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Introduction and Objectives

Methods

Results

 
The team had difficulty finding the correct alum dose at low temperatures and incoming turbidity this semester. The team determined a relationship between the WFP's PAC (polyaluminum chloride) dosage and the alum dose at the plant. The composition of PAC is a trade secret and its chemical formula is unknown. The relationship was determined between the percent active ingredients in PAC and alum. At the plant 48.8% of 11.1 lb/gal alum is active and 33% of 10.84 lb/gal of PAC is active. Therefore 1 ppm of PAC should have the same effects on flocculation as 0.182 mg/L alum.

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The configuration of the uniform and tapered flocculator was changed to agree with the energy dissipation model of flocculation. Previously the end of the tapered flocculator the baffle spacing was 15 cm, this resulted in a energy dissipation lower than the recommended value of 0.4 mW/kg. In order to achieve the recommended value of energy dissipation the spacing in the flocculator was changed to 13.2 cm. This value was calculated using the equation:

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AGUACLARA:epsiloncell
AGUACLARA:epsiloncell

The spacing of the uniform flocculator was altered to match the last section of the tapered flocculator so that floc break up would not occur due to shear in the uniform flocculator. The resulting energy dissipation values for the tube flocculator are:

Section

Spacing

Energy Dissipation Mw/kg

1

3.339

98.65

2

3.952

50.268

3

5.794

10.88

4

10.071

1.192

5

13.232

0.4

A turbidity profile for the uniform and tapered flocculator was determined using this alum dose. The results are inconclusive- neither configuration produced an effluent with a lower turbidity than the raw water entering the flocculator. The flocculator was clearly working as can be seen by the increase in turbidity along the profile. Flocs that were too small to settle out but large enough increase the turbidity were formed. The tapered flocculator showed slightly better effluent quality than uniform.

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