Question

A geologist is extracting iron from its ore in a blast furnace. In this process, solid...

A geologist is extracting iron from its ore in a blast furnace. In this process, solid iron(III) oxide is reacted with carbon monoxide, producing molten iron and carbon dioxide.

a) Write the complete balanced equation.

b) When this reaction is done, the percent yield of pure iron is only 78%. In order to produce 245 kg of iron, how many kilograms of iron(III) oxide I need to start with?

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

459 Upon 1) Fe₂O4 + 400 – 3te & 4602 moles of Fe- maps (Ing) = 245 x 10 * - 4.397 103 notes molar maps 55.8 Hield is molex of

If you have any questions please comment

If you satisfied with the solution please rate it thanks

Add a comment
Know the answer?
Add Answer to:
A geologist is extracting iron from its ore in a blast furnace. In this process, solid...
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
  • In a blast furnace, Iron (III) oxide reacts with coke (carbon) to produce molten iron and...

    In a blast furnace, Iron (III) oxide reacts with coke (carbon) to produce molten iron and carbon monoxide. Fe2O3 + 3C = 2Fe + 3CO. How many kg of iron would be formed from 125 kg of Fe2O3?

  • Blast furnaces extract pure iron from the iron(III) oxide in iron ore in a two step...

    Blast furnaces extract pure iron from the iron(III) oxide in iron ore in a two step sequence. In the first step, carbon and oxygen react to form carbon monoxide: 2C (s) + O2 (g) → 2CO (g) In the second step, iron(III) oxide and carbon monoxide react to form iron and carbon dioxide: Fe2O3 (s) + 3CO (g) → 2Fe (s) + 3CO2 (g) Write the net chemical equation for the production of iron from carbon, oxygen and iron(III) oxide....

  • Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs:...

    Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs: Fe2O3(s) + 3CO(g) --> 2Fe(s) + 3CO2(g) (a) Is this a redox equation? State why it is or why it is not. (b) If 175 kg of iron ore (Fe2O3) is reacted with excess carbon monoxide (CO), what is the theoretical yield (amount in kg) of iron metal (Fe)? (c) If the actual yield of iron metal is 109 kg, what is the percent...

  • Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs:...

    Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs: Fe2O3(s) + 3CO(g) --> 2Fe(s) + 3CO2(g) (a) Is this a redox equation? State why it is or why it is not. (b) If 175 kg of iron ore (Fe2O3) is reacted with excess carbon monoxide (CO), what is the theoretical yield (amount in kg) of iron metal (Fe)? (c) If the actual yield of iron metal is 109 kg, what is the percent...

  • Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs:...

    Iron metal is made from iron ore in a blast furnace, were this chemical reaction occurs: Fe2O3(s) + 3CO(g) --> 2Fe(s) + 3CO2(g) (a) Is this a redox equation? State why it is or why it is not. (b) If 175 kg of iron ore (Fe2O3) is reacted with excess carbon monoxide (CO), what is the theoretical yield (amount in kg) of iron metal (Fe)? (c) If the actual yield of iron metal is 109 kg, what is the percent...

  • During the purification of iron in a blast furnace, the impurity tetraphosphorus decoxide

    During the purification of iron in a blast furnace, the impurity tetraphosphorus decoxide, P4O10 (1), reacts with solid calcium oxide to produce molten calcium phosphate or slag. Write the balanced equation for this reaction. Include physical states. equation: If the furnace initially contained 24.9 kg of solid calcium oxide and 13.3 kg P,0,.(1), how many kilograms of calcium phosphate were produced during the purification of the iron? mass of calcium phosphate: _______ 

  • In a blast furnace, coke, which is solid carbon, reacts with O2(g) to form carbon monoxide....

    In a blast furnace, coke, which is solid carbon, reacts with O2(g) to form carbon monoxide. The carbon monoxide then reacts with Fe2O3(s) to produce solid iron and carbon dioxide. Which of the following is the balanced equation for the reaction of carbon monoxide with Fe2O3(s)?

  • Q2) Hematite, Fe2O3, is an important ore of iron. The free metal is obtained by reacting...

    Q2) Hematite, Fe2O3, is an important ore of iron. The free metal is obtained by reacting hematite with excess carbon monoxide, CO2, in a blast furnace. Carbon dioxide is formed in the furnace by partial combustion. The unbalanced reaction is: Fe 0; (3) + CO(g) + Fe (8) + CO2(g) How many grams of iron can be produced from placing 1.50 kg of Fe,0, in a blast furnace?

  • solid iron 3 oxide reacts with carbon monoxide gas to produce solid iron reacted carbon dioxide...

    solid iron 3 oxide reacts with carbon monoxide gas to produce solid iron reacted carbon dioxide gas how much in grams of iron metal is produced if detect 156.8 g of iron 3 oxide with 36.6 g of carbon monoxide

  • Iron is extracted from iron ore (aka iron(III) oxide) by reacting it with carbon monoxide. Carbon...

    Iron is extracted from iron ore (aka iron(III) oxide) by reacting it with carbon monoxide. Carbon dioxide is a by-product of this reaction. Suppose you are involved in the design of a steel plant and are concerned about its environmental impact. You need to know not only the amount of iron you can extract from the ore supplied, but also the amount of carbon dioxide released into the atmosphere during the production. What mass of carbon dioxide (in kg) will...

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