Eco-Friendly HDPE Geocell 50mm (2in) Height 400mm (16in) Welding Distance for Slope Protection Riverbank Erosion Control Desert Highway Landfill Cover and Ecological Restoration
Rapid Construction Speed: On-site expansion and ultrasonic welding boost construction efficiency by over 30% compared to traditional methods.
Superior Load Distribution: The 3D honeycomb structure provides strong lateral restraint, increasing apparent cohesion by up to 30 times.
Long-Term Durability: Ensures a service life of over 15 years even in harsh environments like deserts and saline-alkali lands.
Low Maintenance & Reusability:Outstanding anti-scour and anti-deformation capabilities reduce maintenance costs by about 40%.
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- Product Description
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- Commodity name: Eco-Friendly HDPE Geocell 50mm (2in) Height 400mm (16in) Welding Distance for Slope Protection Riverbank Erosion Control Desert Highway Landfill Cover and Ecological Restoration
Significant Cost Savings: Utilizing local soil and gravel reduces aggregate and transport costs by up to 50%. <br/> Rapid Construction Speed: On-site expansion and ultrasonic welding boost construction efficiency by over 30% compared to traditional methods.<br/> Superior Load Distribution: The 3D honeycomb structure provides strong lateral restraint, increasing apparent cohesion by up to 30 times. <br/> Long-Term Durability: Ensures a service life of over 15 years even in harsh environments like deserts and saline-alkali lands.<br/> Low Maintenance & Reusability:Outstanding anti-scour and anti-deformation capabilities reduce maintenance costs by about 40%.
Key Technical Advantages
🛡️ Advanced Ultrasonic Welding
Utilizing high-intensity ultrasonic needle welding technology, the seam peel strength reaches 1000N-1420N/10cm (4448N-6312N/4in). This ensures that the geocells will not unseal or tear under extreme tension and heavy loads, providing structural integrity far superior to traditional processes.🏗️ Customizable 3D Geometry
We offer flexible customization options with heights ranging from 50mm to 250mm (2in to 10in) and welding distances from 330mm to 1000mm (13in to 39in). By adjusting the cell height and weld spacing, we can precisely match different bearing capacity requirements and geological conditions, achieving the optimal balance between mechanical performance and cost-effectiveness.🧱 Multi-Material Compatibility
Compatible with various infill materials including soil, gravel, and crushed stone, it can also serve as a formwork for cast-in-place concrete. The HDPE matrix replaces traditional wooden formwork and steel mesh, simplifying construction procedures while endowing concrete structures with superior anti-erosion capabilities.🌡️ Extreme Climate Adaptability
Featuring a wide temperature application range and excellent toughness, the geocells maintain dimensional stability in extreme environments. Whether in high-temperature deserts, permafrost regions, or highly corrosive saline-alkali lands, they resist brittleness and excessive deformation, ensuring long-term engineering safety.💧 Optimized Drainage System
For ecological slope protection needs, we provide perforated geocells. The hole design not only connects water flow channels between adjacent cells to prevent hydrostatic pressure buildup but also creates an ideal root development space for vegetation growth.Basic Info.
Technical Specifications
Application Solutions
🏔️ 1. Slope Protection
Challenge: Traditional soil or rock slopes are highly susceptible to soil erosion and shallow landslides under heavy rain, and bare surfaces struggle to naturally recover vegetation.
Solution: Install perforated HDPE geocells filled with topsoil and seeded. The 3D grid firmly locks the soil and distributes slope stress evenly, increasing scour resistance by over 2 times while supporting vegetation growth for a perfect blend of engineering reinforcement and ecological landscaping.
Construction Steps:
*Clear and level the slope surface;
*Lay non-woven geotextile as a filter layer;
*Expand and anchor the geocells from top to bottom using U-shaped stakes;
*Fill with topsoil, compact, and plant seeds.
🌊 2. Riverbank Erosion Control
Challenge: Continuous water flow causes bank collapse and river widening. Traditional rigid concrete blocks ecological exchange and easily cracks due to uneven foundation settlement.
Solution: Use geocells filled with gravel or ecological concrete. The strong lateral restraint effectively resists water shear forces and prevents lateral sliding. The flexible structure adapts well to uneven settlement while maintaining riverbank micro-ecological balance.
Construction Steps:
*Excavate the riverbed and lay geotextile;
*Anchor the top edge of the geocells securely in the bank;
*Fill with angular gravel or cast concrete;
*Compact the infill and secure the bottom toe.
🏜️ 3. Desert Highway
Challenge: Lack of quality fill materials, shifting sands, and extremely low bearing capacity cause severe rutting and pavement deformation under heavy loads.
Solution: Expand geocells directly over compacted sand and use local sand as fill. The geocells lock loose sand into a rigid composite base, exponentially increasing bearing capacity. Combined with geogrids and geotextiles, it effectively blocks sand encroachment and ensures long-term highway safety.
Construction Steps:
*Level and compact the native sand subgrade;
*Expand and connect geocells, anchoring the perimeter;
*Fill cells with local sand and vibrate/compact;
*Lay the asphalt or concrete surface layer.
🗑️ 4. Landfill Cover
Challenge: Uneven settlement in landfills easily cracks the cover layer, causing rainwater infiltration and toxic leachate. The cover soil is also prone to wind erosion, hindering ecological recovery.
Solution: Install geocells filled with lightweight soil or engineering waste. The system provides strong tensile and shear resistance, accommodating continuous differential settlement and preventing cover cracking. The topsoil layer supports vegetation to control rainwater infiltration and reduce leachate treatment costs.
Construction Steps:
*Grade the landfill surface and install a geomembrane;
*Lay and anchor geocells over the membrane;
*Fill with lightweight soil or waste aggregate;
*Add topsoil and plant vegetation.
🌱 5. Ecological Restoration
Challenge: Degraded lands (e.g., mines, tailings ponds) suffer from barren soil and poor moisture retention, making natural recovery take decades.
Solution: Use perforated HDPE geocells as "micro-eco cabins" filled with nutrient-rich soil. This provides a stable growth matrix and moisture retention zone for plants, accelerating ecological succession without causing secondary soil pollution.
Construction Steps:
*Prepare the degraded site and lay geotextile;
*Expand and fix geocells securely;
*Fill with organic nutrient soil;
*Plant native shrubs/grasses and irrigate.
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Established Expertise
With over 10 years of industry experience since 2014, we have refined our manufacturing processes to ensure consistency and reliability.
Expert Technical Team
Our highly skilled R&D team delivers end-to-end product solutions and customized services, ensuring optimal performance for your projects.
Innovation Driven
Our dedicated R&D team holds over 30 patents, allowing us to offer customized solutions and continuously improve product performance for complex engineering challenges.
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We are proud to be a trusted supplier for industry giants, including China State Construction, China Railway Construction, China Communications Construction, and China Energy Engineering.
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Backed by comprehensive ISO certifications in Quality, Environmental, and Occupational Health & Safety management, our lean production system guarantees that every roll of geosynthetic material meets the highest international standards.
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