Clean-Flow MSZ Ceramic Ball Valve for Hygienic Systems

The MSZ Ceramic Ball Valve uses magnesia-stabilized zirconia (Mg-PSZ, 9 mol% MgO) to combine mechanical strength, thermal stability, and chemical resistance. These properties allow the valve to operate in corrosive, abrasive, and high-temperature environments where conventional valves quickly degrade. The combination of high flexural strength, hardness, and corrosion resistance ensures long service life and reduced maintenance in industrial systems.

Catalog No. AT-MGO-QF1001
Material Magnesia-Stabilized Zirconia (Mg-PSZ)
Flexural Strength >500 MPa, compared with <250 MPa for conventional metal valves
Compressive Strength 2,500 MPa
Density 5.7g/cm3

 

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ADCERAX® MSZ Ceramic Ball Valve is designed with magnesia-stabilized zirconia to deliver high strength, chemical resistance, and long service life in demanding process industries. It provides reliable flow control in corrosive, abrasive, and high-temperature environments where conventional metal or lined valves fail. The material stability ensures consistent sealing under thermal shock, while the smooth ceramic surface reduces maintenance and minimizes downtime. This makes it a trusted choice for chemical plants, mining slurry transport, power generation, water treatment, and pharmaceutical systems.

Features of MSZ Ceramic Ball Valve

  • Flexural strength >500 MPa enables the MSZ Ceramic Ball Valve to withstand high pressure cycles without cracking. Its compressive strength of 2,500 MPa guarantees reliable sealing even under extreme load.
  • With fracture toughness 6–7 MPa·m½, the material resists crack propagation, extending service intervals. Combined with an elastic modulus of 250 GPa, it ensures dimensional stability under stress.
  • Hardness ~1,100 HV0.5 provides superior wear resistance compared to steel valves, reducing particle erosion in slurry lines.
  • Thermal expansion coefficient 10×10⁻⁶/K ensures stable sealing against metal housings, lowering risk of leakage during temperature fluctuations.
  • With a thermal shock tolerance of 450 ∆T°C, the valve survives rapid quenching cycles where polymers or metals fail.
  • Volume resistivity >10¹⁴ Ω·cm at 20 °C keeps MSZ Ceramic Ball Valve electrically insulating, useful in processes where electrochemical corrosion is a concern.
  • In 60% nitric acid at 90 °C, weight loss is only 0.1 mg/cm²/day, showing high resistance in acidic media.
  • Even in 95% sulfuric acid at 95 °C, weight loss remains 0.34 mg/cm²/day, proving strong durability in concentrated acids for chemical industries.

Technical Properties for MSZ Ceramic Ball Valve

The ZrO2 Dispensing Valve combines advanced material properties with industrial durability to support precision dispensing.

Property  Specification
Density 5.7 g/cm³
Hardness (Vickers) 1,100 HV0.5
Flexural Strength 500 MPa
 Compressive strength 2,500 MPa
 Elastic modulus 250 GPa
Fracture toughness 6–7 MPa·m½
Weibull modulus 12 M
Thermal shock resistance 450 ∆T°C
Max service temperature 2,100 °C
 Nitric acid 60% at 90 °C  0.1 mg/cm²/day
Sulfuric acid 95% at 95 °C 0.34 mg/cm²/day
Sodium hydroxide 30% at 80 °C 0.95 mg/cm²/day

Specifications of MSZ Ceramic Ball Valve

size of ball valve1

O shaped Magnesia Stabilized Zirconia Ceramic Valve
Item No. Nominal Diameter PH (Mpa) D D1 D2 C H n-d
AT-MGO-QF1001 DN32 1.6 165 135 75 18 235 4-∅18

 

size of ball valve2

 

V Shaped Magnesia Stabilized Zirconia Ceramic Valve
Item No. Nominal Diameter Size (NPS) H L D D1 D2 n-d b f
AT-MGO-QF2001 DN32 1-1/4" 220 140 115 88.9 63.5 4-M12 16.3 2

Packaging of MSZ Ceramic Ball Valve

Each MSZ Ceramic Ball Valve is first packed in reinforced cartons and then secured inside wooden cases for safe transit. The layered protection ensures that the units remain intact against shock, vibration, and moisture during international shipping. All crates are export-compliant, guaranteeing reliable delivery of them to global industrial customers.

ADCERAX® Packaging of Zirconia Ceramic Piezoelectric Injector Pin

Addressing Industrial Challenges with ADCERAX® MSZ Ceramic Ball Valve

The ZrO2 Piezoelectric Injector Pin addresses precise dispensing needs in advanced manufacturing sectors where adhesives, pastes, and coatings must be applied with consistent accuracy. Its engineered ceramic properties directly solve pain points in demanding application environments.

 

  • Petrochemical Acid Chlorination Units

    ✅Key Advantages

    1. Halide-acid corrosion inertia0.1 mg/cm²/day weight loss in 60% HNO₃ @ 90 °C and 0.34 mg/cm²/day in 95% H₂SO₄ @ 95 °C indicate strong acid resistance; >10¹⁴ Ω·cm volume resistivity suppresses pitting currents in chloride-rich streams.
    2. Seal integrity under load2,500 MPa compressive strength and 500 MPa flexural strength keep the trim stable at high differential pressures; 6–7 MPa·m½ toughness limits crack growth at seats.
    3. Thermal upset tolerance450 ∆T °C thermal-shock capacity and 10×10⁻⁶/K CTE maintain seat alignment during hot restarts, reducing leak paths.

    ✅ ️Problem Solved

    Alloy-lined valves in an acid chlorination loop showed pitting and leakage within weeks, forcing emergency stops. ADCERAX® MSZ Ceramic Ball Valve replaced the trim with Mg-PSZ exhibiting 2,500 MPa compressive strength and acid loss ≤0.34 mg/cm²/day in strong acids. During high-chloride batches and rapid heat-up/flush cycles, thermal shocks near commissioning transients were absorbed by the 450 ∆T °C tolerance. Leak checks remained within control-valve tightness targets (Class VI regime) across the initial inspection window, avoiding unplanned shutdown exposure.

  • Pharmaceutical CIP/SIP Systems

    ✅Key Advantages

    1. Steam-cycle stability450 ∆T °C thermal-shock resistance and 10×10⁻⁶/K CTE keep sealing consistent through SIP steam at 121–134 °C; material capability to 2,100 °C provides wide safety margin.
    2. Caustic/acid cleaning resistance — NaOH testing shows 0.95 mg/cm²/day weight loss at 30% @ 80 °C; acid data of 0.1 mg/cm²/day in 60% HNO₃ @ 90 °C support durability across CIP chemistries.
    3. Ion-free flow path — Ceramic trim with >10¹⁴ Ω·cm resistivity and 1,100 HV hardness avoids metal ion leaching and wear debris during repeated sterilization cycles.

    ✅ ️Problem Solved

    Stainless valves on a vial-filling line faced SIP/CIP alternation, with ion leaching concerns and rising leak rates after several cycles. ADCERAX® MSZ Ceramic Ball Valve introduced an inert Mg-PSZ ball/seat; caustic exposure tolerance (0.95 mg/cm²/day at 30% NaOH, 80 °C) and thermal-shock capacity (450 ∆T °C) matched the cleaning profile. Post-retrofit, steam-cycle transitions preserved seat contact without measurable drift, and swab tests showed no metallic contamination signals. The line maintained Class-target sealing through qualification and routine production.ctivity targets.

  • Food Processing High-Temperature Pipelines

    ✅Key Advantages

    1. Heat-sterilization endurance450 ∆T °C thermal-shock rating withstands rapid hot-rinse/steam to ambient swings; 3 W/m·K thermal conductivity moderates heat flux through the trim.
    2. Non-reactive contact surface — Acid loss 0.1 mg/cm²/day (60% HNO₃ @ 90 °C) and alkali loss 0.95 mg/cm²/day (30% NaOH @ 80 °C) indicate low reactivity to detergents and sanitizers.
    3. Wear and fouling resistance1,100 HV hardness limits micro-abrasion from particulates; 6–7 MPa·m½ toughness reduces chip initiation at frequent actuations.

    ✅ ️Problem Solved

    A hot-fill sauce line ran daily heat sterilization and acidic detergent cycles; metal valves developed scaling and sealing defects, causing batch holds. ADCERAX® MSZ Ceramic Ball Valve delivered a chemically inert trim with documented acid/alkali loss (≤0.95 mg/cm²/day) and 1,100 HV surface hardness. Repeated thermal swings were accommodated by 450 ∆T °C capability, keeping the seat interface stable. The upgrade sustained hygienic sealing across production shifts while minimizing clean-in-place downtime.

User Guide for MSZ Ceramic Ball Valve

The MSZ Ceramic Ball Valve is designed for demanding industrial environments, and its proper use ensures long service life and reliable performance. This guide provides practical advice from installation to routine checks, helping engineers and maintenance teams avoid unnecessary downtime. By following these instructions, customers can fully benefit from the unique durability and stability of the them.

  • Installation Precautions

    1. Always verify fluid parameters such as temperature, pressure, and chemical composition before installation. Proper selection ensures the valve’s 500 MPa flexural strength and 2,500 MPa compressive strength are fully utilized.
    2. Ensure correct flow direction alignment and use stable supports during fitting. Incorrect positioning may reduce the effectiveness of the 450 ∆T °C thermal shock resistance.
    3. Prevent sudden impacts or vibration during assembly. Excessive force may compromise sealing integrity even though the valve material has 6–7 MPa·m½ fracture toughness.

  • Operational Guidance

    1. Operate the valve gradually under pressure to maintain stable sealing and reduce internal stress cycles. Sudden changes can challenge the 10×10⁻⁶/K thermal expansion coefficient.
    2. Regularly monitor for flow stability in corrosive or slurry environments. Consistent readings confirm the performance of its 1,100 HV hardness and anti-abrasion qualities.
    3. Use suitable actuators or manual operation torque settings. Overloading may accelerate wear despite the valve’s 2,100 °C maximum service temperature capacity.

  • Maintenance and Inspection

    1. Inspect sealing surfaces during scheduled shutdowns. Minimal wear rates (≤0.34 mg/cm²/day in sulfuric acid) should be confirmed under aggressive chemical service.
    2. Replace gaskets or packing if any leakage is detected. Even with >10¹⁴ Ω·cm volume resistivity, sealing elements must be maintained for system safety.
    3. Record service cycles and valve actuation frequency. This helps predict replacement intervals and leverage the Weibull modulus 12 M reliability data.

  • Storage and Handling

    1. Store valves in a dry, vibration-free area with protective packaging to preserve factory condition. Packaging includes reinforced cartons and wooden crates for global transport.
    2. Avoid contact with acidic vapors or abrasive dusts during storage. Even though corrosion resistance is strong, contamination may affect long-term performance.
    3. Keep valves in upright positions on pallets or racks. This prevents stress on flanges and maintains structural integrity ensured by the 250 GPa elastic modulus.

FAQs about MSZ Ceramic Ball Valve

  1. Q: How does the MSZ Ceramic Ball Valve perform under strong acid and alkali environments?
    A: The MSZ Ceramic Ball Valve offers exceptional chemical resistance, with weight loss as low as 0.1 mg/cm²/day in nitric acid and 0.34 mg/cm²/day in sulfuric acid. This ensures reliable performance in highly corrosive pipelines. Customers avoid premature valve failure and costly downtime.
  2. Q: What makes the MSZ Ceramic Ball Valve suitable for abrasive slurry transport?
    A: With hardness around 1,100 HV and flexural strength above 500 MPa, the valve resists abrasion caused by particles in mining slurry. This prevents erosion of sealing surfaces, ensuring stable flow control. It helps reduce frequent replacements and maintenance costs.
  3. Q: Can the MSZ Ceramic Ball Valve handle rapid temperature changes in industrial processes?
    A: Yes, the valve has a thermal shock resistance of 450 ∆T°C, allowing it to survive sudden quenching or rapid heating. This prevents cracks and leakage during hot-cold cycles. It gives operators confidence in continuous and safe operation.
  4. Q: What is the maximum operating temperature of ADCERAX® MSZ Ceramic Ball Valve?
    A: The valve withstands a maximum service temperature of 2,100 °C, making it suitable for extreme thermal applications. Unlike polymer-lined or alloy valves, it does not soften or deform under high heat. This ensures longer operational life in severe environments.
  5. Q: How does the MSZ Ceramic Ball Valve ensure sealing integrity under high pressure?
    A: With a compressive strength of 2,500 MPa, the ball and seat maintain sealing even in demanding high-pressure pipelines. This eliminates premature leakage that is common in metal valves. Customers gain operational reliability and reduced risk of shutdown.

Client Experiences with ADCERAX® MSZ Ceramic Ball Valve

  • ⭐️⭐️⭐️⭐️⭐️
    “The MSZ Ceramic Ball Valve was installed in our chlorination unit, and the results exceeded expectations. We used to replace alloy valves every few months, but this product’s acid corrosion resistance has kept the system stable for over a year. The sealing integrity under thermal shock has also prevented costly shutdowns.”
    – Mark H., Process Engineer, PetroChem Solutions GmbH
  • ⭐️⭐️⭐️⭐️⭐️
    “In our slurry transport line for nickel ore, the MSZ Ceramic Ball Valve has shown outstanding wear resistance. After continuous operation, there was no visible erosion on the ball or seat. This level of extended service life helped reduce maintenance costs significantly.”
    – Anna R., Operations Manager, Nordic Minerals Ltd.
  • ⭐️⭐️⭐️⭐️⭐️
    “We deployed the MSZ Ceramic Ball Valve in high-temperature steam cleaning cycles for pharmaceutical production. Unlike stainless steel valves, it showed no metal ion leaching and maintained a biocompatible flow path during repeated sterilization. This ensured regulatory compliance and safeguarded product quality.”
    – David P., QA Director, BioPharmaTech Inc.
  • ⭐️⭐️⭐️⭐️⭐️
    “Our food processing plant relies on equipment that must withstand heat sterilization and aggressive cleaning agents. The MSZ Ceramic Ball Valve offered a smooth non-reactive surface and consistent thermal stability under hot rinsing cycles. Production has continued without leakage or hygiene issues since installation.”
    – Emily S., Plant Supervisor, EuroFoods Processing SA
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Customization Services for MSZ Ceramic Ball Valve

ADCERAX® MSZ Ceramic Ball Valve can be tailored to meet the unique requirements of diverse industrial processes. Customization ensures that each valve is adapted for specific flow media, operational environments, and system integration needs, helping customers achieve higher efficiency and reliability.

Flow Control Designs

Flow patterns can be customized to balance precision control with full flow capacity.

  • V-Port Design — Precise flow modulation ensures stable operation.
  • O-Port Design — Unrestricted passage supports maximum flow rates.
  • Curve Optimization — Flow coefficient stability improves process safety.

End Connection Adaptations

Connection styles can be adjusted for compatibility with existing pipeline standards.

  • Flange Interface — Reliable sealing adapts to industrial pipelines.
  • Threaded Ends — Flexible integration simplifies installation work.
  • Actuator Mounting — Standardized interface eases automation setup.

Operating Environment Adjustments

Specific environments require tailored solutions to maintain valve reliability.

  • High Temperature — Thermal stability ensures consistent performance.
  • Corrosive Media — Chemical inertness protects against acid attack.
  • Slurry Handling — Abrasion resistance prevents surface erosion issues.

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