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Learn the techniques and methods for plate heat exchanger cleaning, shell and tube heat exchanger cleaning, spiral heat exchanger cleaning and other heat exchangers cleaning process.
Tuesday, April 5, 2011
Plate Heat Exchanger Cleaning Using Dry Ice
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Friday, March 4, 2011
Crude Heat Exchanger Cleaning - Tube Tech International
To learn more and also to review crude heat exchanger cleaning case studies, visit www.tubetech.com or call +44 (0)1268 786999.
Air Fin Cleaner Heat Exchanger Cleaning
Do you know how an air fin heat exchanger can be cleaned? Well, check this out. MB Technical Innovations (MBTI) from Terneuzen, a companybased in the Netherlands have developed this innovative cleaning equipment. Whilst the "Air Fin Cleaner" has principally been designed for the cleaning of heat exchanger air fins, this machine can be adapted to suit many applications requiring precise, controlled, high pressure hydro cleaning. The MBTI Air Fin Cleaner can either be electric or air powered, dependent on the client's requirements. In principle, the "Air Fin Cleaner" system applies controlled volumes of water or other cleaning media at high pressure through a specially constructed spray head, over the surfaces to be cleaned. Whilst the technique is very suited to delicate alloy air fins of a heat exchanger cooling bank, this air or electric powered cleaning device has many more capabilities in the industrial world. For further details, visit: http://airfincleaner.com
Tuesday, August 10, 2010
Better Heat Exchanger Cleaning Through Technology
The old methods are becoming more outmoded due to advancements in technology. It is inefficient to bypass the unit. Just as it would be less efficient to run your car with 2 cylinders not firing. This inefficiency, of course, also increases operational costs. It is time consuming and costly to cut the U-bends and re-weld them. Sometimes it can be difficult or impossible to get access to reattach them.
Some of these new methods include the ability to clean areas with limited access, and clear deposits from U-bends without ever removing them. This can sometimes be done without even taking the unit offline, and usually takes less time and results in a higher degree of defouling. In fact, many units can be restored to near-factory efficiency. For big refineries, petro-chemical plants, or power plants, this can amount to six figure savings.
The U-bends themselves also retain many deposits, and continue to be a bottleneck to the system. Full replacement carries the cost of completely replacing equipment that, other than the heat exchanger tube fouling, is still in working order. This method also requires the unit be taken offline for the full duration of replacement. obviously this carries a heavy expense and serious loss of production.
Traditional heat exchanger cleaning methods and heat exchanger cleaning equipment have changed very little over the last few decades. Pressure jetting is still the primary means used by many companies, but it is slow, inefficient, and ultimately very costly. Additionally, many companies are skeptical of newer methods, falling back on the "that's the way it's always been done," chain of logic. They are also weary of trying new techniques that are not as "proven" to be effective. Finally, many have long term tube cleaning contracts that do not allow for a change in heat exchanger cleaning technique, unless the contractor were to adopt the new methods.
Newer heat exchanger cleaning equipment and techniques are more technologically advanced, and by extension, require a higher skilled laborer than old style pressure jetting. These new developments include the ability to clean tight radius bends, clean units while keeping them in place, and even while keeping them online. It has also resulted in faster, more efficient cleaning. Many tube bundles can now be cleaned more effectively than with pressure jetting, and jobs that used to take days may now take only a few hours. Difficult to access units are now accessible with these new technologies.
Some of the technology that has been developed includes special nozzles that can be used on tight bends, laser cleaning, and new "smart" metals that respond to changes in density and pressure to prevent damage to the tubes. With these methods, jobs can be finished with less downtime, because cleaning and descaling can be done more quickly. Equipment is also less likely to be damaged in the process. Many of these new processes are safer, create less waste, use no chemicals, and have a significantly reduced environmental impact.
Photo credited to http://www.linde-gas.com.cn/International/Web/LG/CN/likelgcn.nsf/repositorybyalias/ind_other_dry_clean2/$file/ind_other_dry_Cryoclean2.jpg
Sunday, July 18, 2010
Heat exchanger tubes before cleaning using a video inspection pipe camera
Monday, April 26, 2010
Heat Exchanger Tube Bundles Inspection
Heat exchangers are used by many industries, especially in oil refineries and chemical plants. Their purpose is to exchange heat from one place to another, usually from one liquid to another liquid. The continued efficiency of this device demands regular heat exchanger inspection to determine whether or not the integrity of the equipment.Where are Heat Exchangers Found?
Most homes also have a heat exchanger of some kind. The most common household heat exchanger can be found in a refrigerator. In hot countries air conditioners are common; another kind of heat exchanger. Cars contain them too - the radiator removes the excess heat from the radiator fluid by making use of the natural airflow caused by the car's forward progress.
A similar principle applies in large industry where heat needs to be transferred from one place to another. The most common type of heat exchanger found in oil refineries and other large plants is the "shell and tube heat exchanger".
This design employs a large shell, usually a very large diameter tube that can withstand high pressures. It contains a bundle of tubes inside. The heat exchanged is from two different fluids. One fluid flows through the shell of the exchanger while the other flows through the tube bundle. The two fluids do not make direct contact with each other, but the difference in their respective heat values is changed through the indirect contact that is made.
A shell and tube heat exchanger is a complex design. The internal tubes are often of differing types and design in order to achieve different results. Some tubes may be plain while others may be finned horizontally or longitudinally. The tubes may also be composed of different materials and different thermal conductivity. They may be made from stainless steel, carbon steel, brass, copper or cupronickel, for example.
Because of their complex nature it is necessary to have a regular the equipment regularly inspected. This can determine the wall thickness of the tubes, which are subject to pitting and corrosion as well as erosion over time. The condition of the entire tube bundle can be charted and evaluated through a highly detailed inspection using a device called an Internal Rotary Inspection System.
The Internal Rotary Inspection System works through ultrasonic testing and it is non-destructive in nature. The Internal Rotary Inspection System probe has to be inserted into a tube which is then filled with water.
The Internal Rotary Inspection System probe has a small mirror that rotates and focuses an ultrasonic beam onto the wall of the tube. The mirror rotation is driven by a small turbine, which in turn is driven by water pressure as it is pumped into the tube. The Internal Rotary Inspection System probe is slowly pulled out of the tube at a rate of about one inch or 25 millimetres per second, recording the condition of the internal wall of the tube as it progresses.
The results gained from a heat exchanger inspection using an Internal Rotary Inspection System probe is generally extremely accurate. Its accuracy can be as good as to within .005 inches, or .13 millimetres. Of course, in order to gain this level of accuracy it is necessary for the heat exchanger tubes to be thoroughly cleaned down to bare metal prior to the inspection.
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Photo credited to http://picture617.bloguez.com/picture617/page190/
C. J. Rose writes on the subject of tube bundle and heat exchanger cleaning and onshore/offshore environmental safety for Sureclean, global industrial waste management experts. Topics include HP & UHP water jetting, tank/vessel cleaning, vacuum transfer/pumping, industrial painting, asbestos management/removal, HVAC/duct management, NORM management. For videos see http://www.sureclean.com/video.