Mixture Problems

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Professor Organic Chemistry Tutor, thank you for a solid introduction to Mixture Problems in AP/ General Chemistry. Everything in life uses some form of Chemistry. Mixtures problems are common in all levels of Chemistry. The equation that's given in this video is a good starting point when solving mixture problems. This is an error free video/lecture on RUclips TV with the Organic Chemistry Tutor.

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Amazing video, i used to be really scared of mixture problems, you explained it amazingly, they never mention this formula in my book, nonetheless, worked 10outta10 times. thanks a lot!

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6:37 problem 2. What is the concentration of the mixture? The mixture is 200 L (50 from the 15% alcohol solution and 150 from the 35% alcohol solution). let y = percentage of alcohol concentration of the mixture, then y 200 L = the total amount of alcohol in the mixture.
The first solution has 7.5 L of alcohol (50 x 15%) and the second solution has 52.5 L (15% x 150) and this equal to total alcohol in the mixture of y 200 L. solving for y will give the concentration of alcohol of the mixture, so 7.5 + 52.5 = y 200 or 60=y 200 or y = 6/20 or 3/10, 3/10 is the same as 30/100 or 30%. Therefore the mixture has a 30% alcohol solution. Ans 30% 10:03 alcohol solution or 60 L of alcohol is in it.

Thank you!! I took organic chemistry 20 years ago and was trying to calculate mixing solutions of 3% and 10% to get a 6% 3.5 ML solution, I need 2 ml of 3% and 1.5 ml of 10% to get my goal 6%. Thanks again :)

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This works for 10:53 as well. 60L is 3* bigger than 20L. Adding 60L of water to a 20L 28% concentration can be represented as
(0*3+28)/4
=
7% concentration

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6:27, why 32% not 28% as in the original question?

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For the first problem.
Just use 2 equation 2 unknown.
x+y=20
y=20-x. Eq. 1
0.2(x) + 0.4(y) = 0.28(20) eq. 2
Put eq. 1 in eq. 2
0.2(x) + 0.4(20-x) = 0.28(20)
x=12

Very good I highly appreciate you in indeed

Wait…what? If the student mixed 40% and 20% and ended up with 20ml of 28%
Are you saying adding 12 ml of the 20% gives him a 20 ml 32% ?
I’m confused….Did he start with a 20 ml container of 28% or did he start with a container of 20 ml of 32%?

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8:00
I quickly thought of this but cant we do "(15+35*3)/4"
for the problem? this is because 150 is 3* bigger than 50

Mass is conserved. Volumes of liquids are not necessarily. (10 L of A + 10 L of B will not necessarily produce 20 L of a mixture.) Differences can be significant. Without density data, isn't it better to use weights rather than volumes?

Hi, I get how to use the equation to solve these types of problems. However, I’m not too sure on how you came up with the equation. Could you explain how to derive the equation?

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1. 0.2x + 0.4 (20-x) = 20(0.28)
2. 50(0.15)+ 150(0.35) = 200x
3. 60(0%) + 20(28%) = 80x -----> 0 + 560 = 80x -----> x = 7%
By using the weighted average method

What is that it has to do with SAT Math?

Great
Thank you man

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Do you have a video containing questions pertaining to solute?

Could you please do a composition of mixtures video?

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Are mixture problems same as dilution problems?

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6:20 how do you get 32%?

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Will you please solve this problem? Brine is a solution of salt and water. If a tub contains 50 gallons of a 5% solution of brine, how much water must evaporate to change it to an 8% brine solution?

Thank you ! I've learned so many techniques from you..

Geez that formula is SO HELPFUL!!!!
BTW- just curious how come the % isn't converted to a decimal before multiplying? (I feel like I would do that systematically, and hinder the equation....)

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A factory has a batch of hand sanitizer with 50% alcohol content.
How much pure 100% concentration alcohol should they include in a 600mL bottle to make a 68% mixture?
I tried this question with the equation but it didnt work out, can someone explain ?

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The percent is disregarded? Or nah?

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how about if there are 3 elements in the problem

i like to use x and y for these kinds of problems

Im in 9th grade and probably bit too late...
But what grade do you give this in? 12th grade?

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6:18 where does 32% come from?

Am I supposed to be doing chemistry in calc?

Nice

For the 3rd problem c1v1=c2v2 could've been used

10:46. A student adds 60 liter of water to an alcohol solution of 20 liters and 28% alcohol .
So the student adds 0 liter of alcohol to a solution that has 5.6 liters of alcohol (20 L x 28%) TO PRODUCE 80 liters (60 +20) of an unknown PERCENTAGE of alcohol. Let that unknown % of alcohol in the mixture = R so R% (80) liters of alcohol was in the final
solution. Therefore 80 R% = 5.6 + 0 or 80 R= 5.6 or R% = 5.6/80 = 56/800 or 7/100 or 7%.
Answer: the solution now contain just 7% of alcohol.13:49

Whatever happened to the decimals in the percentages?????? Shouldn't 28% multiplied by 20 be 5.60?.........Not 560.....

you said you were making 28% and at the end you said 32%. I think you said the wrong thing at the end.

C1V1+C2V2= C3V3

why is the video so quiet/

No!!! 28% not 32%