Question

Some Calculations You started out with a known amount of harium chloride and sodium sulfate. How much solid product should yo

how do you do this ?

Do the Reaction Set up a hot water bath, Measure out 0.5 g of barium chloride, put it in a test tube, and dissolve it in a fe

0 0
Add a comment Improve this question Transcribed image text
Answer #1

you can say that 1 mole of barium chloride will react with 1 mole of sodium sulfate to precipitate 1 mole of barium sulfate.

However, you have to no worry regarding that here as you're going to calculate the concentrations of the two reactants in the resulting solution.

Now, the total volume of the resulting solution will be

10 mL + 10 mL = 20 mL

This generally means that you're doubling the volume of the two solutions with keeping the number of moles of the two solutes constant, so you can say that the concentrations of the two solutions will be halved.

The two ions that are of interest here are the barium cations, Ba2+, and the sulfate anions, SO2−4.

Since both of them are produced in 1:1 mole ratios in their respective solutions.

I have submitted the solution of 1st problem

Add a comment
Know the answer?
Add Answer to:
how do you do this ? Some Calculations You started out with a known amount of...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • How do I calculate the concentrations for my data sheet lab. I have not started my...

    How do I calculate the concentrations for my data sheet lab. I have not started my lab yet but I just need to see how i would calculate it with absorbance. Do i just use Beer's law or is there any other method of solving the concentrations. 7. Weigh 1.45-1.55 g of copper(I) sulfate pentahydrate in a 50 mL beaker. 8. Dissolve the copper(II) sulfate pentahydrate in -15 mL of water 9. Add the aqueous solution of copper(II) to a...

  • i did the synthesis of aspirin experiment and got the data below. how do you do...

    i did the synthesis of aspirin experiment and got the data below. how do you do the theoretical yield? percent yield of the pure aspirin? DATA: Mass of Salicylic Acid: 2.034g Volume of Acetic Anhydride used in synthesis: 4.00ml Mass of filter paper: 0.196g Mass of filter paper plus Aspirin: 1.868g Mass of Aspirin: 1.672g Percent Yield of Pure Aspirin: I Experimental Procedure HAZARD: Sulfuric acid, acetic anhydride and glacial acetic acid are corrosive to the skin. They are also...

  • can anyone help me fill in the table Write the balanced equation: 2C4504 +2NaOH → Cu(OH)...

    can anyone help me fill in the table Write the balanced equation: 2C4504 +2NaOH → Cu(OH) at NaOH. Moles of CuSO4, n = M XL mol 5 x 20 Moles of NaOH, n = MxL 39.997 1225 mol Mass of CuSO4 in the solution Mass of NaOH in the solution 1.59609 009 .9 Limiting reagent Excess reagent Theoretical yield of Cu(OH)2 Mass of filter paper 3777 09 Mass of filter paper and solid product 09 1.339 09 Mass of solid...

  • for this experiment of syntheis of aspirin, was the product obtained pure (based on color)? how...

    for this experiment of syntheis of aspirin, was the product obtained pure (based on color)? how do you know? the color was white Experimental Procedure HAZARD: Sulfuric acid, acetic anhydride and glacial acetic acid are corrosive to the skin. They are also irritants, and all operations in which these substances are used should be carried out under the hood. Prepare a hot-water bath by heating a 400-ml beaker containing about 200 mL of water. 1. Use a centigram balance and...

  • Experiment 8 Conservation of Mass kussion: action: 170 Mole wt. g/mol Aqual the combined masses of...

    Experiment 8 Conservation of Mass kussion: action: 170 Mole wt. g/mol Aqual the combined masses of all the reactants that were initially present. Furthermore, we fter any chemical reaction, the total mass of new products and any left over reactants) will a predict the mass of each product that will be formed if we know the molecular weight or the formula (from which we can predict the molecular weight). As an example, consider the dissolve the two substances in water,...

  • help please! used here are for illustrative purposes. The data you obtain will be different. Note:...

    help please! used here are for illustrative purposes. The data you obtain will be different. Note: The data used DETERMINATION OF SULFATE Record all mas of double salt user EXAMPLE: The mass of double sulfate weigh 2.178 il mass measurements made in the sulfate determination. Report the mass le salt used and the mass of barium sulfate obtained. LE The beaker weighs 97.033 g: the beaker and double salt weigh 98.111 g; the Jouble salt is 1.078 g; the filter...

  • THE EMPIRICAL FORMULA OF SELECTED HYDRATES experiment PROCEDURE THIS EXPERIMENT SHOULD BE DONE IN PAIRS. 1....

    THE EMPIRICAL FORMULA OF SELECTED HYDRATES experiment PROCEDURE THIS EXPERIMENT SHOULD BE DONE IN PAIRS. 1. Available to you should be: a Büchner funnel, a rubber funnel adapter, side-arm filter flask, thick-walled rubber tubing, plastic forceps and a plastic spatula. 2. Before you turn the hotplate on, wipe the hotplate down with a damp paper towel. During this experiment you will be placing filter paper containing products directly onto the surface of the hotplate. As such, you will want to...

  • Part A 1. If you had used more methylene chloride in each step, you could have...

    Part A 1. If you had used more methylene chloride in each step, you could have extracted more caffeine. Explain why you did not. Hint - What step would have taken longer (Hint: not drying). PART A Mass of Beaker & Caffeine Mass of Beaker 167.750g 67.6809 Mass of Caffeine 0.0 75 Calculations. Show your work and circle the answers. Mass of caffeine recovered: 012919 b) Actual:.07 % caffeine recovered: a) Predicted: 9 7:213% b) Actual: 92.105% PART B Unknown...

  • can someone fill in the blanks? Procedure: (1) Reaction between sodium iodide and lead (II) nitrate:...

    can someone fill in the blanks? Procedure: (1) Reaction between sodium iodide and lead (II) nitrate: Note the appearance 1. Weigh approximately 3.55 g of Nal (0.0237) and place it in the 100 beaker. Record the exact mass in the data table below. Note the a of the Nal crystals in the observation section. 2. Add 30 mL of distilled water to the beaker containing the Nal crystals. S the solution until all of the Nal crystals have dissolved. Record...

  • Running the Reaction Add 0.100 g benzil and 0.30 mL 95% ethanol to a 3-mL conical vial. Place a s...

    Determine the theoretical yield and limiting reagent Running the Reaction Add 0.100 g benzil and 0.30 mL 95% ethanol to a 3-mL conical vial. Place a spin vane in the vial and attach an air condenser. Heat the mixture with an aluminum block (90-100°C) while stirring until the benzil has dissolved (see inset in Tech- nique 6, Figure 6.1A). Using a 9-inch Pasteur pipette, add dropwise 0.25 mL of an aqueous potassium hydroxide solution' downward through the condenser into the...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT