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High Temperature Silicon Molybdenum Rod

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Description
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Description

High Temperature Silicon Molybdenum Rod

A high-temperature silicon molybdenum rod is a high-temperature heating element made primarily of molybdenum disilicide (MoSi₂). It possesses excellent high-temperature oxidation resistance and stable electrical resistance characteristics. Its maximum operating temperature can reach 1800℃, and it is widely used in high-temperature experimental furnaces, fours industriels, sintering furnaces, heat treatment furnaces, and other equipment.

When operating in a high-temperature oxidizing atmosphere, a dense quartz protective film forms on the surface of the silicon molybdenum rod, effectively preventing further oxidation and extending the element’s lifespan. Simultaneously, the silicon molybdenum rod features rapid heating, haute efficacité thermique, convenient installation, and stable resistance, making it a commonly used high-performance heating element in high-temperature electric furnaces above 1600℃.

Caractéristiques du produit

  1. Excellent High-Temperature Performance

Made with high-purity molybdenum disilicide material, the maximum heating temperature can reach 1800℃, suitable for various high-temperature sintering, melting, and heat treatment processes.

  1. Strong Oxidation Resistance

In high-temperature oxidizing atmospheres, a protective glass film forms on the component surface, effectively preventing oxidation, extending service life, and making it suitable for long-term continuous operation.

  1. Stable and Reliable Resistance

The resistance of the silicon molybdenum rod changes little under normal operating conditions. New and old components can be used interchangeably, facilitating maintenance and replacement.

  1. High Thermal Efficiency and Rapid Heating

It has good electrical conductivity and heating properties, and a fast thermal response, meeting the requirements for rapid heating and precise temperature control, improving equipment operating efficiency.

Material TypeMaterial NameMax. Heating Temperature(℃)Remarks
Alloy MaterialsNi-Cr alloy1150Widely used
Fe-Cr alloy1400Widely used
High-Melting Pure MetalsPlatinum (Pt)1600Requires protective atmosphere
Molybdenum (Mo)1800Requires protective atmosphere
Tantalum (Ta)2200Requires protective atmosphere
Tungstène (W)2400Requires protective atmosphere
SiC / MoSi₂ ElementsSiC rods, SiC tubes1500Hard and brittle; formed before use
MoSi₂ rods1800Hard and brittle; formed before use

Domaines d'application

  • Ultra-high Temperature Electric Furnace Heating: Suitable for heating elements in high-temperature box furnaces, fours tubulaires, fours de levage, bell furnaces, and other electric furnaces with temperatures ranging from 1600-1800℃.
  • Frittage céramique avancé: Used for ultra-high temperature sintering processes of high-performance ceramic materials such as alumina, oxyde de zirconium, nitrure de silicium, et carbure de silicium.
  • Electronic Material Heat Treatment: Used for high-temperature heat treatment and sintering processes of electronic ceramics, magnetic materials, and precision electronic components.
  • Glass Melting and Special Glass Preparation: Used for heating equipment in melting special glass, verre microcristallin, and optical glass.
  • Metallurgy and New Material R&D: Used for ultra-high temperature heat treatment and R&D experiments of new materials such as powder metallurgy, high-temperature alloys, and composite materials.
  • Instituts de recherche: Used for ultra-high temperature experimental research in materials science, metallurgical engineering, and other related fields in universities and research institutions.

Profil de l'entreprise

Une entreprise professionnelle spécialisée dans les services de technologie de traitement thermique et le R&D, fabrication, et vente de fours électriques haute température.

La société se concentre sur le développement de fours électriques à haute température couvrant une plage de températures complète de -100 ℃ à 2 600 ℃.. Ses produits comprennent des fours électriques expérimentaux, fours à atmosphère sous vide, fours industriels, et équipements de chauffage par induction à moyenne fréquence. Les principaux produits comprennent des fours à caissons, fours tubulaires, fours de levage, fours pousseurs, fours à bogies, fours rotatifs, fours tunnel, et divers fours spécialisés moyenne fréquence.

L'entreprise adhère à l'innovation technologique et a passé les certifications ISO9001 et CE de l'UE.. Il possède 21 marques déposées, 29 brevets, et 27 droits d'auteur sur les logiciels.

Méthodes de paiement

TT

Méthodes d'expédition

Le four électrique est emballé dans le four électrique est emballé en trois couches: d'abord enveloppé dans du papier mousse, puis enveloppé dans un film plastique, et enfin emballé dans une caisse en bois.

Foire aux questions (FAQ)

  1. What is the maximum operating temperature of silicon molybdenum rods?

The maximum heating temperature of silicon molybdenum rods can reach 1800℃. The specific operating temperature needs to be determined based on the furnace structure, atmosphere conditions, and operating process.

  1. What atmospheres are silicon molybdenum rods suitable for?

They are mainly suitable for air oxidation atmospheres, and can also be used in some special atmosphere environments according to process requirements.

  1. What is the difference between silicon molybdenum rods and silicon carbide rods?

Silicon molybdenum rods are mainly made of molybdenum disilicide, with a maximum operating temperature of approximately 1800℃; silicon carbide rods are mainly made of silicon carbide, with a maximum heating temperature of approximately 1500℃. Silicon molybdenum rods are more suitable for ultra-high temperature applications.

  1. Are silicon molybdenum rods customizable?

Oui. Different specifications of products can be provided according to the furnace size, pouvoir, tension, installation method, and operating temperature requirements.

  1. What precautions should be taken when using silicon molybdenum rods?

During installation, mechanical impact and collision should be avoided. The heating and cooling process should be carried out according to the process curve to avoid damage to the components due to excessively rapid temperature changes.

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