Be sure to answer all parts. Industrially, vanadium metal, which is used in steel alloys, can be obtained by reacting vanadi oxide with calcium at high temperatures: 5Ca + V205-5CaO + 2V In one process, 1.540 × 10° g of V,O5 react with 2.120 x 10° g Ca. (a) Calculate the theoretical yield of V. (b) Calculate the percent yield if 769.0 g of V are obtained. % Report your answers to the correct number of significant figures.

Chemistry: Principles and Practice
3rd Edition
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Chapter4: Chemical Reactions In Solution
Section: Chapter Questions
Problem 4.103QE
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3.
Be sure to answer all parts.
Industrially, vanadium metal, which is used in steel alloys, can be obtained by reacting vanadium(V)
oxide with calcium at high temperatures:
D0:34:28
5Ca + V205-5CAO + 2V
In one process, 1.540 × 10° g of V,05 react with 2.120 × 10° g Ca.
(a) Calculate the theoretical yield of V.
g
(b) Calculate the percent yield if 769.0 g of V are obtained.
Report your answers to the correct number of significant figures.
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Transcribed Image Text:3. Be sure to answer all parts. Industrially, vanadium metal, which is used in steel alloys, can be obtained by reacting vanadium(V) oxide with calcium at high temperatures: D0:34:28 5Ca + V205-5CAO + 2V In one process, 1.540 × 10° g of V,05 react with 2.120 × 10° g Ca. (a) Calculate the theoretical yield of V. g (b) Calculate the percent yield if 769.0 g of V are obtained. Report your answers to the correct number of significant figures. K Prev 13 of 20 Next >
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A sample of 0.7560 g of an unknown compound containing barium ions (Ba2) is dissolved in water and
treated with an excess of Na,SO4. If the mass of the BaSO4 precipitate formed is 0.7029
percent by mass of Ba in the original unknown compound?
g,
what is the
%
Transcribed Image Text:Enter your answer in the provided box. A sample of 0.7560 g of an unknown compound containing barium ions (Ba2) is dissolved in water and treated with an excess of Na,SO4. If the mass of the BaSO4 precipitate formed is 0.7029 percent by mass of Ba in the original unknown compound? g, what is the %
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