Product Details
Place of Origin: Made In China
Payment & Shipping Terms
Maximum Operating Temperature: |
1400°C |
Dimensional Stability: |
Custom-made |
Wear Resistance: |
Excellent |
Content: |
99% SIC |
Chemical Resistance: |
Excellent |
Micron: |
150 |
Flexural Strength: |
400 MPa |
Type: |
Silicon Carbide Ceramics |
Dielectric Constant: |
9.7 |
Bending Strength: |
≥400MPa |
Custom Service: |
Acceptable |
Feature: |
High Temperature Resistance |
Sic Content: |
≥98% |
Dielectric Strength: |
350 V/mil |
Shape: |
Customize |
Maximum Operating Temperature: |
1400°C |
Dimensional Stability: |
Custom-made |
Wear Resistance: |
Excellent |
Content: |
99% SIC |
Chemical Resistance: |
Excellent |
Micron: |
150 |
Flexural Strength: |
400 MPa |
Type: |
Silicon Carbide Ceramics |
Dielectric Constant: |
9.7 |
Bending Strength: |
≥400MPa |
Custom Service: |
Acceptable |
Feature: |
High Temperature Resistance |
Sic Content: |
≥98% |
Dielectric Strength: |
350 V/mil |
Shape: |
Customize |
High-Precision Silicon Carbide Ceramic Bearing Sleeve - Industrial Ceramic Component, Resistant to High Temp, Wear & Corrosion
This product is a Silicon Carbide Ceramic Bearing Sleeve meticulously manufactured using high-temperature sintering technology. It is made from high-purity silicon carbide ceramic and features a cylindrical structure with an inner bore. Both the internal and external surfaces are precision-polished to a mirror-like smoothness. Silicon Carbide (SiC) is one of the most high-performance advanced ceramic materials available today. Its near-perfect physical and chemical stability makes it an ideal solution to replace metals, alumina, and other traditional materials in extreme and harsh operating conditions, widely used in high-end industrial sectors such as machinery, chemical processing, metallurgy, and new energy.
Leveraging its exceptional overall performance, this product serves as a critical component in precision machinery and demanding environments.
Bearings & Bushings: Functions as a core component for high-speed bearings and sliding bearings in environments that are lubricant-free, high-speed, or highly corrosive.
Mechanical Seals: Used as a mechanical seal ring in dynamic sealing systems for pumps, reactors, and compressors to ensure zero leakage.
Wear-Resistant Liners: Serves as a wear-resistant sleeve or guide bushing in equipment handling abrasive media, significantly extending service life.
Chemical & Metallurgical Components: Used as nozzles, crucible bases, etc., operating reliably in high-temperature and corrosive chemical media.
Exceptional Wear Resistance: Extreme hardness offers wear resistance far superior to tungsten carbide, resulting in a very long service life and greatly reduced maintenance costs.
Superior Corrosion Resistance: Resists erosion from most acids, alkalis, and salt solutions, making it suitable for harsh chemical environments.
Excellent High-Temperature Stability: Can operate stably for extended periods at up to 1400°C in air or 1600°C in inert atmospheres, without softening or deforming.
High Strength & Rigidity: Very high flexural and compressive strength enables it to withstand heavy loads and high stress, ensuring safety and reliability.
Low Density & Self-Lubrication: Density is much lower than heavy metals, contributing to equipment lightweighting. It exhibits self-lubricating properties under certain conditions for smoother operation.
Parameter | Specification |
---|---|
Primary Material | High-Purity Silicon Carbide (SiC) ≥ 98% |
Product Shape | Cylindrical with Inner Bore |
Surface Finish | Ra ≤ 0.2 μm (Mirror finish available upon request) |
Color | Black / Dark Gray |
Max. Service Temperature | ≤ 1400 °C (in air) |
Flexural Strength | ≥ 360 MPa |
Vickers Hardness | ≥ 2400 Hv |
Bulk Density | 3.10 - 3.15 g/cm³ |
This product utilizes the Pressureless Sintering process to ensure optimal material properties. Key steps include: Uniform mixing of high-purity SiC micro-powder with sintering aids → Dry pressing/Cold Isostatic Pressing (to form the cylindrical green body) → Precision machining of the inner bore and end faces → Ultra-high temperature pressureless sintering → Precision grinding and polishing of OD/ID → 100% non-destructive testing and dimensional inspection → Final cleaning and packaging.
Pre-Assembly: Clean the ceramic part and metal housing thoroughly, ensuring the mounting surfaces are free of contaminants. Avoid impact with hard objects to prevent brittle fracture.
During Installation: The thermal expansion method (heating the metal housing) is recommended, or use specialized tools to apply even pressure. Direct hammering is strictly prohibited.
Material Pairing: Optimal tribological performance is achieved when paired with materials like SiC, graphite, or tungsten carbide.
Important Note: Avoid use in environments rich in hydrofluoric acid or hot concentrated phosphoric acid. Handle with care to prevent chipping of edges.
We are committed to providing comprehensive technical support and quality assurance. The product comes with an 18-month warranty and lifetime technical support. We offer selection guidance based on your specific operating conditions and provide rapid customization for non-standard sizes.
Q: What are the advantages of a Silicon Carbide bearing sleeve compared to an Alumina ceramic sleeve?
A: The main advantages are higher strength, hardness, thermal conductivity, and superior high-temperature and thermal shock resistance. The performance advantage is particularly significant in high-speed, heavy-load, and rapid thermal cycling conditions.
Q: How much pressure can this ceramic sleeve withstand?
A: Its compressive strength is extremely high, typically exceeding 2000 MPa. The specific load-bearing capacity depends on the wall thickness and structure of the part; our engineers can perform a mechanical analysis for you.
Q: What level of dimensional accuracy and concentricity can be achieved for the ID and OD?
A: We can perform precision machining to your requirements, typically controlling dimensional tolerances within ±0.002mm and concentricity to ≤0.003mm, meeting the needs of high-precision mechanical assembly.