Kjaerulf Pedersen a/s
Temperature transmitter guide — head-mounted and rail-mounted
A temperature transmitter converts the signal from a temperature sensor — the resistance of a Pt100 or the voltage of a thermocouple — into a 4–20 mA current signal that travels long cable runs without losing accuracy. Head-mounted transmitters sit inside the sensor's connection head; rail-mounted transmitters sit on a DIN rail in the control cabinet.
A Pt100 presents its measurement as a small change in resistance, a thermocouple as a voltage of a few millivolts. Both are delicate signals: they pick up electrical noise, and every metre of cable adds resistance or calls for special conductor materials.
A transmitter converts the measurement into a 4–20 mA current signal as early as possible. The scale is simple: 4 mA is the bottom of the calibrated range, 20 mA is the top. Because the same current flows through the entire loop, the signal arrives with the value it left with — cable length and lead resistance drop out of the equation, and ordinary copper cable carries it. Most temperature transmitters are loop-powered: the same two wires that carry the signal also power the electronics.
A head-mounted transmitter is fitted inside the sensor's connection head, directly on top of the insert. The delicate sensor signal travels centimetres before it becomes 4–20 mA — the shortest possible run — and everything from the head to the instrument is ordinary two-wire copper cable. One sensor, one transmitter, one cable: the fewest components in the loop. The arrangement is drawn in the connection diagrams on the Pt100 wiring page.
A rail-mounted transmitter clicks onto a DIN rail in the control cabinet, and the sensor's own signal runs the whole way to it. For a Pt100 that means a 3- or 4-wire connection to compensate for the cable; for a thermocouple it means extension wires or compensating cables in the matching alloys — the thermocouple colour codes article covers them. The return is serviceability: every transmitter in the plant sits side by side in the cabinet, channels are added rail by rail, and configuration and service happen in one place — with no need to open connection heads out in the process.
HART is digital communication carried on top of the 4–20 mA signal. The analogue current remains the measurement; HART adds configuration, diagnostics and documentation on the same two wires, so a transmitter can be re-ranged, checked and documented from the control room. The programme includes transmitters with HART 5 and HART 7 — the head-mounted 5337A temperature transmitter, for example, communicates with HART 7.
For measuring points in classified areas, several transmitters in the programme carry hazardous-area approvals such as ATEX — the 5331D EEX is an example. The approval belongs to the transmitter; see the temperature transmitter range for the variants and their certificates.
Head-mounted is the choice when the priority is signal integrity with the fewest components: the conversion happens at the measuring point, and everything downstream is standard cable. Rail-mounted is the choice when the priority is central service and scale: many loops in one cabinet, configured and maintained without touching the field. Both deliver the same 4–20 mA — the question is where the conversion should live. Talk to us about your installation — the right transmitter follows from the measuring points and the plant around them.
A device that converts a temperature sensor's signal — Pt100 resistance or thermocouple voltage — into a 4–20 mA current signal: 4 mA at the bottom of the calibrated range, 20 mA at the top. The current signal holds its value over long cable runs and is carried by ordinary copper cable.
Because a live zero separates "measuring low" from "dead". With the range starting at 4 mA, a reading of 0 mA can only mean a fault — a broken cable or a lost loop — and is detected immediately. The 4 mA base current also powers a loop-powered transmitter's own electronics.
Head-mounted converts the signal at the measuring point with the fewest components in the loop. Rail-mounted gathers every transmitter in the cabinet, where they are configured and serviced centrally. Signal quality favours converting early; serviceability and channel count favour the rail.
Three reasons: the 4–20 mA signal is insensitive to noise and lead resistance over long runs; it is carried by standard copper cable instead of extension or compensating cable; and many transmitters report a sensor break by driving the current out of range, so a fault is seen immediately.
Digital communication on top of the 4–20 mA current signal. The analogue value remains the measurement; HART adds remote configuration, diagnostics and documentation on the same two wires.
When transmitters are re-ranged, checked or documented after installation. With HART, that happens from the control room over the existing wiring; with plain analogue transmitters, each change is a visit to the device with a programming tool.
Yes — several transmitters in the programme are ATEX approved for hazardous areas, such as the 5331D EEX. See the temperature transmitter range for details.