5
  • Mole Snacks: +0/-0
Combusting metallic magnesium
« on: September 27, 2020, 11:06:25 AM »
"After combusting 1,321 g of metallic magnesium, 2,107 g of solid was formed. What was the mass percentage of magnesium nitride in the product mixture? Submit your response in mass percents with one decimal, without typing the unit."

I really am confused of all that is being asked, sorry.


Offline AWK

  • Retired Staff
  • Sr. Member
  • *
  • Posts: 7979
  • Mole Snacks: +555/-93
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #1 on: September 27, 2020, 11:41:16 AM »
When you burn magnesium in the air, not only magnesium oxide is formed, but also magnesium nitride, and you get a mixture of both. If only magnesium oxide was formed, its weight would be 2.19 g.
AWK

Offline chenbeier

  • Sr. Member
  • *****
  • Posts: 1348
  • Mole Snacks: +102/-22
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #2 on: September 27, 2020, 11:42:42 AM »
First of all, you should do some work by yourself.

1. Which elements (gases) mainly in the air?
2. What reaction take place if you burn something?
3. In the case of Magnesium which products are formed, develop the equation for that.
4. Develop a combinded equation containing x and y of the elements.

Offline Corribus

  • Chemist
  • Sr. Member
  • *
  • Posts: 3483
  • Mole Snacks: +530/-23
  • Gender: Male
  • A lover of spectroscopy and chocolate.
Re: Combusting metallic magnesium
« Reply #3 on: September 27, 2020, 11:46:53 AM »
When you burn magnesium in the air, not only magnesium oxide is formed, but also magnesium nitride, and you get a mixture of both.
Do you?

What men are poets who can speak of Jupiter if he were like a man, but if he is an immense spinning sphere of methane and ammonia must be silent?  - Richard P. Feynman

Offline finndingnemo

  • New Member
  • **
  • Posts: 5
  • Mole Snacks: +0/-0
Re: Combusting metallic magnesium
« Reply #4 on: September 27, 2020, 11:51:49 AM »
First of all, you should do some work by yourself.

1. Which elements (gases) mainly in the air?
2. What reaction take place if you burn something?
3. In the case of Magnesium which products are formed, develop the equation for that.
4. Develop a combinded equation containing x and y of the elements.

I mean, I understand that I am burning Mg and that I have N and O also reacting there. On the other side I have Mg3N2 and MnO as the outcomes. But my calculations about the weight make no sense. Thank you for replying, though.

Offline AWK

  • Retired Staff
  • Sr. Member
  • *
  • Posts: 7979
  • Mole Snacks: +555/-93
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #5 on: September 27, 2020, 11:56:07 AM »
When you burn magnesium in the air, not only magnesium oxide is formed, but also magnesium nitride, and you get a mixture of both.
Do you?
True, but it is not found in general chemistry textbooks. .
AWK

Offline AWK

  • Retired Staff
  • Sr. Member
  • *
  • Posts: 7979
  • Mole Snacks: +555/-93
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #6 on: September 27, 2020, 11:57:30 AM »
First of all, you should do some work by yourself.

1. Which elements (gases) mainly in the air?
2. What reaction take place if you burn something?
3. In the case of Magnesium which products are formed, develop the equation for that.
4. Develop a combinded equation containing x and y of the elements.

I mean, I understand that I am burning Mg and that I have N and O also reacting there. On the other side I have Mg3N2 and MnO as the outcomes. But my calculations about the weight make no sense. Thank you for replying, though.
You need two equations for masses and moles.
AWK

Offline chenbeier

  • Sr. Member
  • *****
  • Posts: 1348
  • Mole Snacks: +102/-22
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #7 on: September 27, 2020, 12:03:02 PM »
When you burn magnesium in the air, not only magnesium oxide is formed, but also magnesium nitride, and you get a mixture of both.
Do you?

I did some years ago and the product given to water had a slight smell of ammonia.

Offline finndingnemo

  • New Member
  • **
  • Posts: 5
  • Mole Snacks: +0/-0
Re: Combusting metallic magnesium
« Reply #8 on: September 27, 2020, 12:04:41 PM »
First of all, you should do some work by yourself.

1. Which elements (gases) mainly in the air?
2. What reaction take place if you burn something?
3. In the case of Magnesium which products are formed, develop the equation for that.
4. Develop a combinded equation containing x and y of the elements.

I mean, I understand that I am burning Mg and that I have N and O also reacting there. On the other side I have Mg3N2 and MnO as the outcomes. But my calculations about the weight make no sense. Thank you for replying, though.
You need two equations for masses and moles.

Could you elaborate?

I don't know how to form the correct equation to get the Mg3N2 and MgO. Like:

5 Mg + O2 + N2 = 2 MgO + Mg3N2?

(Look guys, I decided to take chem as my minor in university, while marketing is my major. My last chem studies were in 2008, in high school. So my knowledge is what it is. It's been only three weeks now.)

Offline AWK

  • Retired Staff
  • Sr. Member
  • *
  • Posts: 7979
  • Mole Snacks: +555/-93
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #9 on: September 27, 2020, 12:09:10 PM »
Write down separate reactions for oxide and nitride.
AWK

Offline finndingnemo

  • New Member
  • **
  • Posts: 5
  • Mole Snacks: +0/-0
Re: Combusting metallic magnesium
« Reply #10 on: September 27, 2020, 12:12:03 PM »
2 Mg + 02 = 2 MgO or is it just Mg + O = MgO?

3Mg + N2 = Mg3N2

Then what?

Offline AWK

  • Retired Staff
  • Sr. Member
  • *
  • Posts: 7979
  • Mole Snacks: +555/-93
  • Gender: Male
Re: Combusting metallic magnesium
« Reply #11 on: September 27, 2020, 12:23:08 PM »
Divide the magnesium into two parts: the one in the oxide and that in the nitride (I prefer moles). Then set the second equation for the mass of the mixture.
AWK

Offline finndingnemo

  • New Member
  • **
  • Posts: 5
  • Mole Snacks: +0/-0
Re: Combusting metallic magnesium
« Reply #12 on: September 27, 2020, 12:32:26 PM »
Ah, I give up, it's only one question in the set. But thanks for taking the time, I really appreciate it.

Offline Borek

  • Mr. pH
  • Administrator
  • Deity Member
  • *
  • Posts: 27664
  • Mole Snacks: +1801/-410
  • Gender: Male
  • I am known to be occasionally wrong.
    • Chembuddy
Re: Combusting metallic magnesium
« Reply #13 on: September 27, 2020, 01:22:38 PM »
Assume x grams of Mg reacted with oxygen, and y grams of Mg reacted with nitrogen.

x+y=1.321g - this one is obvious, isn't it?

Can you express mass of the combined product mixture using x, y?

That will yield two equations in two unknowns, easy to solve.
ChemBuddy chemical calculators - stoichiometry, pH, concentration, buffer preparation, titrations.info

Sponsored Links