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PVC drainage and irrigation pipes

PVC drainage and irrigation pipes are primarily made from food-grade polyvinyl chloride (PVC) resin. The main material of PVC drainage pipes is, in fact, polyvinyl chloride itself. PVC drainage pipes have been increasingly widely adopted across various industries.


Keywords

pvc

排水管

管道

管材

聚氯乙烯

灌溉管材

九和橡塑

pvc管材



Product Details

Product description:
PVC drainage and irrigation pipes are primarily made from sanitary-grade polyvinyl chloride (PVC) resin. The main material of PVC drainage pipes is, in fact, polyvinyl chloride itself. Commonly used PVC drainage pipes come in standard sizes with nominal outer diameters of: 32mm, 40mm, 50mm, 75mm, 90mm, 110mm, 125mm, 160mm, 180mm, 200mm, 250mm, 315mm, 400mm, 500mm, 630mm, etc. The typical length of PVC-U pipes is either 4 meters or 6 meters; other lengths are determined through mutual agreement between the supplier and the buyer.


Product advantages:
The pipe material boasts excellent surface hardness and tensile strength, a high safety factor, and outstanding resistance to aging. Its normal service life can exceed 50 years. The pipe exhibits excellent corrosion resistance against inorganic acids, alkalis, and salts, making it ideal for industrial wastewater discharge and conveyance. The pipe has a low friction coefficient, ensuring smooth water flow and minimizing the risk of blockages, thus requiring minimal maintenance. The material features a high oxygen index and self-extinguishing properties. Additionally, the pipe has a low linear thermal expansion coefficient—only 0.07 mm/°C—which results in minimal deformation even under temperature fluctuations. It also has a low thermal conductivity and elastic modulus, giving it superior frost resistance compared to cast iron drainage pipes. Pipe and fitting connections can be made using adhesive bonding, offering a simple construction method that is easy to operate and highly efficient in installation. The PVC-U pipe provides excellent watertightness: whether connected by adhesive bonding or rubber-ring joints, its installation ensures reliable water tightness. PVC drainage pipes represent an excellent alternative to traditional drainage materials, boasting superior physicochemical properties. Their inner walls are smooth, resulting in lower frictional resistance compared to conventional drainage materials; consequently, horizontal pipe installations can have shallower slopes, thereby increasing the net ceiling height within buildings. Moreover, PVC drainage pipes are significantly lighter—about one-fifth the weight of cast iron pipes—making them easier to transport and handle. Adhesive bonding simplifies both installation and maintenance, while their relatively low cost compared to conventional drainage materials substantially reduces overall project expenses. PVC drainage pipes exhibit strong corrosion resistance and are widely used in building wastewater, sewage, and rainwater drainage systems. Compared to cast iron and steel pipes, however, PVC-U drainage pipes have certain limitations: they have lower pressure-bearing capacity and weaker impact resistance. Furthermore, although PVC-U is a flame-retardant material, when used for exposed indoor piping, there remains a potential risk of fire spreading upward along the drainage riser.

Construction and burial requirements:
1. Before the subbase is constructed by the roadbed unit, horizontal drainage pipes in the median strip must be installed.
2. Trenching: Manually excavate trenches according to the design stakeout positions specified in the drawings and verified by surveyors. The width of the trench for PE pipes should be slightly wider than the pipe diameter—by about 1 to 2 centimeters—and the trench depth should be 23 centimeters below the subgrade surface. The trench length must extend 10 centimeters inward from the centerline on the inner side, while on the outer side it should reach the slope. In cut sections, the trench should extend to the inner wall of the roadside ditch. The trench slope must follow the road’s transverse drainage slope and must not be reversed; this ensures that water from the roadway is drained away from the subgrade. Before starting trench excavation, a guideline should be stretched to ensure straightness and alignment.
3. Connection: Both ends of each PVC pipe must be fitted with rubber rings and tightly secured to prevent leaks.
4. Lowering the pipe: After cleaning the bottom of the trench and connecting the pipes according to the trench length, place the pipes into the trench. At the end on the median strip side, tightly seal the opening with burlap sacks to prevent debris from entering the pipe and causing blockage.
5. Backfilling: Use the fine-grained soil excavated during the initial digging for backfilling, or alternatively, use sand. Be sure to remove any large stones. After backfilling, compact the material manually. The top surface of the backfilled soil should not exceed the subgrade level; it’s best if it is 1–2 centimeters below the subgrade surface. Otherwise, the soil may be compressed by vehicle traffic and lose its ability to drain water.
6. Cleanup: The remaining soil after backfilling must be promptly removed from the site, and the road surface must be thoroughly cleaned. Any excess soil from the PE pipes should be centrally unloaded at designated locations such as the borrow pit; it must not be dumped randomly on the roads.
7. After completion of the subbase construction in the fill section, on the well-prepared slope, cast-in-place trapezoidal outlet pads at the outlets according to the design dimensions. The pads shall be constructed using standardized wooden forms. Before pouring, the slope surface must be leveled and three 25-centimeter-long bamboo skewers must be driven into it to ensure stability.
8. Pay attention to ensuring that drainage pipes are installed at the lowest points of vertical curves along the route, so as to prevent water accumulation on the road surface. For high-superelevation pipe installations in embankment sections, after the subgrade has been inspected and accepted, promptly measure and stake out the positions of pipes and manholes according to the design drawings. Use manual labor in conjunction with small excavating machinery to trench the ground, ensuring that the bottom slope of the trench meets the design requirements for smooth drainage. The trench width shall not be less than the designed 47 cm, and any excavated waste shall be promptly removed from the site. In embankment sections, to ensure adequate backfill thickness above the pipe and prevent damage to the PVC pipe, lower the trench bottom by 20 cm. In high-superelevation roadbeds within rocky excavation sections, carry out reverse excavation only after the subbase layer has been completed.

Application
PVC drainage pipes have been increasingly widely used across various industries. The primary material of PVC drainage pipes is polyvinyl chloride (PVC), which boasts excellent heat resistance and corrosion resistance. For the purpose of enhancing the aesthetic appeal of building facades, indoor rainwater drainage systems are becoming ever more prevalent.

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PVC drainage and irrigation pipes

PVC drainage and irrigation pipes are primarily made from food-grade polyvinyl chloride (PVC) resin. The main material of PVC drainage pipes is, in fact, polyvinyl chloride itself. PVC drainage pipes have been increasingly widely adopted across various industries.

Keywords:

Product Inquiries:

  • Product Description
  • Product description:
    PVC drainage and irrigation pipes are primarily made from sanitary-grade polyvinyl chloride (PVC) resin. The main material of PVC drainage pipes is, in fact, polyvinyl chloride itself. Commonly used PVC drainage pipes come in standard sizes with nominal outer diameters of: 32mm, 40mm, 50mm, 75mm, 90mm, 110mm, 125mm, 160mm, 180mm, 200mm, 250mm, 315mm, 400mm, 500mm, 630mm, etc. The typical length of PVC-U pipes is either 4 meters or 6 meters; other lengths are determined through mutual agreement between the supplier and the buyer.


    Product advantages:
    The pipe material boasts excellent surface hardness and tensile strength, a high safety factor, and outstanding resistance to aging. Its normal service life can exceed 50 years. The pipe exhibits excellent corrosion resistance against inorganic acids, alkalis, and salts, making it ideal for industrial wastewater discharge and conveyance. The pipe has a low friction coefficient, ensuring smooth water flow and minimizing the risk of blockages, thus requiring minimal maintenance. The material features a high oxygen index and self-extinguishing properties. Additionally, the pipe has a low linear thermal expansion coefficient—only 0.07 mm/°C—which results in minimal deformation even under temperature fluctuations. It also has a low thermal conductivity and elastic modulus, giving it superior frost resistance compared to cast iron drainage pipes. Pipe and fitting connections can be made using adhesive bonding, offering a simple construction method that is easy to operate and highly efficient in installation. The PVC-U pipe provides excellent watertightness: whether connected by adhesive bonding or rubber-ring joints, its installation ensures reliable water tightness. PVC drainage pipes represent an excellent alternative to traditional drainage materials, boasting superior physicochemical properties. Their inner walls are smooth, resulting in lower frictional resistance compared to conventional drainage materials; consequently, horizontal pipe installations can have shallower slopes, thereby increasing the net ceiling height within buildings. Moreover, PVC drainage pipes are significantly lighter—about one-fifth the weight of cast iron pipes—making them easier to transport and handle. Adhesive bonding simplifies both installation and maintenance, while their relatively low cost compared to conventional drainage materials substantially reduces overall project expenses. PVC drainage pipes exhibit strong corrosion resistance and are widely used in building wastewater, sewage, and rainwater drainage systems. Compared to cast iron and steel pipes, however, PVC-U drainage pipes have certain limitations: they have lower pressure-bearing capacity and weaker impact resistance. Furthermore, although PVC-U is a flame-retardant material, when used for exposed indoor piping, there remains a potential risk of fire spreading upward along the drainage riser.

    Construction and burial requirements:
    1. Before the subbase is constructed by the roadbed unit, horizontal drainage pipes in the median strip must be installed.
    2. Trenching: Manually excavate trenches according to the design stakeout positions specified in the drawings and verified by surveyors. The width of the trench for PE pipes should be slightly wider than the pipe diameter—by about 1 to 2 centimeters—and the trench depth should be 23 centimeters below the subgrade surface. The trench length must extend 10 centimeters inward from the centerline on the inner side, while on the outer side it should reach the slope. In cut sections, the trench should extend to the inner wall of the roadside ditch. The trench slope must follow the road’s transverse drainage slope and must not be reversed; this ensures that water from the roadway is drained away from the subgrade. Before starting trench excavation, a guideline should be stretched to ensure straightness and alignment.
    3. Connection: Both ends of each PVC pipe must be fitted with rubber rings and tightly secured to prevent leaks.
    4. Lowering the pipe: After cleaning the bottom of the trench and connecting the pipes according to the trench length, place the pipes into the trench. At the end on the median strip side, tightly seal the opening with burlap sacks to prevent debris from entering the pipe and causing blockage.
    5. Backfilling: Use the fine-grained soil excavated during the initial digging for backfilling, or alternatively, use sand. Be sure to remove any large stones. After backfilling, compact the material manually. The top surface of the backfilled soil should not exceed the subgrade level; it’s best if it is 1–2 centimeters below the subgrade surface. Otherwise, the soil may be compressed by vehicle traffic and lose its ability to drain water.
    6. Cleanup: The remaining soil after backfilling must be promptly removed from the site, and the road surface must be thoroughly cleaned. Any excess soil from the PE pipes should be centrally unloaded at designated locations such as the borrow pit; it must not be dumped randomly on the roads.
    7. After completion of the subbase construction in the fill section, on the well-prepared slope, cast-in-place trapezoidal outlet pads at the outlets according to the design dimensions. The pads shall be constructed using standardized wooden forms. Before pouring, the slope surface must be leveled and three 25-centimeter-long bamboo skewers must be driven into it to ensure stability.
    8. Pay attention to ensuring that drainage pipes are installed at the lowest points of vertical curves along the route, so as to prevent water accumulation on the road surface. For high-superelevation pipe installations in embankment sections, after the subgrade has been inspected and accepted, promptly measure and stake out the positions of pipes and manholes according to the design drawings. Use manual labor in conjunction with small excavating machinery to trench the ground, ensuring that the bottom slope of the trench meets the design requirements for smooth drainage. The trench width shall not be less than the designed 47 cm, and any excavated waste shall be promptly removed from the site. In embankment sections, to ensure adequate backfill thickness above the pipe and prevent damage to the PVC pipe, lower the trench bottom by 20 cm. In high-superelevation roadbeds within rocky excavation sections, carry out reverse excavation only after the subbase layer has been completed.

    Application
    PVC drainage pipes have been increasingly widely used across various industries. The primary material of PVC drainage pipes is polyvinyl chloride (PVC), which boasts excellent heat resistance and corrosion resistance. For the purpose of enhancing the aesthetic appeal of building facades, indoor rainwater drainage systems are becoming ever more prevalent.

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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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