Monday, August 15, 2011

Basic Design of Hydronic Freezer Panel Systems


Description:
A typical freezer application consists of an industrial sized, permanent freezer above a soil or compacted base. One issue resulting from this application involves the ground directly below the freezer heaving due to the moisture in the soil freezing. This heaving can sacrifice the integrity of the structure and should be avoided or mitigated if possible.

Solution:
To remedy the freezing and subsequent heaving of the soil, circulate hot water through piping in the soil to maintain a temperature above freezing. The ideal solution is to heat the soil enough to prevent freezing, while not causing excessive heat to transfer to the freezer itself, reducing efficiency and increasing load on the mechanical systems.

Design:
The design for the necessary supply fluid temperature is extrapolated from ASHRAE heating load calculations. The output of the surface of the soil is dependent on the freezer design. Freezers with internal temperature ranges between 20 °F and 30 °F are designed with loads of 3 BTU/h-ft², the ambient temperature is set at 50 °F directly above the soil, with a maximum ground surface temperature of 55 °F. These assumptions yield a solution that results in the soil staying above freezing (32 °F), while limiting the surface temperature of the soil as to minimize the negative effects on the freezer mechanical system. As we are not concerned with striping or stratification on the surface, as we would be in a standard heating application, designs are computed around 36” or 48” tube spacing. NOTE: The diameter and length of the tubing are irrelevant when determining a supply fluid temperature and should be selected to optimize cost, availability, and mechanical room and pumping solutions.

Results:
Empirical data shows that the resulting supply fluid temperatures within temperate climates range from 60 °F to 65 °F. With supply fluid temperatures that range close to the ground temperature, the back and edge losses from the soil are negligible. Dozens of these systems have been designed by Watts Radiant and are performing as expected for many years. The best results have been realized when combining intelligent controls that monitor ground temperatures with a heat source that harvests the waste heat produced from the freezer system. By doing this, a hydronic freeze protection system can be an attractive, simple solution that can be run with minimal cost to the owner.

-MDR

Friday, July 29, 2011

Sludge in Radiant Systems

Black sludge and other debris is often the initial sign of trouble for a hydronic system. Left untreated, corrosion will drastically shorten the life of any hydronic heating system. But how is corrosion treated? To answer this question it is important to understand what corrosion is and how it is caused. Different types of corrosion will require different types of treatment.

The most common cause is basic oxidation, or rust. Oxidation happens when oxygen, which is entrained in the water, reacts with ferrous (iron based) components. The rate in oxidation is doubled with every 18 degree rise in water temperature. Being a closed-loop radiant system, the internal water generally operates in the 100°-140°F range. Even a small amount of oxygen can cause significant corrosion. A simple field test can be used to visually verify corrosion. Partially fill a clear, clean glass with system fluid and then hold a magnet up to the side of the glass. Watch as the floating black particles migrate towards the magnate. This happens because the black particles are rust, composed mostly of iron, which is naturally attracted to the magnet.

Another fairly common cause for corrosion is an improperly balanced pH level. An ideal pH level is 7 on the pH scale, which is neither acidic nor basic. A low pH level will turn the system fluid acidic, causing the fluid to “eat away” at the ferrous components. Conversely, a high pH level is basic. Basic levels can be equally aggressive depending on the metals used. For the most part, basic pH levels do not adversely affect hydronic components themselves. Instead, a high, or alkaline, pH level tends to cause unwanted scale deposits. All the dissolved materials naturally present in the water supplied to the system will more likely precipitate out at higher pH levels, causing potential obstructions or reduced system performance over time. An example of a high pH system generally involves glycol. Most glycol based systems tend to start out more towards the basic pH range due to the inhibitors used.

The downside to glycol is the pH level is not constant and will drop as the glycol ages. Aging is a result of the glycol solution absorbing oxygen (which makes it an effective tool against oxygen permeation). A good practice to follow is to perform a yearly check of the glycol and re-fill with a new solution or add inhibitors when needed.

If the corrosion takes on the form of orange sludge, or has a pungent order, the system might be experiencing microbial growth. With water temperatures below 160 degrees, oxygen, and a food source such as glycol or sulfur rich water, microbial life can begin growing in the system. The resulting sludge is created when these microbes die. This is a particular problem with areas using artesian wells, which tend to be a good source of sulfur.

The last main cause for corrosion is electrolysis due to dissimilar metals. Because of all the trace metals present in city water, the possibility of these different metals reacting with each other and various system components is fairly significant. Metallics suspended in water create an excellent electrical conductor, increasing the chance of corrosion in systems with high ferrous content.

The best solution to any of these conditions is to ensure the system has been properly treated. To better evaluate the situation and determine which problems are causing the corrosion a fluid test should be performed. Companies which conduct these tests will be able to determine the nature and root-cause of the corrosion as well as offer a means of correction. Most “cures” include adding a specially formulated additive to the system. Although these additives will cure the current corrosion issues they won't eliminate the need for regular system maintenance and fluid checks. Inspect the hydronic system before the beginning of each heating season and take the necessary steps to ensure a corrosion-free season!


Christopher Campfield
Watts Radiant System Designer

Wednesday, October 6, 2010

Balanced Circuit Lengths

Q: In a hydronic system, should I keep all of the circuit lengths the same?

A: Most of the time, yes.

There are differing opinions on the need to keep balanced circuit lengths when designing and installing a hydronic system. The primary goal in any hydronic zone is to keep the flows of all the individual circuits the same, thereby creating equal temperature drops and equal heat from each circuit.

In the olden days, prior to circulators, gravity fed hydronic systems were sized in such a way that the natural balance of the system dictated the flow. These systems were very complicated to design and install, but were (in theory) self-balancing and required little to no adjustment.

With the introduction of modern hydronic circulators and flow controls, the systems became much more forgiving to design flaws. Circuits of varying lengths can be mated to a single manifold with flow controls, then balanced out to provide equal flows throughout the system. However, there is a tradeoff: balancing the systems can add a significant labor cost to both installation and maintenance. This may not be a huge deal with a single zone or 2-3 circuits, but with larger zones and more circuits, this becomes quite the daunting task for the installer. Also, if you're using a single manifold with actuators to feed multiple zones, having equal circuit lengths may not apply.

Do circuits need to be the same length? Technically, no. However, when a system is designed and installed with equal length circuits, the payoff is a more stable, self-balancing system that will require less maintenance and adjustment over it's lifespan.

-MDR

Thursday, June 17, 2010

RadiantWorks Professional - New Version w/ April 1 Pricing


RadiantWorks Professional version 2010.02.001 has been released, and can be downloaded from the RadiantWorks page on the Watts Radiant site.

The pricing in RadiantWorks has been updated to reflect the July 1 price guide. The software will now also have the ability to quote the FlexPlate and R-flex product lines.

To install the update, just download the .exe file from the site, and it will install over the old version. Your settings and projects will not be erased or moved with the update.

For more information regarding this or other Watts Radiant products, please visit the RadiantWorks page or call 800-276-2419.

Friday, June 4, 2010

Watts Radiant introduces FlexPlate,™ a revolutionary NEW under floor heating plate.


The primary material in the plate is a specially processed natural graphite giving FlexPlate unique heat conduction properties. Extensive performance testing indicates FlexPlate will outperform the industry standard aluminum plates. This increase in performance maximizes the thermal efficiency of any under floor radiant system through the use of lower input water temperatures.

In some cases FlexPlate will permit the use of lower temperature sources such as modulating-condensing boilers, ground-source heat pumps and solar thermal. FlexPlate is light weight, flexible, easy to cut to length, and features a simple staple-up installation.

For more information regarding this or other Watts Radiant products, please visit the FlexPlate Site or call 800-276-2419.

Tuesday, May 18, 2010

New Boiler Module Kit

Everything (er, almost everything) you ever wanted for the boiler room in one kit. This new kit comes complete with:
  1. Air Remover (with or without flanges) for direct connection to circulators
  2. Swivel Isolation Pump Flange complete with integrated Purge Port.
  3. Residential Boiler Fill Fitting (RBFF).

Each of these items are designed to make installation and initial system fill easier, faster, and trouble free. The new RBFF is a new twist on an old concept. Each RBFF fitting allows for fast and easy isolation of the system expansion tank, a drain valve for easy purging or filling, and a 30 psig pressure gauge for quick and easy check of the system’s current pressure.






DESCRIPTIONQTYMODEL #ORDER #
3/4" Boiler Module1HP-BHM-7581013752
1" Boiler Module1HP-BHM-10081013745
1 1/4" Boiler Module1HP-BHM-12081013746

Friday, March 19, 2010

Watts Radiant introduces a NEW compact, lightweight PEX Unwinder.

Watts Radiant introduces a new compact, lightweight unwinder for RadiantPEX+ and RadiantPEX-AL.

This sturdy unwinder is collapsible and comes complete with its own carrying bag. Each unwinder comes fully assembled and can be secured to the ground or floor for smooth unwinding. The unwinder measures 10"x 36"x6" when folded, and handles coils up to 1".


For more information regarding this or other Watts Radiant products, please visit our website at www.wattsradiant.com or call 800-276-2419