|
Devise methods to conduct research safely and to ensure safe disposal of arsenic contaminated waste. Determine the best way to prepare and to measure very low concentrations of arsenic. Design a reactor system and data collection system that will make it possible for us to begin to optimize treatment processes for efficient and reliable arsenic removal. Determine how to create a raw water for testing. Should the raw water be created from distilled water or from tap water? What should be added to the raw water to set the ionic composition? How should pH be controlled? |
If this is the case, then a floc blanket consisting of precipitated coagulant could be an efficient reactor for arsenic removal.
Big questions to begin answering
Which coagulant, Fe(Cl)3, alum, or PACl is better at removing arsenic?
Is arsenic removal limited by the mass transfer of arsenic to a precipitated coagulant surface, or by capture of the precipitated coagulant by plate settlers and filters?
Would a floc blanket formed from coagulant precipitate enhance arsenic removal?
Does addition of a small amount of clay enhance flocculation and arsenic removal?
How can we reduce the amount of coagulant loss to the reactor walls? (contact chamber, clay)
What is arsenic removal correlated with?
|