Question

Consider the following system at equilibrium where K - 1.29x10- and AH = 108 kJ/mol at 600 K. COC12() CO(g) + Cl2 ) The produ

Consider the following system at equilibrium where Kc = 77.5 and AH° = -108 kJ/mol at 600 K. CO(g) + Cl2 (6)= COCI (@) The pr

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

According to Le-chateliers honneiple, - dqHd T +41 vdp +6z de = 0 , & = extant of reaction couc,(9) 208) +66(8) ,014°108k72018) +1219) = coel(9), 11 =-108 KJ ke - [evel] ted] [elz] I Troue 4 H decreasing the temperature : And T = G d& (94) p = am

Add a comment
Know the answer?
Add Answer to:
Consider the following system at equilibrium where K - 1.29x10- and AH = 108 kJ/mol at...
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
  • Consider the following system at equilibrium where Kc = 77.5 and H° = -108 kJ/mol at...

    Consider the following system at equilibrium where Kc = 77.5 and H° = -108 kJ/mol at 600 K. CO (g) + Cl2 (g) COCl2 (g) The production of COCl2 (g) is favored by: Indicate True (T) or False (F) for each of the following: 1. decreasing the temperature. 2. increasing the pressure (by changing the volume). 3. increasing the volume. 4. adding COCl2 . 5. removing Cl2 .

  • Consider the following system at equilibrium where K. = 34.5 and AH° = -198 kJ/mol at...

    Consider the following system at equilibrium where K. = 34.5 and AH° = -198 kJ/mol at 1150 K. 2 SO2 (g) + O2(g) 2 S03 (g) The production of Soz (g) is favored by: Indicate True (T) or False (F) for each of the following: 1. decreasing the temperature. 2. increasing the pressure (by changing the volume). 3. decreasing the volume. 4. adding SO3 5. removing 02

  • Consider the following system at equilibrium where K. -2.90x10-2 and AH° = 198 kJ/mol at 1150...

    Consider the following system at equilibrium where K. -2.90x10-2 and AH° = 198 kJ/mol at 1150 K. 2 S03 (9) 2 SO2 (g) + O2 (g) The production of SO2 (g) is favored by: Indicate True (T) or False (E) for each of the following: 1. decreasing the temperature. 2. increasing the pressure (by changing the volume). 3. decreasing the volume. 4. removing S03 5. adding 0,

  • Consider the following system at equilibrium where K. = 1.80x10-2 and AH° = 10.4 kJ/mol at...

    Consider the following system at equilibrium where K. = 1.80x10-2 and AH° = 10.4 kJ/mol at 698 K. 2 HI (g) – H2 (g) +12 (g) The production of H2 (g) is favored by: Indicate True (T) or False (F) for each of the following: - - - 1. increasing the temperature. 2. increasing the pressure (by changing the volume). 3. increasing the volume. 4. adding HI 5. removing 12 . -

  • Consider the following system at equilibrium where K. = 9.52x10-2 and AH° = 18.8 kJ/mol at...

    Consider the following system at equilibrium where K. = 9.52x10-2 and AH° = 18.8 kJ/mol at 350 K. CH4 (g) + CCl4 (g) – 2 CH2Cl2 (g) The production of CH2Cl2 (g) is favored by: Indicate True (T) or False (F) for each of the following: - 1. decreasing the temperature. 2. decreasing the pressure (by changing the volume). 3. increasing the volume. 4. adding CH2Cl2 - 5. adding CC14 -

  • Consider the following system at equilibrium where Kc = 1.80×10-2and H° = 10.4 kJ/mol at 698...

    Consider the following system at equilibrium where Kc = 1.80×10-2and H° = 10.4 kJ/mol at 698 K. 2 HI (g) -->H2(g) + I2(g) The production of H2(g) is favored by: Indicate True (T) or False (F) for each of the following: ___TF 1. increasing the temperature. ___TF 2. increasing the pressure (by changing the volume). ___TF 3. increasing the volume. ___TF 4. removing HI . ___TF 5. adding I2. Consider the following system at equilibrium where Kc = 55.6 and...

  • Consider the following system at equilibrium where AH° -87.9 kJ/mol, and K 83.3 , at 500...

    Consider the following system at equilibrium where AH° -87.9 kJ/mol, and K 83.3 , at 500 K. PCI3 (g)Cl2 (g)= PCI5 (g) When 0.12 moles of PCI5 (g) are removed from the equilibrium system at constant temperature: The value of Ke The value of Qe |Kо. The reaction must Orun in the forward direction to restablish equilibrium. Orun in the reverse direction to restablish equilibrium remain the same. It is already at equilibrium The concentration of Cl2 will Submit Answer...

  • Consider the following system at equilibrium where Kc = 34.5 and H° = -198 kJ/mol at...

    Consider the following system at equilibrium where Kc = 34.5 and H° = -198 kJ/mol at 1150 K. 2 SO2 (g) + O2 (g) 2 SO3 (g) The production of SO3 (g) is favored by: Indicate True (T) or False (F) for each of the following: 1. decreasing the temperature. 2. decreasing the pressure (by changing the volume). 3. decreasing the volume. 4. removing SO3 . 5. adding O2 .

  • Consider the following system at equilibrium where Kc = 7.00×10-5and H° = 182 kJ/mol at 673...

    Consider the following system at equilibrium where Kc = 7.00×10-5and H° = 182 kJ/mol at 673 K. NH4I (s) - NH3(g) + HI (g) The production of NH3(g) is favored by: Indicate True (T) or False (F) for each of the following: ___TF 1. increasing the temperature. ___TF 2. decreasing the pressure (by changing the volume). ___TF 3. increasing the volume. ___TF 4. adding NH4I . ___TF 5. removing HI

  • Consider the following system at equilibrium where Kc = 9.52×10-2 and H° = 18.8 kJ/mol at...

    Consider the following system at equilibrium where Kc = 9.52×10-2 and H° = 18.8 kJ/mol at 350 K. CH4 (g) + CCl4 (g) goes to 2 CH2Cl2 (g) The production of CH2Cl2 (g) is favored by: Indicate True (T) or False (F) for each of the following: 1. decreasing the temperature. 2. decreasing the pressure (by changing the volume). 3. increasing the volume. 4. removing CH2Cl2 . 5. removing CCl4 .

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