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Jul. 08, 2024
For more How Do Heating Elements Workinformation, please contact us. We will provide professional answers.
What well coverSo, you are thinking about buying a heating element? Excellent choice.
Whether you are looking to make your radiators more efficient, or upgrade them entirely, there are countless ways you could benefit from installing a heating element.
In this heating element buying guide, well give you all the information you need to select the best element from our collection.
Benefits of a heating elementBefore we dive into the technical stuff, lets think about why you could benefit from an electric heating element.
Since heating elements are powered by the mains electricity and allow you to heat one radiator at a time, you have more control over your heating. More control means less energy wasted.
You might be thinking that electricity is more expensive than gas. But, since heating elements allow you to control individual radiators, you only heat the required rooms. This means that your energy consumption and cost is lower than heating the entire house unnecessarily with central heating.
Our thermostatic heating elements feature Bluetooth technology. This means that you can easily adjust the temperature from a mobile or smart device. You can also program an unlimited amount of heat cycles to suit your routine.
If we are lucky enough to have a hot summer in the UK, most of us will have the heating turned off. But, the bathroom can still be quite cold and uncomfortable. Thats why heating elements are perfect for bathrooms! You can keep the bathroom at your preferred temperature and enjoy warm towels without wasting heat on the rest of the house.
Since central heating is so common in the country, it is easy to forget that some homes dont have it at all! Therefore, heating elements are perfect for this situation since they are far more efficient than other types of electric heating such as fan heaters.
How do radiator heating elements work?As we mentioned earlier, heating elements are hardwired into the mains. This must be carried out by a qualified electrician.
Once installed, the electric current flows from the mains through the element. Then, through the process of Joule heating, the element converts electrical energy into heat.
For more information about the types of elements and what they are made of, head to our guide What are heating elements?.
What is the difference between a radiator element and a towel rail element?Radiator heating elements and towel rail heating elements are exactly the same. They are long metal rods that slide into the inlet of the radiator or rail.
So, whether you are looking to turn your existing radiator or towel rail into an electric heater, you can do so with any element in our collection.
The only decision you need to make is which type of element you want. You must also decide whether you want to create an electric radiator or a dual fuel radiator. More details on that coming up!
How do I choose a heating element?There are two types of electric heating element in our range. Simple and thermostatic. You can probably guess that the difference between the two is given in the name!
Simple heating elements simply generate a heat output by converting electrical energy into heat. They are self-regulating elements.
This means that the temperature will rise to the max then regulate itself to maintain that temperature.
Please note that our simple elements are not available to purchase separately.
Thermostatic heating elements provide greater control over your heating. You can tell them apart from simple elements since they feature a round control dial.
But you dont have to control the element manually. These intelligent elements are equipped with Bluetooth technology. This makes it quick and easy to control the five temperature settings and other functions via the mobile or smart enabled device app.
Plus, if you would prefer to hide the dial to complement your decor, we also stock plenty of cable masking covers to disguise the element.
How to create a dual fuel radiatorIf you want the option to be able to use your radiator with the central heating system, and as an independent electric radiator, dual fuel heating is what you need.
In order to turn your existing radiator into a dual fuel radiator you will need a heating element and an additional connection called a Dual Fuel T-Piece.
The Dual Fuel T-Piece connects a set of plumbed valves and an electric heating element to your radiator or heated towel rail and is suitable for 15mm (1/2 BSP) inlets and valves.
For a quick and easy transition, the Milano Dual Fuel kit includes all you need to convert your radiator or towel warmer into a dual fuel setup.
For further control over your heating, you can also add an external thermostat. This will provide greater control over the room temperature.
Our stylish Milano Connect Wi-Fi Thermostats allow you to create multiple zone heating to reduce energy usage and costs.
They are also suitable for new electric heating systems or can be retrofitted to existing systems, including underfloor heating.
Plus, our excellent quality thermostats are even compatible with Google Home and Amazon Alexa!
Please note: our external thermostats are only suitable for use with simple heating elements, not thermostatic elements.
How to calculate heating element sizeIf you have purchased central heating radiators or towel radiators before, you will know that you need to calculate the heat requirements using a BTU Calculator.
The good news is, working out the size of your heating element is just as easy. Simply use the BTU Calculator as normal and the results will provide the heat requirements in BTUs and Watts.
The Wattage provided will be the total needed to heat the room to a comfortable temperature. This means that one element might be sufficient.
Or, you could install multiple radiators with elements to add up to the total Wattage.
How hot does a heating element get?As we mentioned earlier, the heat output of electric elements is measured in Watts. But if you are unfamiliar with electric heating, it can be difficult to imagine how much heat the element will provide.
So, lets use our popular Milano Windsor 600mm x mm double column radiator as an example. At Delta T50, this central heating radiator provides BTUs. This is equivalent to 987 Watts.
Therefore, the electric version of the same radiator is supplied with a W heating element. This ensures that the element is capable of providing enough heat for the required space.
Are heating elements universal?All of the radiators at BestHeating are suitable for use with a heating element from our range. In fact, most other radiators are also compatible with our electric elements.
This means that you should be able to transform your existing radiator or heated towel rail into an electric appliance.
The important requirement is that the radiator inlet is big enough for the element to slide in. All our radiators feature a ½ inlet, which is the same size as the elements.
In rare situations, the radiator body could be too small to fit an element. For example, if the radiator was 400mm wide and needed a 600W (460mm length) element to heat it correctly.
However, since the heating element is usually fed from the bottom inlet on heated towel rails and the side inlet on radiators, there should be enough space to fit the element.
Where can I install a heating element?Another great benefit of electric heating elements is that you can install them virtually wherever you want. They are very popular in bathrooms because of the ability to heat the space in the summer when the heating is off.
However, if you want to install an electric element in the bathroom, you must take the safety considerations into account. This brings us to bathroom zones.
You may be aware of bathroom zones if you have purchased a new bathroom light for example. Any electrical device used in the bathroom must be installed in the correct zone.
Ranging from zone 0 to 2, these areas measure the distance from the water source to the electrical device.
Since both types of heating elements we stock at BestHeating are rated IPX4 and above, they are safe and suitable for installing in bathroom zone 1 and 2.
For more information on bathroom safety zones, please visit our guide Can I Put An Electric Radiator In A Bathroom?.
Planning on upgrading your entire radiator? All of our electric and dual fuel radiators and electric towel rails are supplied with excellent quality heating elements. This means that you do not have to purchase one separately.
Please note: Our electric radiators and towel rails are supplied with different elements. Some of them feature a simple Rotfil heating element.
Others are supplied with a Terma MOA Blue thermostatic heating element.
Please ensure that you check the product specification to find out which element is supplied with your preferred radiator.
For example, our Windsor electric radiators feature a simple Rotfil heating element.
However, our Alpha radiators are supplied with a Terma MOA Blue thermostatic heating element as you can see below.
We hope this guide has provided all the information you need to transform your heating into an efficient electric system. For more advice, get in touch with our team via .
Ready to find the perfect heating element for your radiator?
Jess has a passion for interior design and wants to inspire people to look at radiators as home decor. She enjoys keeping on top of the latest design and heating trends to ensure the Advice Centre has all the information and inspiration homeowners need to make the best choice for them.
This article identifies different types of electric heating elements, highlights important considerations when determining a heater solution, and finally looks at some of the less obvious costs. Examples from experience as well as in-house engineering white papers are referenced throughout the article.
A heating element is a component composed of both electrically conductive as well as insulating material, designed to serve a heating purpose. Let's break that down.
Component: A heating element is more than the heating alloy alone. It is an assemblage of parts that includes a framework of insulating material as well as lead connectors. In the case of an open coil heater, for example, the heating alloy is typically held or suspended by mica or ceramic insulators. Wire terminals safely connect the heater coils to the circuit.
Electrically Conductive: The fundamental core of an electric heater is the heating element alloy within that turns electrical energy into heat energy when subjected to a current. It is the part of a heater where the electrical load occurs. When heat is produced in this way we call it Resistive Heating. It is also known as Joule Heating.
Designed to Serve a Purpose: A heating element is more than its material makeup. It is a product of design. Alloy and insulators must be manipulated to become a useful component that serves a heating purpose. The multi-talented craftsman who determines the alloy and gives the heater it forms is the heater design engineer.
The material at the heart of a heater is commonly metal in the shape of a wire, ribbon or a design etched from a metal foil. A heater may also contain ceramic, plastic, or silicone impregnated with a conductor. Choosing the best materials for the job includes a thorough understanding of material properties as well as knowing where to source the best supplies for the particular application.
All metal heating elements have physical, thermal, electrical, and metallurgical properties. These material properties are necessary considerations when choosing the best solution for an application. Temperature-dependent differences such as electrical resistance and thermal expansion will vary depending upon the material. Many heater design challenges arise as the properties of various heating element materials tend to change based on conditions.
Heating elements found in common appliances are made from metallic resistance alloys such as Fe-Cr-Al and Ni-Cr(Fe). They have the ability to produce temperatures hot enough to get the element to glow red hot, in the neighborhood of °F (600°C) and above. Heaters that operate below this range can be made from a much wider range of materials. Elements such as Copper, Nickel, Aluminum, Molybdenum, Iron, and Tungsten as well as alloys containing combinations of these elements are used.
Resistance heating alloys contain varying proportions of chemical elements depending upon the wire you order and who makes it. A Nickel base alloy we commonly use is 80 Ni, 20 Cr (80% Nickel, 20% Chromium). The proportions of its composition are different from those of 60 Ni, 16 Cr (60% Nickel, 16% Chromium), The different properties these two alloys exhibit are significant. A clever engineer capitalizes on material properties to achieve better efficiency, reliability, performance, cost, and safety in your application.
Electrically conductive heating element wire exists within a framework of electrically insulating material. Whether corrugated, coiled or straight, wire elements typically fall into one of three classifications depending on how they physically make contact with their surrounding framework. Those distinctions are referred to as either suspended, embedded, or supported. They affect how the heater is made and how heat can be transferred.
Ceramic or mica is typically used to suspend the wire at two or more points. The number of points involves tradeoffs. On one hand, we may seek to limit the number of contact points to reduce complexity, material, and manufacturing costs. On the other hand, we may seek to add points of contact to support an airflow and minimize element sag. Suspended elements transfer heat by convection and radiation. Not conduction.
In an embedded heating element, the wire is encased in an insulating material. Since it is in complete contact with its surroundings, the element can only transfer heat by way of conduction. An example of this is a cartridge heater. The heating element coil is locked inside of an insulating MgO material. The heat transfers directly from the wire coil to the MgO and on to the outer sheath that heats the platen.
This type of integration with a heater framework falls somewhere between suspended and embedded. A large amount of the heating element will be well supported at many contact points. It may in fact be a coil laying in a channel. It is not embedded in insulation material and as such the coil will have some freedom in movement. Conduction, convection, and radiation are all forms of heat transfer from a Supported element.
A specific resistance alloy from one heating element manufacturer will not necessarily exhibit the same properties when supplied by a different manufacturer. These seemingly similar products may have trace elements in addition to their namesake elements, which can drastically affect alloy properties.
Are you interested in learning more about Ptc Automotive? Contact us today to secure an expert consultation!
Trace elements come in two varieties, contaminates and enhancements. Contaminates have an undesirable effect such as shorter life and limited temperature range. Trace element enhancements are added on purpose by the manufacturer. Improvements include increased oxide layer adhesion, greater ability to hold a shape, and longer wire life at higher temperatures.
An experienced design engineer will compare alloy properties, filter through tradeoffs, and arrive at the best heating element alloy and material dimensions for the job. He will then work with production to manipulate the material into a dimensional shape and orientation that produces the best outcome for your application. A good custom heater shop is going to understand how wire and ribbon alloy producers stack up. They have their eye on the market, good vendor relationships, and favorably negotiated material prices.
Process Air Heaters are hot air components used in industrial and commercial processes. Each one is designed to work within a range of temperatures, airflows, and air pressures. Applications include drying, curing, melting, cutting, baking, heat shrinking, de-soldering, metallization, heat staking, sterilization, air scrubbing, laminating, adhesive activation, hot air curtains, and air knives.
A power flow rate temperature calculator uses a formula like Watts = SCFM x ΔT/3 to quickly determine the minimum required wattage for an application. Our visual version of this calculator helps to make the relationship among these variables more intuitive.
Open coil heaters employ electrically conductive coils commonly made from NiCr or FeCrAl and held or suspended by insulators such as ceramic or mica. They are designed to expose the heating element surface area directly to an airflow. The coil shape allows the designer to pack in a greater amount of heated surface area, increasing contact with the air.
Minimal blockage of the air (resulting in a lower air pressure drop), uniform element temperature, and reduced areas of element contact without sag are concerns of the heater design engineer. The choice of alloy, gauge, and dimensions are strategically chosen to create a custom solution based on an applications unique needs.
When conditions are predominantly convective the temperature of a helical shaped wire can be estimated in an iterative process with a spreadsheet. Click here to read Dexter Diepholz's approach.
Serpentine Technology dates back to Tutco-SureHeat origins when GTE Sylvania patented the first design. It has since been the basis for many Tutco SureHeat high-temperature products.
Serpentine is used in demanding Process Air Heater applications. Heaters that employ Serpentine Technology contain wire elements wrapped in a protruding fashion around a non-electrically conducting core. Unlike coils that would otherwise follow a uniform loop pattern down the length of a tube, Serpentine Technology introduces each loop or coil to an airflow apart from its neighboring loops.
Also unlike open coils that need to be suspended, Serpentine Technology is somewhat stiff so the elements can hold their shape around an insulating core.
Serpentine Technology uses low mass high watt density material and must be controlled carefully to avoid damage that occurs from the elements getting too hot or ramping too quickly without adequate airflow. A closed-loop set-up with a fast control loop (200ms or better) is critical to avoid overshoot in high-temperature applications.
Serpentine can be assembled in a single process air heater to produce exceptional amounts of heat energy. These heaters are often custom manufactured and referred to as Specialty Flanged Inline heaters or SFI for short. SFI heaters can be mammoth in size. In some cases, entire power facilities are built to support the electricity required to operate them. SFI is popular in the areas of combustion research, supersonic and hypersonic wind tunnel, maintenance repair and overhaul (MRO) testing, military applications, and university research. SFI heaters are replacing gas heaters in applications where the byproducts of combustion are not desirable.
Flexible heaters (also known as flex heaters) are surface heaters that can be bent to conform to the surface being heated. They can be shaped during manufacturing to fit complex geometries. Flexible heaters contain thin film, foil, or wire wound heating elements manufactured from a wide variety of alloys. They have good dialectic strength and are resistant to many chemicals.
The electrically conductive traces are either attached to a substrate or embedded (sandwiched) inside of multiple layers. They are either cut or etched by way of a chemical process to create the shape of the heating element traces. A wide variety of electrical conductors including stainless, copper, aluminum, nichrome, and more can be used. The choice of which conductor to use will primarily depend upon the desired operating temperature and product cost. Budgetary considerations may include the cost to manufacture, the cost to assemble (how do the lead wires get attached for example), and the cost of the heating element material itself.
Silicone rubber heaters contain one or more heating elements sandwiched within two pieces of vulcanized silicone rubber. The rubber is electrically insulating yet thermally conductive. The elements within are thin foil alloys that have been etched. They can also be made with wire though this is increasingly less common. Silicone rubber heaters are durable and versatile products offering up to 30 watts per square inch with temperatures up to 220°C (428°F) per UL requirements. They can be designed to be cut into any shape. Their ability to flex makes them suitable for many applications with curved and odd-shaped surfaces. You can learn more about manufacturing silicone rubber heaters in our Engineer Talk whitepaper.
Also called Kapton, polyimide heaters are similar to silicone rubber heaters in that they are thin flat etched heating elements. They are lighter in weight than silicone and bend more easily. Notable is the very good tensile strength of the substrate (polyimide) material. While their max temperature limit tends to be a bit lower than silicone rubber they have the ability to dial in very precise temperatures and can do so rapidly. Their ultra-thin profile is appealing for applications in electronics, optics, laboratory, medical, aerospace, and anywhere things need to be very small and lightweight. Applications that require the heating of a lens or glass window will sometimes use a transparent material for the dielectric.
These low-profile (thin) heaters are manufactured with precision equipment to produce two-dimensional geometries in a wide variety of wattages and voltages. Ideally suited for applications that require rapid response and temperature uniformity. The thin profile is well suited where space is limited. These heaters can achieve very high temperatures.
Thick film heaters are manufactured using a silkscreen type process. This allows for different compositions of conductive inks to control the placement of heat. It also allows for flexible shapes.
Features include being adaptable to various shapes, uniform conductivity, customize areas of heat concentration, resistance to corrosive environments, a thin profile, and flexible.
PTC Heaters (Positive Temperature Coefficient Heaters) contain trace amounts of an electrically conductive material such as carbon black mixed with an electrically insulating yet thermally conductive material such as silicone rubber. Two leads buried within this material do not physically touch. The ratio of electrically conductive vs electrically insulating material is carefully controlled during manufacturing. The most notable property of PTC heating elements is that they increase in electrical resistance as they get hotter. Engineers make good use of this property by designing PTC heaters to cap-out at a specific temperature and thus become self-limiting.
A PTC air heater designed for aircraft environmental control. It contains several PTC heating elements in one package. Temperature limiting means it can never get too hot.
A PTC heater piggybacks this silicone rubber heater acting as a small temperature limiter without the need for bulkier control options. The small evaporator heater design saves the client cost and valuable space within their enclosure.
The electrically conductive heat generating material is embedded within an electrical insulating yet thermally conductive material.
A cartridge heater contains an electric coil surrounded by an insulating powder (typically magnesium oxide) and packed within a tapered sheath. All terminals exit the same end. This type of heater is commonly inserted into a cylindrical hole. The size and shape of the bore as well as the size and shape of the heating element is extremely important. There should be a firm uniform fit when energized to achieve safe and efficient conductive heat transfer. Not too tight or the heater may need to be drilled out when it expires. In some cases, a cartridge heater is used to heat a fluid instead of a block of metal and will have fins to increase surface area.
A strip heater is a relatively flat rectangular heater made from a strip of mica that has been wrapped with ribbon wire. That assembly is sandwiched between two more pieces of mica and then encased in a metal sheath.
Strip heaters can be outfitted with fins and they can also be specially manufactured for extreme environments. Many terminal styles exist for this heater. Cut-outs and other shape modifications are possible.
If you bend a strip heater into the shape of a ring then you have a band heater. They are clamped around pipes, barrels, and the base of kettles. They are used to heat fluids and to assist in the melting of solids. The later is very common in the plastics processing industry where plastic pellets must be warmed to a sufficient temperature. This does not in itself melt the plastic but prepares the material for the mechanical process that actually does the melting. Sufficient heat is required for the retraction of a large auger used in many plastic manufacturing processes.
Tubular heaters have an electric coil surrounded by a ceramic insulating powder encased within a metal sheath. The terminals exit opposite ends of the heater. This type of heater typically has a round cross-section though it can be manufactured into other shapes like square or triangular. They are often manufactured with curves and bends to best support an application. A common location to find a tubular element is inside an electric kitchen oven.
In order to arrive at a heating solution ideally suited for your particular application, it is useful to understand how a heater will fit into and support a larger system. When engaged in design discussions with a client we ask questions in order to understand the application and to build tenable requirements from which we make design decisions. Initially, well want to know some of the more fundamental requirements.
Essentially were defining the problem we intend to solve with the heater. Every project is different and has its own unique heating needs. Decisions regarding dimensions, choice of alloy, and overall heater design will be based on your unique project requirements. There may be any number of hidden requirements that will affect the direction of design so we want to dig deeper whenever possible.
We want to know the start and finishing temperatures, flow rates, cycling frequency, ramp speed, peak temperature, electrical power, thermal controls, and physical space. Each project will have its own unique application circumstances such as environmental contaminants, tolerances, safety, factory assembly and budget to name a few. When faced with a thorough list of well thought out requirements, proper design choices can progress.
The application will need to supply enough power to run the heater. We're going to want to know the available power and any limitations.
We want to know the minimum amount of power necessary for the application to function properly. A heater does not require the same power all of the time. There are moments in time when a heater will require more power than others. We want to know the most power that will ever be demanded of that heater. In some applications, max power happens when the heater is fired up and making its way to temperature. In other applications peak is demanded while maintaining an operating temperature. Whichever one of these is higher is a minimum power requirement.
We want to know how much power is needed to successfully heat the thing we are heating within the required amount of time. We could be heating a block of steel, a box of air, a tank of oil, or water flowing in a pipe. Each of these scenarios is simple to estimate if you are willing to forgo some precision. You can see calculations with examples in Ian Renwicks Engineer Talk article, How Much Wattage do I Need? Jerry Sain addresses this specifically for heater coils in his paper, Heater Coil Design.
Our heater design will not only need to safely and reliably handle the power required but it also needs to deliver the heat. We can narrow down our material and dimension choices for many heater shapes with textbook heat transfer calculations. An approach for estimating the temperature produced by a spiral wound wire coil in a flow of gas may be less obvious. Dexter Diepholz outlines an approach for this in his Engineer Talk paper, Estimating the Resistance Wire Temperature for an Open Coil Heating Element.
Watt Density is another useful way to quickly compare materials. Measured in Watts/in2 or Watts/mm2 watt density is the total watts of the heating element divided by the surface area that generates the heat. You can learn more in Dexter's white paper, Why Does Watt Density Always Come Up When Discussion Heating Elements?
Different materials will react differently depending upon their environment. It is useful to know if there will be a high concentration of a particular gas, significant humidity or alloy harming contaminates in the space where the heating element is being energized.
Ammonia, sulfur, zinc, chlorine, and boron will bring an early end to a heater with a poorly matched alloy. For example, chloride contaminates are generally bad for Iron base alloys while sulfides are harmful to Ni-Cr. Process air, industrial cleaners, municipal water supply, and even oil from an installer's fingers may be a source of alloy eating contaminates.
You can learn more about extending heater life in Patrick Laws Engineering Talk article, Watts Killing your Heater.
It is common for us to design a heater for equipment that has already been designed or even manufactured. It is also a more limiting option. Any opportunity to be involved early in the product design process is going to result in a better product with a better heating solution at a reduced cost.
The amount of allowable space for the heater as well as the shape of the space is often the culprit. If your product requires an open coil heater yet we can't get proper airflow across the heater coils then that is going to be a problem. Not only does a preexisting product limit your heater design options it can become cost-prohibitive or even impossibly difficult to engineer. We have produced thousands of designs and as such we can spot many of the classic pitfalls before they happen.
While early involvement is ideal, we also recognize that such a luxury is not always possible and we are very happy to work with you to engineer a solution at any stage of your design process. Designing innovative heaters to fit difficult requirements is something we have become quite good at doing. The following are projects that showcase our engineering prowess when faced with pre-existing limitations.
An off-the-shelf solution is often the first consideration as it will be the easiest short-term path if something suitable exists. This does not mean it will be the best long term value. Product performance, durability, and efficiency are costs not necessarily obvious at the time of purchase.
For products with complex requirements, it may be difficult to find an existing heater that makes the grade. A new piece of lab equipment requiring a fast and controlled ramp-up, a high cycling frequency, and an unusually shaped space is probably going to benefit from a custom heating element solution. In the hands of experience, you have the best opportunity to improve product performance, increase reliability, and reduce cost. You can see examples of custom heating elements on our custom heaters page. Take notice of what a wide variety of shapes and styles result from the needs of a custom application.
Good choices in design and material will improve heater life while poor material-to-application matches and other bad design choices can result in costly field replacements, product damage, safety issues, and unhappy customers.
All resistance heating elements eventually burn out. Oxidation, changes in electrical resistance, damage, and deformation are all factors that limit longevity. An experienced heater design engineer can help you avoid classic mistakes and achieve long heater life for your particular application.
Resistance heating alloys form an oxidation layer at higher temperatures. The layer grows quickly at first as the alloy is easily able to interact with oxygen in the air. As the layer grows it becomes a protective layer inhibiting access to oxygen until eventually preventing further oxidation.
The amount that the heating alloy expands when heated (referred to as an alloy's coefficient of thermal expansion) is going to be different than that of the oxide layer. That difference in thermal expansion as well as the strength of adhesion (the oxide layer's adhesion to the alloy) has a strong correlation with heating element longevity.
An oxide layer that remains strongly adhered to the alloy without cracking and spawling will continue to protect the alloy. A heating element with a high coefficient of thermal expansion and poor oxide layer adhesion will not last long in an application with rapid temperature cycling.
Sometimes lowering the temperature of the heating element is the best solution. An example of this can be illustrated with one of our clients who manufacture warming cabinets. A competitor's heater was causing dramatic failures. Our calculations found the watt density to be higher than advisable. We introduced our crossflow blower-style heater where we were able to fit more wire in the same space and lower the watt density. This in turn lowered coil temperature and extended heater life. Good design and attention to detail helped the client avoid those dramatic failures.
The ease in which a heating element integrates with an application affects cost. Difficult and time-consuming product assemblies will burden a manufacturer with labor, unnecessary part inventories, and fewer units going out the door. Field installations and replacements will take longer and may require higher-skilled workers.
A heating element designed for a particular product should result in superior integration with that product. This will yield better performance as well as faster field installation and product assembly. In some cases, additional part costs may be removed too. The following are specific examples where we saved the client cost and hassle with install and assembly.
Farnam has a customer that makes pump houses for the oil and gas industry. Silicone Rubber heaters are used to help the pumps to start in regions where temperatures fall below -40. Their biggest challenge is that they had 480V 3-phase running to it. They had to figure out how to go from 480V 3-phase to 120V single phase on these silicone rubber heaters. They were breaking a leg, daisy-chaining heaters, and cobbling stuff together. These were not elegant solutions.
Tutco-Farnam replaced it with a 480V 3-Phase silicone rubber heater with a PSA adhesive. No more worrying about changing your voltage. No more daisy-chaining and putting multiple heaters on there. One heater to do the trick. Saved the client time on install and its a much more attractive solution.
Some of our dehumidification heaters use jumpers for joining together sections of open-coil elements. One particular customer preferred to wire them up in-house. They wanted to be able to do their own custom configurations.
As it turns out, the product assemblers were cutting their own jumpers. This seemingly small step was taking a long time thus slowing down production. The assemblers were not pleased with this extra step either.
Tutco-Farnam offered to produce the jumpers and ship them with a line of heaters that we were already making for the client. We zip-tied a full set of jumpers to each unit with easy access for the assemblers. This saved them oodles of time!
The value-added was so successful that the inclusion of jumpers is now shipped standard with all of their dehumidification heaters. We added value to an existing product, we saved the client time and the purchasing agent looks like a hero.
One day while visiting a customer we noticed a shelf being stocked with our heaters. The employee opened the box, pulled out the product dividers, and then, one by one, put the heaters on the shelf. On the opposite side, an assembler grabbed a few heaters and set them up on the bench for assembly.
Our solution: We made the packaging a smidgen thicker. This small change allows the dividers to stand up with the heaters facing the assembler. This eliminated the step of moving individual heaters to and from the shelf. The entire packaging is placed on the shelf and the assembler can just pull, pull, pull as heaters are needed. At Tutco-Farnam we go the extra mile to create value for our customers.
A customer of ours was using an old screw flange style light bulb to heat their pneumatic delivery systems for moisture prevention and freeze protection. They evolved from that solution to a cartridge heater that had a funky bottom on it that screwed in. It was very expensive as was the base assembly. The customer was frustrated with the accelerating cost.
Tutco-Farnam vulcanized a silicone rubber heater to a piece of angle and matched the mounting holes on the faceplate. The costly sheathed element AND the socket it fits into were eliminated. Using two screws the field tech attaches the silicone rubber enclosure heater, hooks up two wires in a quick connect, and the job is done. Field installation couldn't be simpler.
The result is a super simple field installation with dramatic cost savings. Because of the retrofit, the old heater and base assembly could be removed entirely. The new silicone rubber heater cost less than the base assembly alone, not including the old heater cost. By understanding our customers needs we were able to offer a cost and time savings solution.
We learn that one of our customers was sourcing a minimum order of 3,000 fans at a time with a 20 week lead time from China. They hold those while they bring in a plate, 4 bolts, 4 lock washers, 4 nuts, another bracket for a thermostat, and the actual thermostat from all of these different vendors. They have vendor relationships, part numbers and inventory to manage while deciding on a monthly basis if they are going to make the assembly in-house or have someone else do it.
Tutco-Farnam provided a custom solution completely assembled in a box with instructions. No more inventory and assembly headaches. By listening to our client we were able to help reduce assembly cost, increase the rate of production, and simplify their inventory as well as their purchasing.
We had a customer in the plastic process industry that had left us because of pricing. They were happy with our quality and our delivery but they wanted a price that we couldnt meet and still be profitable. Five years pass and we get a call. Heaters are failing in the field and they are tired of the poor quality they are getting from their current supplier.
Consider what this is costing them. One of their units requires ten heaters. They get installed and tested. Three fail. Those get yanked out. Then the company has to have its customer service people request an RMF and send it back. When the replacements come back they have to reinstall them and test again. Now theyre late on their units. In addition, they had products failing in the field. It is failing for their customers and they're paying a field technician to go out and fix their units.
This company started realizing those costs and that is why they came back to us. We modified the heater to perfectly meet their needs. We cost more than the cheaper option upfront but when they realized everything involved they realized that the Tutco-Farnam solution is a massive cost saving and were also saving their reputation.
The conversation between a specialist and a client is where the real value begins. It takes a willingness to listen and engage. It's also your best chance to discover any pitfalls and hidden gems.
At Tutco-Farnam we are both application and customer committed. An engineer looks at every opportunity that comes in. We listen and we apply what we've learned. Customers often see something on our website and say, 'hey, that looks like what I want.' We then work with them to understand the requirements and guide them towards something that is going to work best.
The following are examples where conversations lead to understanding, which subsequently resulted in marked improvements for our clients.
While visiting a long term customer in the plastic process, resin drying business we went to lunch with our buyer and the service manager. The service manager was recently back from a local call and was complaining about fiberglass making him scratchy. At the time we were wrapping all of their heaters in fiberglass insulation to reduce heat loss and keep operators from burning themselves on the outside of the heater. As we ate we determined that something non-fiberglass, reusable, and robust would be ideal. From there we developed our insulation blankets. No more scratchy fiberglass for them again!
The flexographic industry heavily uses our Flow Torches. Spending time on production floors showed us that most customers were modifying our heaters to the point where they were voiding the warranty. We assembled all the modifications we were seeing and now offer most of those modifications as standard options for our Flow Torch Family. This would include reducers, both with and without NPT threads, flanges, v band connectors, raised junction boxes for higher inlet temps, and plugs for lead wires or junction boxes.
Nicer convenience stores and truck stops have vacuums for cleaning your vehicle and air compressors to fill your tires. Those units require heat to keep the electronics from freezing. Heat can also be used to keep the tip of the tire refill nozzle from freezing while sitting in its holder.
Traditionally youd use a strip heater. The downside of those includes rising costs (due to their material makeup) and bulk. Open coil air heaters are not a great solution because these units suck air in from the outside where there are dust, rain, and pollution that will damage the heating coils.
Our Solution: Tutco-Farnam created a silicone rubber heater that is a 20%-25% savings for the client. It mimics the shape of the thin strip heaters being replaced with the exception that it is a lot thinner. It is essentially a silicone rubber strip heater retrofit. As older units get refurbished the customer pulls out the old mica strip heater and puts in our new custom enclosure heater.
At Tutco-Farnam we go the extra mile to understand the needs of our customers. For this client it allowed us to provide an elegant solution that best suited the application while saving the client money.
A customer that makes chocolate enrobing equipment for the confectionery industry was seeking a better solution for melting chocolate. Foods that are coated with chocolate by enrobers include nuts, ice cream, toffee, biscuits, and cookies. Enrobing equipment replaces the task of hand-dipping these items. Traditionally air is drawn across a light bulb and the chocolatier fluctuates the variables to keep the chocolate flowing with the right consistency. Tutco-Farnam replaced the lightbulb within the enrobing machine with a custom air heater that includes the fan and assembly. We also made it retrofittable across the board. Tutco-Farnam created a more efficient and consistent solution with finer temperature control. It is also easy to install.
During a customer meeting with a heat staking client, we were trying to avoid the rush-rush orders they were constantly placing. It seems their service department was constantly robbing from production and vice versa and it was not until the next week they would realize they were out. Like most of our customers, they were also being pressed to reduce inventory. To avoid this we established a safety stock program at Farnam for them so their heaters were never more than a day or two away. No more rush-rush orders.
We have a customer that makes air conditioners for small containers. These are enclosures that have to be kept cool. At home, youd normally have an air conditioner that is running and water that drips out the back, outside of the house. We dont want that water dripping within the enclosure. The client had it going into a small tray and was hoping that it would naturally evaporate. That wasnt happening quickly enough and they were getting leaks. Tutco-Farnam came back with a flexible waterproof heater with a pressure-sensitive adhesive. The client is now able to go back into the field and easily install the heater inside of every single drip tray. Our small heater helps the water evaporate faster. No more water running on the floor.
Tutco-Farnam is a heating element manufacturer specializing in custom heaters large and small. We have used a variety of electrically resistive metal and intermetallic alloys in over 2,000 custom designs. You can find examples of our heating elements on our custom heaters page.
Contact us about your unique application needs and see what Tutco-Farnam can do for you.
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