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Temperature Sensing & Control · IEC 60751 / IEC 60730 / RoHS · Application guide

What Are PT100 and PT1000 RTD Sensors Used For?

Typical duties and industries for pt100 and pt1000 rtd sensors, the watt density and temperature limits that decide whether the construction survives, what has to be on the drawing and the order, and the thermostat or cutoff the construction has to be designed around.

PT100 and PT1000 RTD Sensors are used for measuring, limiting or switching the temperature of a heated assembly — the half of a heating system that decides what happens when something goes wrong. The construction is rated for continuous service to 400 °C, and the specification is driven by where the part is fitted and what it is thermally connected to, then by the range, the accuracy and the electrical rating it has to carry.

Primary duty
Measuring, limiting or switching the temperature of a heated assembly — the half of a heating system that decides what happens when something goes wrong
Heat path
None — these parts sense and switch; they are not a heat source
Continuous limit
400 °C, set by the insulation system
Control
Not self-regulating: a thermostat or thermal cutoff is required in the design

These are process capability limits for the construction, not a specification for a stocked part: every heater here is built to the customer's outline, voltage and wattage, so no part number or wattage is quoted on this page. Confirm the watt density against what the heater is actually bonded to, and confirm the protective device against the assembly it is protecting.

PT100 and PT1000 RTD Sensors in service — the heater shown in a typical assembly, with the heated surface, the leads and the surrounding components visible. Expected media file: pt100-and-pt1000-rtd-sensors.jpg.

Platinum resistance sensors for anything that has to be accurate, repeatable and calibratable — process plates, medical warming, and any loop that gets validated. The duty of PT100 and PT1000 RTD Sensors is measuring, limiting or switching the temperature of a heated assembly — the half of a heating system that decides what happens when something goes wrong. None of these parts produces heat. What they do is decide when the heater is on and what happens when the control fails, which is the difference between an assembly that holds a set point and one that burns. They are specified together with the heater, not after it. The sections that follow cover the sectors that specify them, what belongs on the drawing, what happens at a fault, how they are installed, and the known limits of the construction.

Typical Applications for PT100 and PT1000 RTD Sensors

The assemblies and sectors where this construction is specified:

  • Laboratory and analytical instruments: accurate, repeatable measurement close to the sample, where the sensor time constant is part of the measurement rather than a detail of the wiring.
  • OEM equipment manufacture: designed-in heating on new equipment, specified from the surface, the target temperature and the available power at the design stage rather than retrofitted afterwards.
  • Retrofit and equipment upgrades: replacing a failed or unsuitable heater on existing equipment, where the outline, the voltage and the mounting all have to match what is already there.
  • Closing the control loop: the measurement a controller acts on, whose position and thermal contact matter more than its datasheet tolerance.
  • Battery packs and energy storage: pack and cell-surface measurement feeding a BMS, plus an independent cutoff that does not depend on the same firmware that decided to switch the heater on.

How to Specify PT100 and PT1000 RTD Sensors for Your Application

  • Footprint and rating: This is a component with a standard footprint rather than a made-to-drawing outline: it is ordered by its rating and its physical form, and the design work is in how it is mounted and what it is thermally connected to.
  • Wiring configuration and tolerance class: Two-wire connection puts the whole lead resistance into the reading; three-wire and four-wire exist to remove it, and on a PT100 a few tenths of an ohm is a degree. State the wiring, the tolerance class and whether the loop is to be calibrated.
  • Time constant as well as accuracy: A sensor is specified by how fast it responds as well as how accurately it reads. On a low-mass heated surface the response time dominates the behaviour of the loop, and an accurate but slow sensor produces a controller that always overshoots.
  • Where it is fitted, and to what: A temperature part measures its own temperature and nothing else. Specify the mounting — bonded to the heated surface, clamped under a lug, potted into the assembly, laminated inside the heater — because the thermal path between the part and the thing you actually care about is the dominant source of error, and it is far larger than any tolerance in the datasheet.
  • Range and accuracy against the duty: State the working range, the accuracy you need across it and whether the loop will be calibrated or validated. Accuracy over a narrow band near ambient and accuracy across 400 °C are different specifications and lead to different parts.
  • Protection is separate from control: A control sensor and a protective device are two functions and should be two parts. If the same element both regulates and protects, then any fault that disables it removes both, which is the failure the protective device existed for.
  • Electrical rating of the contacts: For a switching device, state the load current, the voltage and whether it is inductive. A thermostat rated for a resistive load and used to switch a contactor coil will weld its contacts long before it wears out thermally.
  • Supply voltage: State the supply voltage: this construction is wound or printed for 5 V DC, 12 V DC or 24 V DC, and it is built for the one voltage ordered rather than being switchable between them. At low voltage the current is the problem — a 120 W heater at 12 V draws 10 A, and the lead gauge, the connector and the switching device all have to carry it.
  • Temperature limit: The continuous limit is 400 °C, and it belongs to the insulation system rather than to the element. Nichrome, Inconel and fired resistor pastes all survive far beyond it; what fails first is the material holding them, and no derating of the wattage moves that number. State the maximum temperature the assembly can reach under fault as well as the working set point, because it is the fault case that has to stay inside this number.
  • Control and protection: This construction does not limit itself in any way. At rated voltage into a surface that has lost contact, run dry or lost its coolant, it goes on taking full power until the insulation fails, so a thermostat or a thermal cutoff sized to the assembly — not to the heater — belongs in the design and in the schematic. Where a fault must not be allowed to repeat itself, a one-shot thermal cutoff goes behind the resettable device, because a bimetal thermostat cycling on a genuine fault will cycle for as long as the power is on.
  • Mounting: State how and where the part is fitted and what it is thermally connected to. For a sensing or switching device the thermal path to the thing being measured is the dominant source of error, and it is decided entirely by the mounting.
  • Certification of the construction: The constructions behind this product are built and tested to IEC 60751, IEC 60730, IEC/EN 60335, RoHS & REACH, CE Marking. That is a statement about a construction — its insulation system, its creepage and clearances, its earthing, its marking and its tests — and not a claim that a particular made-to-drawing outline carries an approval of its own. Say at the enquiry which standard your end product is certified to, because it constrains the build rather than being added to it afterwards.
  • Leads and termination: State the wire type, gauge, length and exit direction, and the termination — bare, ferrule, ring, spade or a specific connector housing. The lead exit is a mechanical design decision: it is where a flexible heater is most often folded during assembly, and the joint behind it cannot be inspected once the part is built.

Control, Protection and What Happens at a Fault

This construction does not limit itself in any way. At rated voltage into a surface that has lost contact, run dry or lost its coolant, it goes on taking full power until the insulation fails, so a thermostat or a thermal cutoff sized to the assembly — not to the heater — belongs in the design and in the schematic. Where a fault must not be allowed to repeat itself, a one-shot thermal cutoff goes behind the resettable device, because a bimetal thermostat cycling on a genuine fault will cycle for as long as the power is on.

  • The control device: A sensor on the load and a controller — on/off where the load has thermal mass and a few degrees of swing is acceptable, PID where the set point has to be reached without overshoot. This is what holds the temperature; it is not what protects the assembly.
  • The limit device: A bimetal thermostat or a thermal cutoff, sensing the heater or the hottest point of the assembly, wired so that it interrupts the heater regardless of what the controller is doing. It has to be independent of the control sensor: a broken sensor wire that the controller reads as cold is one of the commonest ways a heating assembly ends up at full power.
  • The fault case to design against: Ask what happens if the heater loses contact with its load, if the fluid stops, if the fan stops, or if the controller output sticks on. In every one of those the heater goes on delivering full power into a surface that is no longer carrying it away, and the answer has to be a device that acts, not a calculation showing it would take a long time.

Fitting, Placement & Wiring Practice

  • Fit the part in the thermal path you intend to measure, not near it. A sensor in the air a few millimetres from a heated plate reads a temperature that plate passed through several seconds earlier, and the loop built on it will overshoot every time it is switched on.
  • Use a thermal interface — paste, pad or adhesive — under any surface-mounted device, and clamp it against the metal rather than the insulation.
  • Keep sensor wiring away from the heater leads and from switching devices. A low-level signal running parallel to a switched mains conductor picks up exactly the noise that makes a stable loop look unstable.
  • For a resistance sensor, account for the lead resistance: two-wire wiring puts the whole cable resistance into the reading, and three-wire or four-wire connection exists to remove it.
  • Fit a protective device so it senses the hottest point of the assembly under fault, not the most convenient point during assembly.

Common Specification Mistakes with PT100 and PT1000 RTD Sensors

  • Placing the sensor where it is easy to fit rather than where the temperature matters, then tuning the controller to compensate for a lag that is in the mechanics.
  • Using one part for both control and protection. When it fails, the assembly loses its regulation and its safety net in the same instant.
  • Ignoring hysteresis on a mechanical thermostat. The open and close temperatures are different by design, and on an assembly with little thermal mass that difference is the whole swing the load will see.
  • Tuning a PID loop on the bench in still air and shipping it into a duct, a cabinet or a fluid. The disturbance model is completely different and the tuning does not transfer.

Where PT100 and PT1000 RTD Sensors Are Not the Right Choice

  • Not a substitute for the protective device required by the appliance or machinery standard the end product is certified to — that requirement is about the fault case, not about the accuracy of the control.
  • Not a heat source of any kind: these parts sense and switch, and every duty on this page also needs the heater chosen for it.
  • Not usable outside the range of the sensing element. Beyond it the reading does not simply become inaccurate, it becomes meaningless, and the loop acts on it anyway.
  • Not a fix for a bad thermal design. If the heater and the load are poorly coupled, a better sensor measures the problem more precisely without changing it.
  • Not as its own protection. This construction has no self-limiting behaviour, so it is never the right answer for a design that has nowhere to put a thermostat or a thermal cutoff.

Outline & Specification Builder

Set the outline, the size, the voltage and the power you have in mind. The drawing redraws to match, and the panel works out the heated area, the watt density and the current — then checks that watt density against what this construction survives in free air and bonded to a heat sink. Those two limits are different by several times, and it is the difference that decides whether a heater lasts.

Fills in the form below; attach your outline drawing or DXF there.

Request a Quote

The form below follows the current technical drawing configuration. Change the drawing values above and the request details update automatically.

Request a Quotation

The part

If you have an outline drawing or a DXF, say so in the notes and we will reply with an address to send it to — a drawing turns an estimate into a quotation.

Business Information
Our facility

From this page to a production run

The same plant that makes the sample makes the series: forging, heat treatment, grinding, clearance-set assembly and vibration testing in-house, with the lot number travelling in the carton so a field failure can be traced back to a steel heat.

Heater production line, wide view
Electrical test station
Lamination press and die cutting
Finished heaters staged for packing

Dimensions & Specifications (IEC 60751 / IEC 60730 / RoHS)

ParameterSpecificationLimit / note
TypeThin film platinum resistance temperature detectorNearly linear, and its characteristic is defined by standard
StandardIEC 60751, class AA / A / BClass A is u00b10.15 u00b0C at 0 u00b0C; class B is u00b10.3 u00b0C
Nominal resistance100 u03a9 (PT100) or 1000 u03a9 (PT1000) at 0 u00b0CPT1000 is preferred on long low-voltage runs: lead resistance matters ten times less
Temperature range-50 u00b0C to +400 u00b0CThe element itself; the leads and potting are usually the limit
Wiring2, 3 or 4 wire2-wire adds the lead resistance to the reading u2014 use 3-wire beyond a metre
Self heatingKeep the measuring current at or below 1 mAA sensor heated by its own excitation current reads high, consistently
EncapsulationLaminated into the heater, in a stainless probe, or surface bonded
CalibrationCertificate traceable to national standards on requestRequired for validated processes
Inside the plant

Manufactured in our own plant

This heater is laid out, wound or etched, laminated, cut, tested and imaged in-house. The stages below are where its resistance tolerance, its temperature uniformity and its insulation integrity are actually decided.

  1. Engineer laying out a heater circuit over a customer outline
    01

    Circuit design & layout

    The customer outline comes in as a drawing or a DXF, and the element is laid out inside it: conductor gauge from the voltage, path length from the resistance, pitch from the watt density wanted at each part of the surface. Where the load needs more heat at the edges than in the middle, that is decided here, in the geometry, not later with more power.

    Calculated resistance and watt density checked against the construction limits before any tooling is cut.

  2. Etched foil circuits and wound nichrome elements ready for lamination
    02

    Element preparation

    Wire-wound elements are wound on a glass carrier at the calculated pitch; etched-foil circuits are photo-imaged and etched from Inconel or copper foil to a trace width held within 0.05 mm. That tolerance is what makes the resistance repeatable from lot to lot, which is what makes the temperature repeatable.

    Trace width and element resistance measured before lamination — a circuit out of tolerance is scrapped here, not after it is sealed inside the part.

  3. Heated press closing on a silicone heater lay-up
    03

    Lamination & vulcanising

    The element and its sensor are laid between the insulation and pressed under heat: silicone is vulcanised, polyimide and PET are laminated with a high temperature adhesive, epoxy plates are potted under vacuum so no voids are left anywhere in the heat path. A void is not a cosmetic defect — it is a place the heat cannot leave from, and it becomes the hot spot that ends the part.

    Press temperature, pressure and dwell recorded per lot; potted plates checked for voids.

  4. Die cut heater blanks with leads and connectors fitted
    04

    Die cutting & leads

    The outline is die cut with radiused corners — a die does not cut an inside corner, and a sharp corner in a film is where a tear starts. Leads are crimped or soldered and strain relieved at the exit, and connectors are fitted to the harness drawing so the assembly line never has to solder.

    Outline to ±0.5 mm on film, ±1.5 mm on silicone; lead pull-out tested per lot.

Frequently Asked Questions

Where should the sensor go?

On the thing whose temperature is in the specification, in direct thermal contact with it, and as close as possible to the hottest point under fault. Air temperature near a heated surface lags that surface substantially, and a loop closed on the lagging measurement will always overshoot the leading one.

What is the difference between a resettable thermostat and a one-shot cutoff?

A bimetal thermostat opens at a temperature and closes again when the part cools, which makes it a control or a repeating limit. A thermal cutoff opens once and never closes, which makes it the last line of defence: it is fitted where a fault must not be allowed to cycle, and replacing it forces someone to investigate why it operated.

How hot can PT100 and PT1000 RTD Sensors get?

The continuous limit is 400 °C, and it belongs to the insulation system rather than to the element. Nichrome, Inconel and fired resistor pastes all survive far beyond it; what fails first is the material holding them, and no derating of the wattage moves that number. Design the working set point below it and check the fault case against it, because the fault case is what consumes the margin.

Do PT100 and PT1000 RTD Sensors need a thermostat or a thermal cutoff?

This construction does not limit itself in any way. At rated voltage into a surface that has lost contact, run dry or lost its coolant, it goes on taking full power until the insulation fails, so a thermostat or a thermal cutoff sized to the assembly — not to the heater — belongs in the design and in the schematic. Where a fault must not be allowed to repeat itself, a one-shot thermal cutoff goes behind the resettable device, because a bimetal thermostat cycling on a genuine fault will cycle for as long as the power is on.

Can I get a quote for PT100 and PT1000 RTD Sensors to my own specification?

Yes. Send the outline or the surface dimensions, the supply voltage, the target temperature, what the heater will be bonded to and the quantity, and use the drawing and quote form on this page to set the configuration. Samples follow an approved drawing rather than an order.