Low Temperature Valve Stem Packing, PTFE, 5-500 mm, 25 MPa

Low Temperature Valve Stem Packing, PTFE, 5-500 mm, 25 MPa

Key Specifications / Features

The Low Temperature Valve Stem Packing Plant offers high-performance packing solutions for valve stems, featuring PTFE material with sintered end rings and braided intermediate rings. Designed for applications requiring low fugitive emissions, this plant produces packing in sizes ranging from 5 to 500 mm, with a maximum pressure rating of 25 MPa (250 bar). It ensures reliable sealing and minimal emissions, making it ideal for industries where environmental control and safety are paramount.
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Detail Information

Product Name: Low Temperature Packing Set, Valve Stem Packing, Low Fugitive Emission Control
Components: Sintered End Rings, Braided Intermediate Rings
Material: PTFE
Diameters: 5-500 mm ID
Pressure: 25 MPa, 250 bar
PH: 0-14
Temperature Range: -100°C to 250°C

Prime Features

Innovative engineered PTFE low emission packing for low temperatures, tested and certified as per ISO 15848 for a temperature range of -46°C to +200°C
In-built solid lubricant with exceptionally low coefficient of friction and high load-bearing capacity significantly reduces packing friction even after a high number of cycles
Engineered profile of end rings helps in equivalent load transfer for the best sealing performance
High purity with excellent chemical resistance
Long life valve sealing with minimum maintenance
Clean and highly conformable for ease of fitting

Typical Applications

Suitable for use as valve packing for potable water applications.
Applicable for critical applications such as acids & alkalis of any concentration, solvents, organic/inorganic chemicals, aromatic hydrocarbons, hydrogen service, food & pharma applications.

The packing is a low emission packing set designed for low temperature applications. It consists of engineered PTFE sintered end rings and braided intermediate rings made from tough, cross-plaited thermally stable PTFE fiber yarn. The packing is impregnated with a high-temperature proprietary lubrication package to ensure low friction even at sub-zero temperatures.

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FAQs

Low-emission packing systems are specifically engineered to minimize microscopic leakage along the valve stem, which is a common source of fugitive emissions in industrial plants.

Compared with conventional packing, low-emission designs achieve better performance through:

Higher material density control to reduce permeation paths

Pre-compressed or die-formed graphite rings for stable sealing stress

Optimized load distribution using live-loading spring systems

Improved surface finish compatibility with stem materials

These design improvements allow the packing to maintain consistent sealing force even under thermal cycling and vibration. As a result, leakage levels can be reduced to extremely low thresholds (often measured in parts per million), supporting compliance with environmental regulations and reducing operational losses.

Basic Concept

Low Emission Valves refer to valves that, through special design and manufacturing processes of the stem packing and mid-seat gasket, control the leakage of media (gases, liquids) to extremely low levels. They are primarily used in industrial scenarios with high safety and environmental protection requirements. The core objective is to reduce or prevent the leakage of harmful media (such as volatile organic compounds (VOCs), toxic gases, flammable and explosive substances, etc.) into the external environment. Therefore, low emission valves offer multiple advantages in terms of energy conservation, emission reduction, reduced safety risks, and environmental pollution.

Key Technical Standards and Leakage Grades

The performance of Low Emission Valves is quantified by their leakage rate, and different industries follow different standards. Common standards include:

1. International Standards

ISO 15848-1: This standard classifies valve leakage grades into four levels: A (the highest requirement), B, C, and D. Grade A requires a leakage rate of ≤100 ppm (by volume).

API 624 (American Petroleum Institute): This standard, applicable to the refining and chemical industries, specifies a leakage rate of ≤100 ppm (for gases) under specific pressures.

EPA Standard (U.S. Environmental Protection Agency): This standard, targeting VOC emissions, requires a leakage rate of ≤500 ppm.

2. Chinese Standards

GB/T 42223-2022: This standard, which references international standards, regulates the design, manufacturing, and testing of Low Emission Valves.

At first, manufacturing low emission valves was pretty much the same for us as it was for other regular valve manufacturers in China. If we ran into problems like valves not passing tests or having leak rates that kept changing, we'd just try to get better packing materials from a different supplier. We didn't really stop to think about the bigger picture, like how the whole manufacturing process or the properties of the materials we were using might be causing the issues.

Over time, we figured out that the metal parts of the valves were pretty reliable, but we hadn't been paying enough attention to the non-metal parts that actually do the sealing. And those parts are super important for making sure the valves don't leak. So, back in 2008, we decided to focus on manufacturing low emission valves from start to finish.

First, we created a special team just for figuring out better ways to seal valves. They dug deep into how to make the seals work really well and how to build them. At the same time, we started working closely between the people who design the seals and the people who manufacture the valves. By tweaking the design of the seals and how we put the valves together, we made a system where everything works together perfectly. After that, we tested a bunch of different valves to see how well they sealed in all kinds of situations: different sizes, pressures, and temperatures. All the data we collected from these tests helped us keep improving our valves.

Now, when we manufacture a bunch of valves and check them randomly, they all meet the tough standards of API 624 and ISO 15848-1. We've gone from just following a process to really understanding and controlling the technology ourselves.

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