The alcohol content in a 10.0 g sample of blood from a driver required 4.23 mL of 0.7654 M K2Cr2O7?

The alcohol content in a 10.0 g sample of blood from a driver required 4.23 mL of 0.7654 M K2Cr2O7 for titration. What is the percent alcohol by mass in the driver’s blood? The reaction equation is given by:

3CH3CH2OH + 2K2Cr2o7 + 8H2SO4 —-> 3CH3COOH + 2Cr2(SO4)3 + 2K2SO4 + 11H2O ethanol

Top 1 Answers

A few days ago

Hahaha

Favorite Answer

From the given reaction, we know that two moles of K2Cr2O7 would react with 3 moles of ethanol CH3CH2OH. Hence: The 10.0 g sample of blood contains:

(3/2)*(4.23ml)*(0.7654 M) = 4.86 mMole alcohol = 0.224g alcohol, which is 2.24% by mass.

I am not a genuis,can i be a *** laude, MAGna or SUmma *** laude Here in University of the Phil.?

Is there a source of money for those who are studying at PhD level?

What should I major in if I want to be a corporate/contractual lawyer?

What do you do for a living?

Making up an exam – is this fair?

University of the Pacific? San Fran State? USF?

I am a 19 year old soon to be college boy…?

DOCTORS >> MED STUDENTS AND NURSES please!!!?

The alcohol content in a 10.0 g sample of blood from a driver required 4.23 mL of 0.7654 M K2Cr2O7?

The alcohol content in a 10.0 g sample of blood from a driver required 4.23 mL of 0.7654 M K2Cr2O7?

Related Posts