Floating Floc Goals
Spring 2009 Team members
Tiffany McClaskey
Ling Cheung
Tanya
Haley
Wenny Wu
Spring 2009 Goals
This semester it is imperative that we find a solution to the issue of flocs rising to the surface of the water in the sedimentation tank. The Marcala and Tamara plants are seeing a significant amount of particles rising to the surface. Last semester the theory was that the water is coming into the plant super-saturated with oxygen. Once the water enters the grit chamber and is under atmospheric pressure bubbles of oxygen begin to form. Some of these air pockets then attach to the sediment particles in the water. Flocs form around the bubbles that have not come out of the water during the time the water is in the grit chamber. Since bubbles form faster when they are attached to something (you may have noticed that your glass of faucet water develops bubbles on the sides)the idea is to put things for the bubbles to form on. Larger bubbles rise faster than small bubbles so the goal is to create the largest bubbles in the shortest amount of time. This semester we are going to look at the problem from the view of flocculation. We want the bubbles to "floc" together.
Ideas:
- Add air bubbles using suction through a small hole in the side of a down flowing pipe right before the water enters the grit chamber. The air in the water will increase the bubble size as they join these air pockets.
- Add sand to the bottom of the grit chamber simulating a back wash in a sand filter. The idea is that the dissolved oxygen in the water will form bubbles on the sand particles. Once the boyant force is greater than the connection between the bubble and the sand particle it will rise to the surface of the water.
- Add the equivalent of lamellas to the grit chamber. Bubbles will form on the underside of the lamella and eventually become large enough that they slide across the surface and float to the surface.
A contraption will be made that we will use to simulate different situations to help us determine the best course of action. This device will be made of clear PVC and have attached to it a dissolved oxygen prob, a pressure probe, suction outlet, a hole for influent water, air pump, a stir bar at the bottom and a place for the water to leave the tube. The stir bar will help us model a complete mix system. The pressure probe will allow us to know that the actual pressure is in the pipe as we decrease the pressure using the suction outlet. The DO probe will allow us to track the rate at which the oxygen leaves the water.
Several different experiments will be conducted:
- Adding air using the air pump and waiting how the extra bubbles affect the rate of decrease in Do.
- Possible adding sand to the bottom and seeing how that affects the influent water.
- Aerating the water as it flows through to a basin that is under atmospheric pressure, simulating the grit chamber.
- Once the contraption is built other experiments will likely come to mind
Literature searches into aeration and the "flocculation" of air particles in water will be conducted. The team member that finds each article will type up a summary which will be reviewed by the team.