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Flow Controller

Linearization and Calibration

Abstract

Experiments run in fall 2007 have indicated that the float valve can hold back head of at least 8m with less than 0.5cm 5 cm of change occurring in the flow controller water level in the first 2m 2 m of pressure. In field tests in Honduras the flow controllers have not been dosing as expected, which current lab work is aiming to correct. Data gathered in the laboratory on outflow rate has followed a linear model in the laminar flow range, but attempts to model the turbulent transition range have produced varying results. It is considered a high priority to develop a reliable model for dosing at higher flow rates, which will be used in the near future at the larger plant in Marcala, currently under constructionplants.

Keywords: Flow Controller, laminar flow, height of outflow, influent pressure, float valve

Introduction and Objectives

Constructing reliable and cost-effective solutions for water treatment in Honduras is challenging due to the lack of infrastructure. Electricity is unreliable, which has rendered modern computer-automated water treatment plants unusable, moreover the mountainous terrain sometimes makes access to materials needed for construction or repairs difficult. While it does isolate villages and their utilities, the rough topography has created an opportunity for the use of gravity-powered treatment plants. There has been success with the implementation of AguaClara researched and designed flocculators that are mixed by gravitationally-derived kinetic energy, but chemical dosing in these plants without the use of electric pumps is still inconsistent.

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Plastic bottle flow controllers have been used in Honduras for alum and chlorine dosing for several months now, and a few problems have arisen. They have been clogging and the head loss to alum dosing relationship does not appear linear. Further testing this during the fall of 2007 has been done with more precise equipment and an extra connector was removed from the flow controller to make it resemble the set up used in Honduras. The outflow to head loss relationship once again appears relatively linear in the laminar range, and it is possible that a different type of experiment should be designed to address the non-linear data from Honduras.

Other aspects of flow controller performance have also been tested this fall, including maximum inlet head allowable, water level variation in the flow controller, and corrosion resistance of the manufactured float valves. There have also been updates made to the materials used in the flow controller design.

Research Methods

Float valve corrosion test methods

  • A simple test where float valve parts were left in alum and chlorine for extended periods of time to determine corrosion effects

Flow controller body design and selection

  • Includes notes on the brainstorming that went into FCM parts selection and design

Flow versus head loss data collection in the laminar range methods

Laminar Range Test Results

Flow versus head loss data collection in the turbulent range methods

  • Experiments were conducted to establish a model for the relationship between FCM outflow and headloss associated with outflow tube position

Determining the maximum inlet shut-off pressure methods

The maximum inlet pressure that the float valve can shut off was investigated in order to determine how much head there can be between the chemical stock tanks and the flow controllers. A peristaltic pump was connected to the inlet of the flow controller, along with a pressure sensor. The outlet tube of the flow controller was plugged. The peristaltic pump was then used to pump water into the flow controller. The pressure of the water in the inlet tube, or the pressure the float valve could resist, was then measured using process controller. The maximum inlet pressure was determined using three orientations, with the float straight down giving the lever arm a 90 degree angle, partially down for a 45 degree angle, and straight out at zero degrees. This was to determine which orientation provided the greatest resistance. The pressure was also measured as a function of the height of the water level inside the flow controller. This relationship was determined for each of the different orientations by marking the water level in the flow controller at random intervals while simultaneously inserting a text flag in the Process Controller data. The text comments allowed us to show what the exact pressure was for the corresponding flow controller water level.

This data was analyzed in Excel to determine maximum shut-off pressures and change in flow controller water levels. The data for each float angle orientation was analyzed separately to determine an ideal angle to use in the AguaClara plants. The data was also manipulated to see if the water level in the flow controller would vary greatly enough to significantly impair flow controller function as a stock tank would drain in a plant.

Inlet Shut-Off Pressure Test Results

Results

Float valve corrosion test results

The corrosion test was conducted for five weeks. There was no visible corrosion to the float valve screw, pad or pin in the alum solution. After a week, the float valve placed in the chlorine solution had severe visible corrosion of the screw, but no visible corrosion of the float valve pin or pad in the chlorine solution. Although the chlorine and alum solutions were replaced every week to maintain reactivity, we were uncertain of how reliable this data would be. The flow controllers in place in Honduras are continually supplied with fresh chemicals and they are constantly monitored, so we are deferring data collection on float valve corrosion to the plant operators and engineers in Honduras.

Corrosion Test Procedures

Flow versus head loss data collection in the laminar range results

Laminar Range Test Procedures

Determining the maximum inlet shut-off pressure results

The maximum inlet pressure that the float valve could resist was determined. Float orientations of 90, 45 and zero degrees all resisted a pressure of at least 8m. A float orientation of zero degrees resisted pressures of at least 11m. All of the float orientations have a maximum inlet pressure well above the 2m needed for the AguaClara plants.

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This data was further analyzed to also determine the amount of variation in flow controller level with increasing pressure build up on the float valve.

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The level in the module changed by many centimeters during the experiment, but this was over the entire range of inlet pressure build-up. For the range that is pertinent for designing AguaClara plants, up to at most 2m, the level changed in the flow controller much less. The table below shows the total change in flow controller water level at both the highest back pressure reached, and at approximately 2m of pressure.

 

0 Degrees Float Angle

45 Degrees Float

90 Degrees Float

Water Level Change at 2m Pressure

1.2 cm

0.4 cm

0.35 cm

Total Water Level Change

2.4 cm

1.2 cm

0.9 cm

Positioning the float straight out from the valve caused the most variation in water level, while positioning it at an angle of 45 degrees or 90 degrees had about the same effect. Currently the floats are positioned at an angle somewhere between 45 degrees and 90 degrees to best fit inside a small flow controller. Assuming this positioning is kept, the variation in water level is large enough to influence the outflow by effectively causing error in the expected head loss in the system of up to 0.4cm. While this does create a discrepancy between assumed and actual head loss in the system, it is much smaller than the uncertainty caused by a draining stock tank.

Inlet Shut-Off Pressure Procedures

Conclusions and Areas for Further Research

Through this semester the Flow Control Module testing apparatus has evolved to allow more precise testing to take place. The next upgrade to our testing equipment is an automated position control, which will be capable of changing the head loss in the system automatically. This will increase the precision and quantity of data collected in the future.

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