Condenser Water Treatment

Water used in cooling towers and evaporative condensers must be managed to control scale, corrosion, mineral concentration, and biological growth.

Evaporation removes water from the system but leaves most dissolved minerals behind. As evaporation continues, those minerals become more concentrated in the circulating water.

Proper condenser-water treatment combines water monitoring, makeup water, blowdown, chemical treatment, and system controls to maintain water quality and protect heat-transfer surfaces.

What You Will Learn

By the end of this lesson you should be able to:

1

Explain why condenser-water treatment is necessary.

Describe how evaporation increases the concentration of dissolved minerals and other contaminants.

2

Explain how scale forms.

Recognize that increasing mineral concentration can cause deposits to form on heat-transfer surfaces.

3

Explain why corrosion must be controlled.

Recognize how poor water chemistry can damage piping, condenser surfaces, and cooling-tower components.

4

Explain conductivity and pH monitoring.

Recognize how these measurements help evaluate condenser-water conditions.

5

Explain makeup water and blowdown.

Describe how fresh water enters the system and concentrated water is removed.

6

Explain computerized water-treatment control.

Describe how sensors, controllers, chemical-feed equipment, and automatic blowdown can work together.

Why Does Condenser Water Need Treatment?

Cooling-tower and evaporative-condenser systems continually expose circulating water to outdoor air and evaporation.

As water evaporates, the water itself leaves the system as vapor, but most dissolved minerals remain behind.

Over time, the concentration of those minerals increases unless some concentrated water is removed and replaced with fresh makeup water.

Technician Point

Evaporation removes water, not the dissolved minerals carried by that water.

This is why mineral concentration increases in a recirculating condenser-water system.

Cooling-Tower Water Management

Cooling-tower water management diagram showing circulating water, evaporation, makeup water, blowdown, basin water and mineral concentration.

Figure 1. Cooling-tower water management balances evaporation, makeup water, blowdown, and circulating-water quality.

The goal is not simply to keep enough water in the system. The water must also remain suitable for use in the condenser-water loop.

Evaporation Concentrates Minerals

1

Fresh Water Enters

Makeup water contains naturally occurring dissolved minerals.

2

Water Evaporates

Some circulating water leaves the system as water vapor.

3

Minerals Remain Behind

Most dissolved minerals stay in the circulating water.

4

Concentration Increases

Repeated evaporation increases the concentration of dissolved solids.

Scale

Scale forms when dissolved minerals come out of solution and deposit on system surfaces.

These deposits can build up on condenser tubes, piping, tower fill, spray nozzles, and other water-contact surfaces.

Clean Heat-Transfer Surface

Heat can move efficiently through the metal surface between refrigerant and cooling water.

Scaled Heat-Transfer Surface

Mineral deposits create an insulating layer that reduces heat transfer.

Scale Hurts Efficiency

Scale does not need to completely block a tube to create a problem.

Even a relatively thin layer can increase resistance to heat transfer and make the condenser work harder.

Corrosion

Water chemistry can also attack metal surfaces.

Corrosion can damage condenser tubing, piping, pumps, cooling-tower basins, and other components in the water circuit.

Water Treatment Must Balance Two Risks

Too much mineral concentration can promote scale.

Poor chemistry can also promote corrosion.

pH

pH is a measure of how acidic or alkaline the condenser water is.

As water evaporates and system chemistry changes, pH can also change.

Maintaining an appropriate pH range is part of controlling both corrosion and scale formation.

pH Is a Chemistry Indicator

pH does not measure mineral concentration directly, but it provides important information about the chemical condition of the water.

Conductivity

Conductivity is a useful way to monitor the concentration of dissolved ionic material in condenser water.

As dissolved solids become more concentrated, conductivity generally increases.

1

Water Evaporates

The volume of water in the system decreases.

2

Dissolved Solids Remain

Minerals and other dissolved material stay in the recirculating water.

3

Conductivity Increases

The controller can use this change as an indication that dissolved solids are becoming more concentrated.

Makeup Water

Water is continuously lost from cooling-tower and evaporative-condenser systems through evaporation, drift, and blowdown.

Fresh water must be added to replace those losses. This replacement water is called makeup water.

Water Leaves the System

Evaporation, drift, and blowdown reduce the amount of water remaining in the circulating loop.

Makeup Water Enters

Fresh water restores the proper operating water level.

Blowdown

If makeup water were added only to replace evaporated water, dissolved minerals would continue becoming more concentrated.

Blowdown removes a controlled amount of concentrated circulating water from the system.

Fresh makeup water then replaces the discharged water.

Concentrated Water

Mineral concentration increases as evaporation continues.

Blowdown

A portion of concentrated water is discharged.

Makeup Water

Fresh water enters to replace the discharged water.

Important

Blowdown is not simply water waste.

It is a controlled water-management process used to limit the concentration of dissolved solids.

Chemical Treatment

Water-treatment chemicals may be added to help control scale, corrosion, and biological growth.

The exact treatment program depends on the water chemistry, system materials, operating conditions, and equipment design.

Scale Control

Treatment can help reduce the tendency of dissolved minerals to form deposits on heat-transfer surfaces.

Corrosion Control

Treatment can help protect metal surfaces from chemical attack.

Biological Control

Water-treatment programs may also control algae, bacteria, slime, and other biological growth.

Computerized Condenser Water Treatment

Modern condenser-water systems can use computerized controllers to continuously monitor water conditions and operate treatment equipment automatically.

Computerized condenser water treatment system showing controller, sensors, conductivity monitoring, chemical feed pumps, treatment tanks and automatic blowdown valve.

Figure 2. A computerized water-treatment system can monitor water chemistry and automatically control blowdown and chemical feed.

A typical control system may receive information from conductivity, pH, oxidation-reduction potential, temperature, flow, or other sensors depending on the installation.

The controller can then operate valves and chemical-feed equipment based on the water-treatment program.

How an Automated Treatment System Works

1

Sensors Measure Water Conditions

Water-quality sensors provide information to the treatment controller.

2

The Controller Evaluates the Readings

The measured conditions are compared with programmed control limits.

3

Control Outputs Operate

The controller can operate blowdown valves, chemical pumps, alarms, or other treatment devices.

4

Water Conditions Are Adjusted

The treatment system continues monitoring and correcting conditions as required.

Automatic Conductivity Blowdown

Conductivity can be used to control blowdown automatically.

As mineral concentration increases, conductivity rises. When the measured conductivity reaches the programmed limit, the controller can open a blowdown valve.

Conductivity Rises

Dissolved solids have become more concentrated.

Controller Opens Blowdown Valve

Concentrated circulating water is discharged.

Makeup Water Enters

Fresh water replaces the discharged water.

Conductivity Decreases

Dissolved solids are diluted toward the desired operating range.

Automatic Chemical Feed

Computerized controllers may also operate chemical-feed pumps.

These pumps meter treatment chemicals from storage containers into the circulating condenser-water system.

Controller

Determines when treatment is required based on programmed logic and sensor information.

Chemical Feed Pump

Delivers a controlled amount of treatment chemical into the water circuit.

Controlled Feed Matters

Water-treatment chemicals should not simply be added without control.

The treatment program must maintain the required water chemistry while avoiding excessive or insufficient chemical feed.

Water Treatment Protects Heat Transfer

Condenser-water treatment is not separate from refrigeration-system performance.

The condition of the water directly affects the condenser’s ability to reject heat.

Clean Heat-Transfer Surfaces

Allow efficient heat transfer between the refrigerant and condenser water.

Fouled Heat-Transfer Surfaces

Scale, corrosion products, or biological deposits can interfere with heat transfer and water flow.

Think of Water Treatment as Condenser Maintenance

Poor water treatment can eventually become a refrigeration-system performance problem.

Put the Concepts Together

1

Evaporation removes water while leaving most dissolved minerals behind.

2

Increasing mineral concentration can contribute to scale formation.

3

Water chemistry must also be controlled to reduce corrosion.

4

Conductivity provides an indication of dissolved ionic concentration.

5

pH provides information about the chemical condition of the water.

6

Blowdown removes concentrated circulating water.

7

Makeup water replaces water lost through evaporation, drift, and blowdown.

8

Chemical treatment can help control scale, corrosion, and biological growth.

9

Computerized controllers can automate monitoring, blowdown, chemical feed, and alarms.

10

Proper water treatment helps preserve condenser heat-transfer performance.

CHECK YOUR UNDERSTANDING

Can You Explain Condenser Water Treatment?

You should be able to answer these questions before continuing.

1. Why do dissolved minerals become more concentrated in cooling-tower water?

2. What is scale?

3. How can scale affect condenser performance?

4. Why must corrosion be controlled?

5. What does pH tell us about condenser water?

6. What does conductivity indicate?

7. What is makeup water?

8. What is blowdown?

9. Why is fresh makeup water added after blowdown?

10. What are three general problems chemical treatment may be used to control?

11. What types of equipment can a computerized water-treatment controller operate?

12. How can conductivity be used to control automatic blowdown?

What You Should Have Learned

1

Cooling-tower and evaporative-condenser water requires ongoing treatment and monitoring.

2

Evaporation increases the concentration of dissolved minerals in circulating water.

3

Scale can reduce heat transfer by insulating condenser surfaces.

4

Corrosion can damage condenser-water system components.

5

Conductivity and pH are useful water-quality measurements.

6

Blowdown removes concentrated water and makeup water replaces system losses.

7

Chemical treatment can help control scale, corrosion, and biological growth.

8

Computerized controllers can automate water monitoring and treatment functions.

9

Good condenser-water treatment supports efficient heat rejection and reliable system operation.

Control the Water to Protect the Condenser

A recirculating condenser-water system constantly changes as water evaporates and fresh water enters.

Successful water treatment manages those changes through monitoring, blowdown, makeup water, and chemical treatment.

Monitor · Control Concentration · Treat the Water · Protect Heat Transfer