In boiler systems, steam that has completed its work condenses back into liquid water called condensate. This is a high-purity, high-heat-content water that makes sense to recycle into the boiler system whenever possible to save money, water, energy, and chemicals.
Protecting your plant’s condensate return system is vital not only because it is a massive capital investment, but also because it can impact your day-to-day operations. The primary causes of destructive corrosion are carbonic acid attack and oxygen pitting. This corrosion can cause unexpected system shutdowns, affecting production timelines. Corroded systems are also less efficient, risking leaks and potentially catastrophic damage to the boiler as corrosion byproducts are carried into the feedwater.
Carbonic acid attack occurs when carbon dioxide from the steam condenses with the condensate to form carbonic acid. The carbon dioxide originates from the thermal breakdown of the carbonate alkalinity naturally present in the makeup water. Since the condensate is so pure, it requires very little dissolved carbon dioxide to lower the condensate pH into the corrosive range. The greater the makeup alkalinity, the greater the amount of carbon dioxide present in the steam, which increases the potential for carbonic acid attack in the condensate return system.
A carbonic acid attack is characterized by “grooving” of the condensate piping, which typically presents as thinning of the pipe at the threaded fitting. This same deterioration can also be spotted downstream of steam traps.
Another frequent type of corrosion is oxygen pitting, caused by dissolved oxygen in the condensate, which may occur when oxygen is not completely removed from the feedwater. Dissolved oxygen may also be present as a result of the vacuum created when steam condenses and cools, pulling oxygen-rich air into the system. Oxygen pitting is characterized by an intense, localized pitting that may or may not be covered by a tubercule. Due to the restrictive nature of oxygen pitting, it can cause rapid metal failure in a condensate system and is especially aggressive if the condensate pH is low.
An effective protection and treatment plan can be divided into five main categories: neutralizing amines, filming amines, volatile oxygen scavengers, pretreatment equipment, and treatment program monitoring.
Testing soluble and insoluble iron levels
Using condensate corrosion coupons
Testing pH levels.
It is important to test the pH levels along various points in the condensate return system to avoid low pH areas that are more prone to corrosion. If a filming amine or oxygen scavenging DEHA is used, the residual should be measured.
These methods can provide system operators who want to protect both a capital investment and their day-to-day operations with a number of protective options, but the most effective protection comes from partnering with an industry expert such as Chem-Aqua.
Chem-Aqua is a global leader in custom-designed programs for boiler, cooling, and process water systems. Since 1919, our success has been built upon our Total System Approach, providing solutions for water treatment problems and improving water system efficiencies.