Explosion-proof K-type thermocouple
K-type thermocouple
K-type thermocouple patch
K-type thermocouple armored
Explosion-proof K-type thermocouple
K-type thermocouple
K-type thermocouple patch
K-type thermocouple armored

Type K Thermocouple

Industrial assembled type K thermocouples are temperature sensors. Type K thermocouples are typically used with display instruments, recording instruments, and electronic regulators. Type K thermocouples can measure the surface temperature of liquids, vapors, gases, and solids.

Typically, they can measure temperatures from -270°C to 1370°C. Within this temperature range, type K thermocouples maintain excellent measurement performance in both extremely low and high temperature environments. In low-temperature environments, they can be used to measure the temperature of liquid nitrogen. In high-temperature environments, they can meet the temperature monitoring needs of high-temperature equipment such as industrial furnaces.

  • Wide measurement range;
  • High accuracy;
  • Good stability;
  • Relatively low price;
  • Fast response speed;
  • K-type thermocouples have low thermal inertia, react quickly to temperature changes, and can promptly reflect the temperature changes of the measured object.

Type K Thermocouple Description

Type K thermocouples operate based on the Seebeck effect. The Seebeck effect refers to the generation of a thermoelectric potential (TEV) when two conductors of different compositions are connected to form a circuit. The magnitude of this TEV is a function of the temperature difference between the two junctions.

For a K-type thermocouple, a TEV is generated when the junctions of its two electrodes (nickel-chromium and nickel-silicon) are exposed to different temperatures. One junction, usually called the measuring junction or hot junction, contacts the object being measured to sense its temperature. The other junction, called the reference junction or cold junction. It is usually exposed to a known, constant temperature.

The greater the temperature difference between the measuring and reference junctions, the greater the TEV generated. This TEV is detected by specialized measuring instruments. Based on the predetermined relationship between the TEV and temperature, the temperature of the measuring junction can be calculated, thereby measuring the temperature of the object being measured.

K-type thermocouple and its accessories

Read More about: K-Type Thermocouple – A Comprehensive Guide

Type K Thermocouple Parameters

Range of temperature measurement ℃ -40~+375375~1000
Tolerance value ±1.5℃±0.004ltl
material Nickel chromium nickel silicon
Installation and fixation method No fixation type, Fixed-sleeve screw thread, Fixed-sleeve screw flange, Movable-sleeve screw flange

 

K-type thermocouple graduation table
T 0 10 20 30 40 50 60 70 80 90
0 0 0.397 0.798 1.203 1.611 2.022 2.436 2.85 3.266 3.681
100 4.095 4.508 4.919 5.327 5.733 6.137 6.539 6.939 7.338 7.737
200 8.137 8.537 8.938 9.341 9.745 10.151 10.56 10.969 11.381 11.793
300 12.207 12.623 13.039 13.456 13.874 14.292 14.712 15.132 15.552 15.974
400 16.395 16.818 17.241 17.664 18.088 18.513 18.938 19.363 19.788 20.214
500 20.64 21.066 21.493 21.919 22.346 22.772 23.198 23.624 24.05 24.476
600 24.902 25.327 25.751 26.176 26.599 27.022 27.445 27.867 28.288 28.709
700 29.128 29.547 29.965 30.383 30.799 31.214 31.629 32.042 32.455 32.866
800 33.277 33.686 34.095 34.502 34.909 35.314 35.718 36.121 36.521 36.925
900 37.325 37.724 38.122 38.519 38.915 39.31 39.703 40.096 40.488 40.879
1000 41.269 41.657 42.045 42.432 42.817 43.202 43.585 43.968 44.349 44.729
1100 45.108 45.486 45.863 46.238 46.612 46.985 47.356 47.726 48.095 48.462
1200 48.828 49.192 49.555 49.916 50.276 50.633 50.99 51.344 51.697 52.049

 

Thermocouple time constant
Thermal inertia level Time constant (seconds)
90-180
30-90
10-30
<10

Get a Free Quote of Type K Thermocouple

Sino-Inst has high-quality and affordable K-type thermocouples to supply. Our products have proven success in many industries. We provide free measurement solutions. If you are willing to give us a chance to collaborate, we will provide you with a perfect measurement experience. Sino-Inst has many years of experience in temperature measurement and possesses extensive experience. Contact us for a quote.

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Type K Thermocouple Applications

K-type thermocouples are used to measure the temperature of various furnaces in various reactors. Type K thermocouples can measure the temperature of steelmaking furnaces, ironmaking furnaces, and non-ferrous metal smelting furnaces. Type K thermocouples can withstand the high-temperature environment within the furnace. And it can accurately measure furnace temperature. It ensures the perfect progress of the smelting process and stable product quality.

In scientific and experimental research, Type K thermocouple is a common temperature measurement tool for researchers due to their high accuracy and wide measurement range. Whether conducting high-temperature synthesis in materials science experiments or studying ultra-low-temperature environments in low-temperature physics experiments, K-type thermocouples are used everywhere.

In various chemical industries, temperature fluctuations affect reaction rates and product quality. Type K thermocouples are often installed in equipment such as reactors and pipelines. They can monitor temperature fluctuations in various industrial reaction systems.

During power generation, the working temperature of the equipment. such as boilers and steam turbines, is an important parameter for ensuring safe and stable operation. Type K thermocouples can be used to measure boiler furnace temperature, superheater temperature, and turbine exhaust temperature, etc. Precise monitoring of temperature changes can help prevent safety accidents.

In food-making processing, temperature control is related to food quality and safety. They are used for temperature measurement in baking, sterilization, and refrigeration. During the canned food sterilization process, precision monitoring of the temperature inside the retort ensures sterilization is achieved and extends the shelf life of the food.

K-type thermocouple installation

More Detail

What is the difference between type J and type K thermocouples?

The primary difference between type J and type K thermocouples is the materials they are made of. The positive terminal of a type J thermocouple is iron, and the negative terminal is a nickel-thallium alloy. Its constant value is approximately 94% nickel and 6% silicon.

The positive terminal of a type K thermocouple is a nickel-aluminum alloy, and the negative terminal is a nickel-aluminum-silicon (or nickel-chromium-silicon) alloy.

In addition, type J and type K thermocouples have different temperature ranges. Type J thermocouples are suitable for measuring temperatures from -210°C to 1200°C, while type K thermocouples are suitable for measuring temperatures from -270°C to 1372°C.

Explosion-proof K-type thermocouple

How do I know which thermocouple to buy?

Based on Sino-Inst’s many years of experience supplying thermocouples, we recommend the following standard selection process:

1. Determine the calibration (e.g., K, S);

2. Select the protective tube material (stainless steel, ceramic, etc.);

3. Set the accuracy class (Class I/Class II);

4. Match the mounting method (thread, flange, etc.);

5. Confirm the actual insertion depth and wire length.

Selecting the right thermocouple requires comprehensive consideration of both economic and technical considerations. Only by precisely matching the operating conditions can performance and life be maximized. For special applications (such as ultra-high pressure and severe corrosion), we recommend in-depth consultation with us for customized solutions.

K-type thermocouple armored

What are common problems with thermocouples?

Fault phenomenon Causes of failure Treatment method
The thermocouple thermoelectric potential value is low Thermocouple short-circuit Identify the cause of the short circuit. If it’s due to moisture, dry it. If it’s due to insulation damage, replace the insulator.
Dust accumulation on the thermocouple terminals, causing a short circuit Clean up any accumulated dust.
Short circuit between compensating wires Identify the short circuit point and reinforce the insulation or replace the compensating wire.
Deterioration of the thermocouple terminals or damage to the hot end If length permits, cut off the deteriorated section and re-weld it or replace it with a new thermocouple.
Reversed polarity of the compensating wire and thermocouple Reconnect the wires correctly.
Incorrect compensating wire and thermocouple installation Replace the thermocouple compensating wire.
Improper thermocouple installation position or insertion depth Adjust the cold-junction compensator.
Incorrect thermocouple and display instrument Reset the display input signal type or replace the display.
The thermocouple thermoelectric potential is too high Incorrect thermocouple and display instrument Reset the display input signal type or replace the display.
Incorrect compensating wire and thermocouple Replace the thermocouple compensating wire.
DC interference signal input Eliminate DC interference.
The thermocouple thermoelectric potential output is unstable Poor contact between the thermocouple terminals and the thermocouple Tighten the terminal screws.
Damage on the thermocouple measurement line, causing intermittent short circuit or grounding Identify the fault point and repair the insulation.
Thermocouple is about to break Repair or replace the thermocouple.
Deterioration of the thermocouple Replace the thermocouple.
Incorrect thermocouple installation position Change the installation location.
Dust accumulation on the protective tube surface Clear any accumulated dust.

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