How to Differentiate Between Exposed Thermocouples and Fixed Threaded Connection Box Type Platinum Resistance Thermometers

Aug 18, 2020

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In the field of industrial temperature measurement, exposed thermocouples and fixed threaded connection box type platinum resistance thermometers are two common types of temperature sensors. They have significant differences in structural design, working principles, performance characteristics, and application scenarios. The following systematic comparison will highlight their core differences.

 

I. Differences in Structural Design and Installation Methods

1. Exposed Thermocouple

The core feature of an exposed thermocouple is that its measuring end is directly exposed to the measured medium, without the need for an additional protective sheath. It is usually made of two different metal wires (such as nickel-chromium-nickel-silicon) welded together to form the measuring end, which is directly inserted into the measured medium. Its structural design emphasizes direct contact and rapid response. The exposed design of the measuring end allows it to directly sense changes in the medium's temperature, resulting in extremely fast response times, making it suitable for scenarios requiring instantaneous temperature measurement. For example, in the food processing or pharmaceutical industries, exposed thermocouples can quickly monitor temperature changes in liquids or gases, ensuring the safety of the production process. However, the installation process requires ensuring that the measuring end is completely immersed in the measured medium, which increases the complexity of installation. Furthermore, the metal wires may oxidize or corrode in high-temperature or corrosive environments, affecting long-term stability.

2. Fixed Threaded Connection Box Type Platinum Resistance Thermometer

The core feature of a fixed threaded connection box type platinum resistance thermometer is its fixed threaded connection and platinum wire winding structure. It usually uses a fixed thread (such as M20×1.5) to achieve secure installation by screwing it onto the surface of the object being measured. Internally, platinum wire is wound on a ceramic or mica frame to form the temperature-sensing element, which is connected to the external circuit through a connection box. The connection box design facilitates signal transmission and maintenance, while also providing waterproof and dustproof protection. For example, in the food processing or pharmaceutical industries, the fixed threaded design ensures close contact between the probe and the equipment surface, reducing heat loss during heat conduction. Its structural design emphasizes the rigid connection of the threaded fixing and the stability of the platinum wire. The fixed threaded design reduces the impact of environmental factors on measurement accuracy and enhances resistance to mechanical shock and chemical corrosion. However, its installation process requires ensuring that the threads are completely in contact with the surface of the object being measured, which increases the complexity of installation. Furthermore, the junction box may experience reduced sealing performance over time due to environmental factors.

 

II. Differences in Working Principles

1. Working Principle of Exposed Thermocouples

Thermocouples are based on the Seebeck effect, where two different metal conductors generate a thermoelectric potential difference under a temperature gradient. When two metal conductors are connected to form a closed circuit, and the two junctions have different temperatures, an electromotive force is generated in the circuit. The magnitude of this force is related to the material properties and the temperature difference between the junctions. By measuring the electromotive force, the temperature value can be indirectly calculated. Thermocouples have high sensitivity; a 1°C temperature change results in an output voltage change of approximately 5-40 microvolts. Their structure is simple, with no moving parts, making them suitable for high-temperature, high-pressure, and highly corrosive environments. The exposed design allows for faster response times, but attention must be paid to the oxidation and corrosion of the metal wires.

2. Working Principle of Fixed Thread Mounted Junction Box Type Platinum Resistance Thermometers

Platinum resistance thermometers are based on the characteristic that the resistance of a metal changes with temperature. Their resistance value has a non-linear relationship with temperature and requires calculation using tables or formulas (e.g., Pt100 has a resistance of 100Ω at 0°C, and the resistance value increases linearly with increasing temperature) to determine the temperature value. Platinum resistance thermometers have high sensitivity; a 1°C temperature change results in a significant change in resistance value. Their structure is simple, with no moving parts, making them suitable for precise measurements in medium and low temperatures (-200°C to 600°C), but strong magnetic fields or mechanical vibrations should be avoided to prevent affecting measurement accuracy. The fixed thread design allows for stable measurement performance even in high-temperature environments.

 

III. Identification Methods

1. Visual Inspection

Exposed Thermocouple: The head usually has no protective sheath; the measuring end is directly exposed, and the interior consists of two different metal wires welded together. The metal wires are in direct contact with the measured medium.

Fixed Thread Mounted Junction Box Type Platinum Resistance Thermometer: The head is usually covered with a metal protective tube, and the interior contains a temperature-sensing element made of platinum wire. The fixed thread part is screwed onto the surface of the object being measured, and the junction box is used to connect to the external circuit. 2. Wiring Method

Exposed Thermocouple: Uses a two-wire system (positive and negative), with the terminal box marked "TC+" and "TC−". The leads are usually red (positive) and black/blue (negative).

Fixed Threaded Mounting Terminal Box Type Platinum Resistance Thermometer: Uses a three-wire system (R1, R2, R3), with the terminal box marked "R1", "R2", and "R3". The leads are often red, white, and yellow.

3. Multimeter Measurement

Exposed Thermocouple: The resistance value is very small, usually only a few ohms.

Fixed Threaded Mounting Terminal Box Type Platinum Resistance Thermometer: The resistance value is approximately 100 ohms at room temperature (Pt100).

 

IV. Differences in Application Scenarios

1. Exposed Thermocouple

Scenarios requiring fast response and direct contact: For example, in the food processing or pharmaceutical industries, the exposed design ensures that the probe directly senses changes in the medium temperature, improving measurement accuracy and response speed.

High-temperature environments: Performs stably in high-temperature measurements, suitable for high-temperature equipment such as reactors and pipelines.

2. Fixed Threaded Mounting Terminal Box Type Platinum Resistance Thermometer

Scenarios requiring fast response and close contact: For example, in the food processing or pharmaceutical industries, the fixed thread design ensures sufficient contact between the probe and the equipment surface, improving measurement accuracy and response speed.

Medium and low-temperature environments: Performs excellently in indoor or low-pressure scenarios, such as HVAC systems.

 

V. Selection Suggestions

1. Exposed Thermocouple Selection

Environmental conditions: Use in scenarios requiring fast response and direct contact with the medium being measured, avoiding strong vibration or impact environments.

Installation requirements: Select a probe with a measuring end specification that matches the equipment to ensure a secure connection.

2. Fixed Threaded Mounting Terminal Box Type Platinum Resistance Thermometer Selection

Installation requirements: Select a probe with a fixed thread specification that matches the equipment to ensure a secure connection.

Environmental conditions: Use in scenarios requiring precise measurement and fast response in medium and low-temperature environments, avoiding strong magnetic fields or mechanical vibration environments.

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