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PE ground-source heat pump pipe

PE ground-source heat pump-specific pipe materials: These are a new type of product made from high-quality polyethylene resin as the primary raw material, with the addition of necessary antioxidants and UV absorbers, and produced through extrusion processing. They operate at working pressures ranging from 1.0 MPa to 1.6 MPa and are suitable for use in ground-source heat pump systems. Principle of Operation: PE ground-source heat pump-specific pipe materials exhibit significantly higher tensile strength and greater pressure-bearing capacity compared to conventional PE water pipes. They have low thermal expansion under stress, excellent resistance to environmental stress cracking, good creep resistance, and outstanding toughness and flexibility. These pipes demonstrate strong adaptability to uneven foundations and displacement, and can withstand harsh environmental conditions such as earthquakes and typhoons. Special additives incorporated into the raw materials give these pipes superior weather resistance (including resistance to ultraviolet radiation) and long-term thermal stability compared to standard PE water pipes. They also feature strong corrosion resistance, eliminating the need for additional anti-corrosion treatments when used to convey corrosive media containing antifreeze agents, and boast an exceptionally long service life. With smooth inner walls, they offer low flow resistance and high hydraulic conductivity, thereby reducing construction costs. They also display excellent wear resistance and are highly resistant to abrasion. The thermal conductivity coefficient of PE ground-source heat pump-specific pipe materials is 0.41 W/m·K, ensuring that winter construction is not adversely affected. Electrofusion (or hot-melt) connections are convenient and reliable, making installation and maintenance simple and straightforward (without requiring water shut-off during the process). When used in conjunction with ground-source heat pumps, this system harnesses shallow geothermal resources found near the Earth's surface—typically within depths of less than 400 meters—as a source of cold and heat for energy conversion in heating and air-conditioning systems. These shallow geothermal resources can be referred to as "geothermal energy," which refers to the low-temperature thermal energy stored in soil, groundwater, rivers, or lakes, derived from absorbed solar and geothermal energy. This form of energy is considered a clean and renewable energy source.


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pe

管材

聚乙烯

施工

PE地源热泵管



Product Details

I. Introduction to PE Pipe Products

Polyethylene, abbreviated as PE in English, is a thermoplastic resin produced by the polymerization of ethylene monomers. During the polymerization process, ethylene monomers are influenced by various polymerization reaction conditions, such as pressure and temperature, which result in resins with different densities. Consequently, polyethylene can be classified into three types: high-density polyethylene (HDPE), with a density ranging from 0.941 to 0.965 g/cm³; medium-density polyethylene (MDPE), with a density ranging from 0.910 to 0.925 g/cm³; and low-density polyethylene (LDPE), with a density ranging from 0.910 to 0.925 g/cm³. Internationally, based on the "Minimum Required Strength under Long-Term Hydrostatic Pressure (MRS)," polyethylene resins are further divided into five grades: PE32, PE40, PE63, PE80, and PE100. Among these, PE100 stands out for its superior overall performance—combining excellent mechanical properties, strength, and cost-effectiveness—and has now become the primary material for PE pipes.

 

II. Product Features of PE Pipes

Corrosion-resistant: PE pipes have an extremely stable molecular structure and are free from electrochemical corrosion. With the exception of a few oxidizing agents, they can withstand erosion by a wide variety of chemical media.

It exhibits excellent resistance to corrosion and degradation. Among various pipeline materials, PE pipes have a remarkably low corrosion rate; when conveying mineral sand slurries, their corrosion resistance is more than four times that of steel pipes.

With excellent flexibility and impact resistance, PE pipes are highly resilient materials whose elongation at break exceeds 500%. They exhibit outstanding resistance to impacts and earthquakes and demonstrate remarkable adaptability to uneven settlement of the pipe foundation.

With a long service life and high molecular weight, PE pipes exhibit excellent stability and resistance to aging. Under normal operating temperature and pressure conditions, the service life of PE pipes can be guaranteed to exceed 50 years.

Excellent hygiene and environmental performance: PE pipes are manufactured without the addition of metal stabilizers, making the material non-toxic, free from scale buildup, and incapable of harboring bacteria—thus ensuring it is a safe and hygienic piping material. Moreover, PE itself is recyclable and does not release any substances that could harm the environment.

Safe and reliable construction connection methods—PE pipes primarily use hot-melt or electrofusion connections, which essentially ensure that the material and structure of the joint are integrated with the pipe itself, eliminating any concerns about water or gas leaks.

Lightweight, easy to handle and install, with a weight only one-eighth that of metal pipes, it’s easy to transport and bend. Its welding process is simple and quick, resulting in low overall project costs and significant economic benefits.

Applications of PE Pipes

Pipes for gas use, pipes for natural gas use, ventilation pipes for coal mines, oil transportation pipelines, water supply pipes for urban and rural areas, sewage discharge pipes, fluid-conveying pipes for chemical, pharmaceutical, paper-making, and other industrial plants, drilling pipes, irrigation pipes for agricultural fields, piping systems for food processing plants handling beverages, milk, alcoholic drinks, and other food products, slurry-conveying pipelines, protective conduits for power cables, pipes for postal and telecommunications applications, and pipes for air conditioning and condensate drainage.

 

Construction Methods and Precautions for Polyethylene (PE) Pipes

 

Electrofusion Welding Construction Method

Polyethylene pipe connections in Class B are made using three methods: electrofusion welding, hot-melt socket fusion, and hot-melt butt fusion.

Electrofusion welding: Suitable for connecting pipes to electrofusion fittings; the implementation steps are as follows:

Wipe clean the connection surfaces of pipes and fittings with a clean cotton cloth.

Cut the pipe using a rotating cutting blade to ensure that the end face is perpendicular to the axis; mark the insertion depth, then use a rotating scraper to remove the oxide layer from the surface of the PE pipe.

When connecting, align the corresponding fittings so that they are on the same axis, and insert the pipe into the socket of the fitting.

Set the electrofusion welder according to the temperature indicated on the outer surface of the fittings, as well as the heating and cooling times.

Start the welding machine to perform welding.

 

Hot-melt socket fusion construction method:

Wipe clean the pipe and fitting connection surfaces with a clean cotton cloth.

Cut the pipe using a rotating cutter to ensure the end face is perpendicular to the axis; mark the insertion depth; then use a rotating scraper to remove the oxidation layer from the surface of the PE pipe.

Insert the pipe and fittings vertically into the hot-melt machine mold without rotation, to the specified depth, and heat them for the prescribed duration.

Immediately after heating is complete, remove both the pipe and the fitting simultaneously from the hot-melt machine. Quickly connect the pipe and fitting without any rotation, inserting them until they reach the marked depth indicator. Do not move them for at least 15 seconds, then allow them to cool naturally—connection is now complete.

 

Hot-melt butt fusion construction method

Check whether all components of the welding machine are operating normally.

Secure the two pipe sections onto the welding machine fixture. By adjusting the clamping bolts, ensure that the two pipe sections are aligned at the same horizontal level, with an anchorage ratio not exceeding 10% of the pipe wall thickness.

Insert the milling cutter, start the milling cutter first, then move the fixture to mill the ends of the two pipe materials, flatten the ends of both pipes, and remove the oxide layer from the pipe end surfaces.

Align the ends of the two pipes again and check the misalignment rate. The misalignment rate should not exceed 10% of the pipe wall thickness.

Place it on the heating plate and heat at the specified temperature and for the specified duration (temperature: 220 ± 10℃, heating time: 1 mm/10 s).

After placing the pipe into the heating plate, operate the hydraulic system to advance the clamp, pressing the pipe end firmly against the heating plate. At this point, continue applying pressure to ensure that the pipe end is evenly flared. Once the flaring is complete, release the pressure from the hydraulic system and start the timer to begin timing the process.

 

After heating is complete, promptly remove the heating plate and operate the moving fixture to join the two pipes. Once the pipes are connected, a uniform flange will form, with consistent flange height and width. At the same time, maintain the hydraulic system pressure and allow sufficient cooling time. The cooling time is also calculated based on the pipe wall thickness—specifically, a 1 mm wall thickness requires a cooling time of 1 minute.

 

Construction Precautions

When welding, pay attention to keeping the pipe section clean and ensuring that the pipe ends are free of oil, dirt, and other contaminants. Otherwise, this could lead to weak welds or the formation of pitting during welding.

For PE hot-melt butt fusion, heating should be stopped when uniform burrs appear on the end faces of both pipe sections; then, release the pressure and proceed with the heating time.

During the cooling phase of PE hot-melt butt fusion, do not use forced cooling methods such as air cooling or water cooling to avoid creating false welds.

 

 

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PE ground-source heat pump pipe

PE ground-source heat pump-specific pipe materials: These are a new type of product made from high-quality polyethylene resin as the primary raw material, with the addition of necessary antioxidants and UV absorbers, and produced through extrusion processing. They operate at working pressures ranging from 1.0 MPa to 1.6 MPa and are suitable for use in ground-source heat pump systems. Principle of Operation: PE ground-source heat pump-specific pipe materials exhibit significantly higher tensile strength and greater pressure-bearing capacity compared to conventional PE water pipes. They have low thermal expansion under stress, excellent resistance to environmental stress cracking, good creep resistance, and outstanding toughness and flexibility. These pipes demonstrate strong adaptability to uneven foundations and displacement, and can withstand harsh environmental conditions such as earthquakes and typhoons. Special additives incorporated into the raw materials give these pipes superior weather resistance (including resistance to ultraviolet radiation) and long-term thermal stability compared to standard PE water pipes. They also feature strong corrosion resistance, eliminating the need for additional anti-corrosion treatments when used to convey corrosive media containing antifreeze agents, and boast an exceptionally long service life. With smooth inner walls, they offer low flow resistance and high hydraulic conductivity, thereby reducing construction costs. They also display excellent wear resistance and are highly resistant to abrasion. The thermal conductivity coefficient of PE ground-source heat pump-specific pipe materials is 0.41 W/m·K, ensuring that winter construction is not adversely affected. Electrofusion (or hot-melt) connections are convenient and reliable, making installation and maintenance simple and straightforward (without requiring water shut-off during the process). When used in conjunction with ground-source heat pumps, this system harnesses shallow geothermal resources found near the Earth's surface—typically within depths of less than 400 meters—as a source of cold and heat for energy conversion in heating and air-conditioning systems. These shallow geothermal resources can be referred to as "geothermal energy," which refers to the low-temperature thermal energy stored in soil, groundwater, rivers, or lakes, derived from absorbed solar and geothermal energy. This form of energy is considered a clean and renewable energy source.

Keywords:

Product Inquiries:

  • Product Description
  • I. Introduction to PE Pipe Products

    Polyethylene, abbreviated as PE in English, is a thermoplastic resin produced by the polymerization of ethylene monomers. During the polymerization process, ethylene monomers are influenced by various polymerization reaction conditions, such as pressure and temperature, which result in resins with different densities. Consequently, polyethylene can be classified into three types: high-density polyethylene (HDPE), with a density ranging from 0.941 to 0.965 g/cm³; medium-density polyethylene (MDPE), with a density ranging from 0.910 to 0.925 g/cm³; and low-density polyethylene (LDPE), with a density ranging from 0.910 to 0.925 g/cm³. Internationally, based on the "Minimum Required Strength under Long-Term Hydrostatic Pressure (MRS)," polyethylene resins are further divided into five grades: PE32, PE40, PE63, PE80, and PE100. Among these, PE100 stands out for its superior overall performance—combining excellent mechanical properties, strength, and cost-effectiveness—and has now become the primary material for PE pipes.

     

    II. Product Features of PE Pipes

    Corrosion-resistant: PE pipes have an extremely stable molecular structure and are free from electrochemical corrosion. With the exception of a few oxidizing agents, they can withstand erosion by a wide variety of chemical media.

    It exhibits excellent resistance to corrosion and degradation. Among various pipeline materials, PE pipes have a remarkably low corrosion rate; when conveying mineral sand slurries, their corrosion resistance is more than four times that of steel pipes.

    With excellent flexibility and impact resistance, PE pipes are highly resilient materials whose elongation at break exceeds 500%. They exhibit outstanding resistance to impacts and earthquakes and demonstrate remarkable adaptability to uneven settlement of the pipe foundation.

    With a long service life and high molecular weight, PE pipes exhibit excellent stability and resistance to aging. Under normal operating temperature and pressure conditions, the service life of PE pipes can be guaranteed to exceed 50 years.

    Excellent hygiene and environmental performance: PE pipes are manufactured without the addition of metal stabilizers, making the material non-toxic, free from scale buildup, and incapable of harboring bacteria—thus ensuring it is a safe and hygienic piping material. Moreover, PE itself is recyclable and does not release any substances that could harm the environment.

    Safe and reliable construction connection methods—PE pipes primarily use hot-melt or electrofusion connections, which essentially ensure that the material and structure of the joint are integrated with the pipe itself, eliminating any concerns about water or gas leaks.

    Lightweight, easy to handle and install, with a weight only one-eighth that of metal pipes, it’s easy to transport and bend. Its welding process is simple and quick, resulting in low overall project costs and significant economic benefits.

    Applications of PE Pipes

    Pipes for gas use, pipes for natural gas use, ventilation pipes for coal mines, oil transportation pipelines, water supply pipes for urban and rural areas, sewage discharge pipes, fluid-conveying pipes for chemical, pharmaceutical, paper-making, and other industrial plants, drilling pipes, irrigation pipes for agricultural fields, piping systems for food processing plants handling beverages, milk, alcoholic drinks, and other food products, slurry-conveying pipelines, protective conduits for power cables, pipes for postal and telecommunications applications, and pipes for air conditioning and condensate drainage.

     

    Construction Methods and Precautions for Polyethylene (PE) Pipes

     

    Electrofusion Welding Construction Method

    Polyethylene pipe connections in Class B are made using three methods: electrofusion welding, hot-melt socket fusion, and hot-melt butt fusion.

    Electrofusion welding: Suitable for connecting pipes to electrofusion fittings; the implementation steps are as follows:

    Wipe clean the connection surfaces of pipes and fittings with a clean cotton cloth.

    Cut the pipe using a rotating cutting blade to ensure that the end face is perpendicular to the axis; mark the insertion depth, then use a rotating scraper to remove the oxide layer from the surface of the PE pipe.

    When connecting, align the corresponding fittings so that they are on the same axis, and insert the pipe into the socket of the fitting.

    Set the electrofusion welder according to the temperature indicated on the outer surface of the fittings, as well as the heating and cooling times.

    Start the welding machine to perform welding.

     

    Hot-melt socket fusion construction method:

    Wipe clean the pipe and fitting connection surfaces with a clean cotton cloth.

    Cut the pipe using a rotating cutter to ensure the end face is perpendicular to the axis; mark the insertion depth; then use a rotating scraper to remove the oxidation layer from the surface of the PE pipe.

    Insert the pipe and fittings vertically into the hot-melt machine mold without rotation, to the specified depth, and heat them for the prescribed duration.

    Immediately after heating is complete, remove both the pipe and the fitting simultaneously from the hot-melt machine. Quickly connect the pipe and fitting without any rotation, inserting them until they reach the marked depth indicator. Do not move them for at least 15 seconds, then allow them to cool naturally—connection is now complete.

     

    Hot-melt butt fusion construction method

    Check whether all components of the welding machine are operating normally.

    Secure the two pipe sections onto the welding machine fixture. By adjusting the clamping bolts, ensure that the two pipe sections are aligned at the same horizontal level, with an anchorage ratio not exceeding 10% of the pipe wall thickness.

    Insert the milling cutter, start the milling cutter first, then move the fixture to mill the ends of the two pipe materials, flatten the ends of both pipes, and remove the oxide layer from the pipe end surfaces.

    Align the ends of the two pipes again and check the misalignment rate. The misalignment rate should not exceed 10% of the pipe wall thickness.

    Place it on the heating plate and heat at the specified temperature and for the specified duration (temperature: 220 ± 10℃, heating time: 1 mm/10 s).

    After placing the pipe into the heating plate, operate the hydraulic system to advance the clamp, pressing the pipe end firmly against the heating plate. At this point, continue applying pressure to ensure that the pipe end is evenly flared. Once the flaring is complete, release the pressure from the hydraulic system and start the timer to begin timing the process.

     

    After heating is complete, promptly remove the heating plate and operate the moving fixture to join the two pipes. Once the pipes are connected, a uniform flange will form, with consistent flange height and width. At the same time, maintain the hydraulic system pressure and allow sufficient cooling time. The cooling time is also calculated based on the pipe wall thickness—specifically, a 1 mm wall thickness requires a cooling time of 1 minute.

     

    Construction Precautions

    When welding, pay attention to keeping the pipe section clean and ensuring that the pipe ends are free of oil, dirt, and other contaminants. Otherwise, this could lead to weak welds or the formation of pitting during welding.

    For PE hot-melt butt fusion, heating should be stopped when uniform burrs appear on the end faces of both pipe sections; then, release the pressure and proceed with the heating time.

    During the cooling phase of PE hot-melt butt fusion, do not use forced cooling methods such as air cooling or water cooling to avoid creating false welds.

     

     

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Heat-resistant polyethylene (PE-RT)

Product Introduction Polyethylene pipe for hot and cold water systems, abbreviated as PE-RT in English. PE-RT is a non-crosslinked polyethylene material suitable for hot water piping. It is a new type of polyethylene product manufactured using a special molecular design and synthesis process. This material is a copolymer of ethylene and octene. In terms of molecular structure, its main chain consists of linear polyethylene, while shorter molecular chains of octene form its side branches. During the polymerization reaction, the number and distribution of side branches on the polyethylene chains are moderately controlled, giving the material excellent heat resistance and outstanding long-term resistance to static hydraulic pressure. PE-RT also features easy bendability without deformation or rebound, making it an ideal pipe material for underfloor heating systems. Product Features Long service life; good thermal stability and long-term pressure resistance, meeting 50-year usage requirements when applied in hot water piping systems. Excellent low-temperature impact resistance; PE-RT pipes have superior low-temperature impact resistance, making them less likely to crack under impact during winter construction. Hygienic and non-toxic; Meiergu brand PE-RT pipe products belong to the "healthy and environmentally friendly" category of green building materials. All hygienic indicators meet national hygiene standards and can be directly used in pure water delivery systems. Good flexibility; the pipes can be straightened or bent easily, facilitating installation. No preheating of the pipes is required during installation in low-temperature environments, making construction convenient. Environmentally friendly; the material is recyclable, does not pollute the environment, and qualifies as an eco-friendly and energy-saving product. Stable processing performance; PEX has issues such as difficulty in controlling crosslinking uniformity, leading to complex processing that directly affects pipe performance. In contrast, PE-RT is easy to process, and its pipe performance is largely determined by the raw materials, ensuring relatively stable performance. Good heat dissipation performance; PE-RT has excellent heat dissipation properties, with a thermal conductivity coefficient of 0.4 W/m·K. In heating applications, this enhances heat transfer efficiency and saves significant energy. Application Fields PE-RT underfloor heating pipes are suitable for residential buildings, villas, hotels, office buildings, shopping malls, hospitals, theaters, schools, libraries, exhibition halls, conference centers, swimming pools, entertainment venues, and more. PE-RT underfloor heating pipes are also used in industrial fields such as greenhouses, flower houses, machine rooms, fish farms, nurseries, livestock farms, airports, as well as outdoor ground snow-melting projects including stations, parking lots, and outdoor sports areas. Building cold and hot water supply, potable water piping systems. Also applicable in the food industry for fluid transport pipelines in beverages, alcoholic drinks, milk, and other liquid products. PE-RT Pipe Installation Methods 1.1 Lay down insulation boards and secure them to the floor with steel nails. 1.2 Choose an indoor layout configuration. 1.3 Lay out and fix the pipes according to requirements. 1.4 After the pipes are laid and installed, gather them together at the manifold installation location. 1.5 Secure the manifold in its dedicated box. Conduct system hydrostatic tests before pouring the concrete filling layer and again after the concrete curing period. 2. Construction Precautions 2.1 When bending PE-RT pipes, no heating is required. The bending radius should not be less than 8 times the outer diameter of the pipe. Use fixing clips to secure the pipe, and place clips every 12 cm along the bend. 2.2 During pipeline laying, follow the design specifications. Pipes must be laid horizontally and vertically, aligned in a straight line, and fixed at the marked positions on the insulation layer. For straight sections, use clips every 60 cm to prevent pipe deformation. 2.3 After laying the PE-RT pipes, lay the steel mesh in sequence, then pour cement mortar, and finally pave the floor. The height from the original ground to the finished floor should be between 70–100 mm. The steel mesh used should have a diameter of 25 mm and a mesh size of 50 mm in length and width. 2.4 At the beginning and end of the heating pipes where they extend above the ground and reach 1 meter from the manifold, install protective sleeves or other insulation measures to prevent damage to the pipes from the edges of the floor during flooring installation. 2.5 When installing the manifold, fix it either on the wall or in a dedicated box. When installed horizontally, the manifold should be placed above the collector, with a center distance of 200 mm. The center of the collector should be no less than 300 mm above the ground. When installed vertically, the bottom of the manifold should be no less than 150 mm above the ground. After securely connecting the underfloor heating pipes to the manifold, each circuit should be gradually flushed until clean water flows out of the pipes. 2.6 Before concealing the pipes, conduct a hydrostatic test on the pipes. The test pressure should be 1.5 times the working pressure of the pipes, but no less than 0.6 MPa. Conduct another system hydrostatic test before and after the concrete filling layer cures. The test pressure should be the working pressure at the highest point of the system plus 0.2 MPa, with the test pressure at the highest point of the system being no less than 0.4 MPa.

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