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Overview of T Strainer
Overview of T Strainer
2025-01-22

In industrial piping systems, impurities are often a major risk that affects the stable operation of equipment. The T Strainer, as an efficient filtering device, can effectively remove solid particles and impurities from the pipeline medium, protecting critical equipment from damage and thereby enhancing the overall reliability of the system. What is a T Strainer? The T Strainer, named for its shape resembling the letter "T," is a filtering device widely used in piping systems. Its design features include a T-shaped body, a removable filter element, and flange connections, making it easy to install, clean, and maintain. The strainer is typically made of high-strength metal materials, ensuring reliable performance in high-pressure and high-temperature environments.   Working Principle of the T Strainer The working principle of the T Strainer is to introduce liquid or gas medium into the strainer body, where the internal filter element captures solid particles and impurities from the medium, while the clean fluid continues to flow downstream. When the accumulated impurities reach a certain level, the user can remove the cover of the strainer to clean the filter element, thus restoring the filtering performance.   Main Applications of the T Strainer (1) Water Treatment Industry In water treatment systems, T strainers are commonly used to remove sand, particles, and other suspended solids, protecting downstream pumps and precision equipment.  (2) Oil and Chemical Industry In the petrochemical sector, T strainers filter impurities from process media, preventing corrosive particles or deposits from damaging equipment.  (3) Power Generation Industry In thermal power plants and nuclear power stations, T strainers are used to filter particles from cooling water or steam systems, ensuring the stable operation of critical components.  (4) Gas Transmission Pipelines T strainers are also used for filtering gases such as natural gas and compressed air, effectively removing fine particles and extending equipment lifespan.   Advantages of the T Strainer (1) High Filtration Efficiency: The filter element can be selected with different mesh sizes based on requirements, making it suitable for various application scenarios.  (2) Easy Maintenance: Cleaning and replacing the filter element is very convenient, with no need to disassemble the entire strainer body.  (3) Strong Adaptability: It can withstand high-pressure and high-temperature conditions, making it suitable for a wide range of industrial fields.  (4) Cost-Effective: Compared to more complex filtering equipment, the T strainer offers high cost-effectiveness and low maintenance costs.   Precautions for Use (1) Regular Cleaning of the Filter Element: Accumulation of impurities can reduce filtration efficiency and even lead to pipeline blockage, so a cleaning schedule should be set based on the working conditions.  (2) Choose the Right Material: Select a f...

What is the Difference Between API607 and API6D Ball Valve?
What is the Difference Between API607 and API6D Ball Valve?
2025-01-10

In the industrial valve sector, API 607 and API 6D are two commonly referenced and significant standards, each applicable to ball valves under different operating conditions. Understanding their differences helps engineers and procurement personnel select the right product for specific applications. Scope of Application API 607 primarily applies to fire-safe valves, including ball valves, gate valves, and plug valves. Its objective is to ensure the sealing performance of valves during a fire to prevent the fire from spreading. API 607 ball valves are typically used in high-risk conditions such as chemical, petrochemical, and oil and gas industries. API 6D, on the other hand, focuses on ball valves used in pipeline transportation systems, covering aspects such as design, manufacturing, testing, and operation. This standard is widely applied in long-distance pipelines, LNG stations, and other pipeline transportation scenarios, emphasizing valve reliability and operational performance. Depending on the specific application, fire-safe designs may or may not be required under API 6D.   Design Requirements API 607 ball valves must meet fire-safe design requirements, ensuring basic sealing functionality in high-temperature environments. Seats, seals, and other critical components are required to use fire-resistant materials to prevent media leakage even if damaged during a fire. API 6D ball valves, in contrast, emphasize structural integrity and flow control performance. They typically feature double block and bleed (DBB) functionality and a full-bore design to minimize fluid resistance. Additionally, API 6D mandates reliability under high-pressure and low-temperature conditions, with fire-safe design being optional based on the specific application requirements.   Sealing Performance API 607: Sealing performance is the most critical aspect of the API 607 standard. It requires valves to maintain a certain level of sealing capability during a fire to prevent media leakage. Fire-safe valve seals, seats, and other components must possess high-temperature resistance, typically utilizing metal seals or materials designed to withstand elevated temperatures. These valves must pass high-temperature exposure tests for a specific duration to ensure that they can endure temperature fluctuations and provide effective sealing in fire scenarios. API 6D: While API 6D emphasizes valve sealing performance, it does not impose stringent fire-sealing requirements like API 607. The inclusion of fire-safe design in API 6D valves depends on the application. The standard focuses on sealing performance under normal operating conditions, including media leakage control (e.g., gas-tightness testing). API 6D sealing requirements are primarily centered on standard pressure and temperature conditions, making the valves suitable for most pipeline transportation media.   Material Requirements API 607: To ensure fire-safe functionality, API 607 imposes stringent requirem...

DERVOS Hydrogen Valve Inspection Requirements
DERVOS Hydrogen Valve Inspection Requirements
2024-11-25

1. All hydrogen valves are manufactured to meet low leakage requirements, in accordance with ISO 15848-2 standards (stem according to Class B, body seals <50ppmv), using low leakage packing.   2. The pressure testing duration for all valves is performed for twice the time required by API 598 or ISO 5208 standards. When conducting hydrostatic tests on austenitic stainless steel, the chloride ion content in the water must not exceed 100 PPM.   3. The S&P content of all carbon steel materials shall not exceed 0.02%. For welded ends, the carbon content of WCB and WCC materials shall not exceed 0.23%, and the carbon equivalent shall not exceed 0.43%.   4. For chromium-molybdenum steel materials, WC6, WC9, F11.1, and F22.1 are preferred. The carbon content shall not exceed 0.16%, and the S&P content shall not exceed 0.02%.   5. For stainless steel, materials containing stabilizing elements such as Nb and Ti are preferred. For forgings, F321 and F347 are used, while for castings, CF8C type can be selected. The chemical composition and mechanical properties of all materials must meet the requirements specified in the relevant standards.   6. All pressure-bearing components of the valves must undergo non-destructive testing. For components subjected to RT testing, the following requirements must be met:  a. Porosity (A): No less than Grade II  b. Slag inclusion (B): No less than Grade II  c. Shrinkage (CA, CB, CC, CD): No less than Grade II  d. Hot cracks and cold cracks (D, E): None  e. Inclusions: None   7. All valve weld overlay sealing surfaces and welded areas must undergo PT testing, and no cracks are permitted in the test results.   8. For forged valves made of carbon steel and chromium-molybdenum steel, UT or MT testing may also be performed. The test results must meet the requirements of the relevant standards (MT in accordance with ASTM E709, UT in accordance with ASTM A388).   9. For casting repair welding: repair welding is not acceptable if the depth exceeds 20% of the wall thickness or 25 mm, or if the area exceeds 65 square centimeters.   10. The forging ratio for all forged valves must not be less than 3.   11. All non-machined surfaces of stainless steel valve castings and forgings must undergo pickling and passivation treatment.   12. All components must be thoroughly derusted and cleaned before assembly. Any parts that may come into contact with the medium are strictly prohibited from being assembled with grease, and no residual grease that cannot be removed is allowed (as a comprehensive degreasing process will be conducted after the pipeline installation is completed). For carbon steel and chromium-molybdenum steel valves, the application of anti-rust oil must be carefully controlled-apply only enough to prevent rust during transportation, avoiding excessive coating.   13. The exterior quality of all valves must comply with the requirements...

DN200 PN10 Resilient Gate Valve Non-rising Stem, RF
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DN200 PN10 Resilient Gate Valve Non-rising Stem, RF

The gate valve is made of ductile iron GGG50 . The valves disc is rubber-packed to get excellent sealing effect by the rubber's resilient deformation. Non-rising resilient seated gate valves solve the problem in general gate valves such as leakage, rusting etc. And it also saves space.

  • Payment:

    30% when order confirmed, 70% before shipment
  • Product Origin:

    China
  • Color:

    Customization
  • Shipping Port:

    Shanghai, China
  • Lead Time:

    30~60 days Ex Works after order confirmation
  • Material:

    Ductile Iron GGG50
  • Method of Operation:

    handwheel
Inquiry now
Product Detail

Quick Detail

Type

Gate Valve

Nominal Diameter

DN200

Nominal Pressure

PN10

Construction

Resilient Type; Non-rising Stem;B.B

Connection

RF

Operation

Handwheel

Design & Manufacture

DIN 3352

End to End 

DIN 3202

Flange End Dimension

DIN2532, DIN2533

Temperature Range

-29℃~+425℃

Body Material

GGG50

Wedge Material

GGG50+EPDM

Stem

2Cr13

Media

W.O.G.

 

Technical Drawing


Painting &Packing



DVS Quality Checking

Quality means everything in Dervos. Quality checking team will do inspections according to standard procedure and provide reports. Our QC team will check valve quality from casting and forging, machining, pressure testing, dimension checking, painting & packing.

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Leave a message

    If you are interested in our products and want to know more details,please leave a message here,we will reply you as soon as we can.

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