Calculating equilibrium composition from an equilibrium constant Suppose a 500 ml flask is filled with 0.60 mol of NO₂, 0.50 mol of CO and 0.20 mol of CO₂. The following reaction becomes possible: NO₂(g) + CO(g) NO(g) + CO₂(g) The equilibrium constant K for this reaction is 0.337 at the temperature of the flask. Calculate the equilibrium molarity of NO. Round your answer to two decimal places. OM 3 مله

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O KINETICS AND EQUILIBRIUM
Calculating equilibrium composition from an equilibrium constant
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Suppose a 500. mL flask is filled with 0.60 mol of NO₂, 0.50 mol of CO and 0.20 mol of CO₂. The following reaction becomes possible:
NO₂(g) + CO(g) → NO(g) + CO₂(g)
The equilibrium constant K for this reaction is 0.337 at the temperature of the flask.
Calculate the equilibrium molarity of NO. Round your answer to two decimal places.
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Transcribed Image Text:ALEKS - Rafia Riaz - Learn M Gmail T LI www-awu.aleks.com/alekscgi/x/Isl.exe/1o_u-lgNslkr7j8P3jH-lvdw7xgLCkqMfg8yaFKbD9GafJstkYLIJnusF-WPGBj59wL0jfsBp9bMT182eRgOMk457lexjQ-WSuKU2kvA1qwtgJcuJ302?10Bw7Q... Q YouTube Maps X + Type here to search GTranslate = News Explanation O KINETICS AND EQUILIBRIUM Calculating equilibrium composition from an equilibrium constant TT College information Suppose a 500. mL flask is filled with 0.60 mol of NO₂, 0.50 mol of CO and 0.20 mol of CO₂. The following reaction becomes possible: NO₂(g) + CO(g) → NO(g) + CO₂(g) The equilibrium constant K for this reaction is 0.337 at the temperature of the flask. Calculate the equilibrium molarity of NO. Round your answer to two decimal places. Ом Check Labcorp | PreCheck S 0/3 Rafia V 圖□□ 图 Är © 2023 McGraw Hill LLC. All Rights Reserved. Terms of Use | Privacy Center | Accessibility (?) 84°F Sunny x 6:09 PM 4/12/2023 : Other bookmarks
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