This is a W-shaped silicon carbide heating element, a high-temperature electric heating element with three parallel tubes, which provides greater heating power and a more uniform heating effect.
Reliable silicon carbide heating elements for industrial furnaces
| Model: W |
| Diameter: OD |
| Heating element length: HZ |
| Cold end length: CZ |
| Total length: OL |
| Spacing: A |
| Horizontal end: D |
| Maximum operating temperature: 1520 degrees Celsius |
Structure:
• Structure: Adopting a three-tube integrated design, three parallel rods are connected by a transverse end (D), with the other end being the cold end and white terminal. The entire rod has a uniform diameter.
• Material: The main body is made of silicon carbide material, which features high temperature resistance, oxidation resistance, and good thermal stability.
• Temperature Performance: The maximum operating temperature can reach 1520℃, enabling long-term stable operation in high-temperature environments.
Core Parameters:
• Heating Zone Length (HZ): The length of the heating section of a single rod, which determines the heating power and heating range.
• Cold End Length (CZ): The length of the cold sections at both ends, used for circuit connection to prevent overheating of the terminals.
• Overall Length (OL): The total length of the heating zone and cold ends of a single rod.
• Spacing (A): The distance between adjacent rods, adaptable to different furnace installation spaces.
• Transverse End (D): The dimensions of the end connecting the three rods, ensuring structural strength and current conduction.
• Diameter (OD): The uniform diameter of the entire rod, ensuring strong compatibility.
Applicable Scenarios:
It is mainly used in large industrial furnaces requiring high heating power and high temperature uniformity, such as ceramic roller kilns, glass melting furnaces, and large heat treatment furnaces. The three-tube design significantly improves heating efficiency and temperature consistency within the furnace.
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Our silicon carbide heating elements are optimized for stability, efficiency, and durability under continuous high-temperature working conditions.
