Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

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Description

Overview of Silicon Carbide Ceramic

Silicon carbide (SiC) ceramic is a high-performance material known for its exceptional hardness, wear resistance, and thermal stability. It is widely used in cutting tools, abrasives, automotive components, and high-temperature applications due to its superior mechanical properties and chemical inertness.

Features of Silicon Carbide Ceramic

High Hardness: SiC ceramics are among the hardest known materials, making them ideal for abrasive and cutting applications.
Thermal Stability: They can withstand extreme temperatures without degrading, making them suitable for high-temperature environments.
Wear Resistance: Exceptional resistance to wear and abrasion ensures long-lasting performance.
Chemical Inertness: Resistant to most chemicals, including acids and alkalis, enhancing their durability in harsh conditions.
Low Thermal Expansion: Minimal expansion or contraction with temperature changes, ensuring dimensional stability.
Electrical Conductivity: Some forms of SiC ceramics exhibit semiconducting properties, useful in electronic devices.

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Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

Specifications of Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

Specifications of Sintered Silicon Carbide (SSiC) Ceramic Bushing for Magnetic Drive Pump

Product Make-up

Sintered Silicon Carbide (SSiC) is the core product made use of in this bushing. It has over 99% pure silicon carbide. No binders or ingredients are utilized throughout production. This leads to a thick, consistent structure with superb mechanical toughness.

Physical Features

The bushing has a hardness of 2800– 3000 HV on the Vickers range. Its density varies from 3.10 to 3.15 g/cm FIVE. The flexural toughness is generally above 400 MPa. Thermal conductivity rises to 120 W/m · K, which helps dissipate heat promptly throughout procedure. The coefficient of thermal growth is low, at concerning 4.5 × 10 ⁻⁶/ K (from 20 ° C to 1000 ° C), making certain dimensional stability under temperature level adjustments.

Chemical Resistance

SSiC ceramic withstands corrosion from the majority of acids, alkalis, and solvents. It performs well in extreme chemical atmospheres, including strong oxidizing agents. This makes it perfect for use in chemical processing pumps where steel parts would certainly break down promptly.

Operating Conditions

The bushing works reliably at temperatures as much as 1300 ° C in inert ambiences and up to 1000 ° C in oxidizing conditions. In pump applications, regular service temperatures remain listed below 200 ° C. It takes care of high rotational rates and maintains reduced wear prices even under dry-running or partially oiled problems.

Dimensional Tolerances

Requirement bushings are manufactured to limited tolerances: ± 0.01 mm for diameter and ± 0.02 mm for length. Surface area roughness is kept listed below Ra 0.2 µm to reduce friction and assistance smooth blades movement. Personalized sizes and geometries are available based on pump style requirements.

Key Advantages

Lengthy life span, minimal maintenance, and resistance to put on and deterioration make this SSiC bushing a dependable selection for magnetic drive pumps. Its self-lubricating buildings and high stiffness make sure steady performance in demanding fluid transfer applications.

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Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

Applications of Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

Applications of Sintered Silicon Carbide (SSiC) Ceramic Bushings in Magnetic Drive Pumps

Why SSiC Bushings Are Essential

Magnetic drive pumps move liquids without seals. This design protects against leaks. The pump uses magnets to transform the impeller. Between the turning and stationary components, a bushing is needed. Sintered silicon carbide (SSiC) is the best material for this job.

SSiC bushings handle broadband and heavy loads. They stay steady also when the pump runs warm. Their hardness stands up to wear from bits in the liquid. This indicates longer life and less maintenance.

Performance in Difficult Problems

Several markets utilize hostile or destructive chemicals. Steels would rust rapidly. SSiC does not react with the majority of acids, alkalis, or solvents. It maintains functioning dependably in extreme atmospheres like chemical handling plants.

The material additionally works well at high temperatures. It does not soften or warp. Thermal shock will certainly not break it quickly. This makes SSiC perfect for hot transfer fluids or vapor cleansing systems.

Smooth Procedure and Performance

SSiC has a really smooth surface area. This lowers rubbing between relocating parts. Much less rubbing implies much less power loss. The pump runs more silently and utilizes much less power.

Due to the fact that SSiC is stiff and dimensionally stable, clearances stay tight gradually. This assists preserve constant circulation and pressure. Pump effectiveness stays high throughout its life span.

Common Utilizes

You’ll find SSiC bushings in pumps that take care of acids, caustics, solvents, and slurries. They are used in pharmaceutical production, semiconductor production, wastewater treatment, and petrochemical refining. Any kind of place where leakage is dangerous or costly, SSiC bushings offer a reputable remedy.

These bushings sustain risk-free, clean, and continuous operation. That’s why designers select them for crucial magnetic drive pump applications.

Company Introduction

Welcome to It-Chuiko, a premier international supplier of high-quality silicon carbide powder and silicon carbide ceramics. Our products are renowned for their exceptional hardness, thermal stability, and wear resistance, making them ideal for abrasives, cutting tools, refractory materials, and advanced semiconductor applications. We serve a diverse range of industries, including automotive, aerospace, and electronics, with a commitment to quality and innovation. With state-of-the-art production facilities and rigorous quality control, we ensure that our customers receive superior products tailored to their specific needs. Partner with us for reliable, high-performance materials that drive your business forward.

If you have any questions, please feel free to contact us(nanotrun@yahoo.com).

Payment Methods

T/T, Western Union, Paypal, Credit Card etc.

Shipment Methods

By air, by sea, by express, as customers request.

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Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

5 FAQs of Sintered Silicon Carbide / SSiC Ceramic Bushing for Magnetic Drive Pump

Frequently Asked Questions: Sintered Silicon Carbide (SSiC) Ceramic Bushings for Magnetic Drive Pumps

What is a sintered silicon carbide (SSiC) ceramic bushing?

A SSiC ceramic bushing is a precision part made from pure silicon carbide. It supports the pump shaft inside magnetic drive pumps. This material is very hard, wear-resistant, and handles high temperatures well.

Why choose SSiC over other materials?

SSiC lasts longer than metals or standard ceramics in harsh conditions. It resists corrosion from acids, alkalis, and solvents. It also has low friction and excellent thermal conductivity. These traits help the pump run smoothly and reduce maintenance needs.

Can SSiC bushings work in dry-running conditions?

Yes. SSiC can handle short periods of dry running better than most materials. Its high thermal conductivity helps spread heat quickly. This lowers the risk of overheating and damage when liquid isn’t present.

How does SSiC improve pump reliability?

Because SSiC is so hard and stable, it keeps tight clearances between moving parts. This reduces shaft wobble and vibration. Stable operation means fewer breakdowns and longer service life for the whole pump.

Are SSiC bushings compatible with all magnetic drive pumps?

Not always. SSiC bushings must match the pump’s design and size. Always check your pump model and operating conditions before replacing parts. Most manufacturers offer SSiC options for common magnetic drive pump series.

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