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Srpski језикIn modern field irrigation, smart greenhouses, and urban sponge city construction, the efficiency of water resource allocation and the stability of the pipeline system often determine the success or failure of the entire project.
With the increasing frequency of extreme precipitation events caused by global warming, ensuring that pipes in high-pressure, high-flow-rate rainwater harvesting and irrigation systems with a lot of sediment are leak-proof and uninterrupted has become a focus of attention in the water conservancy engineering field.
In this context, the Rain Pipe Lock Ring Tee Valve, with its unique "lock ring" mechanical anti-detachment design and efficient diversion control capability, is triggering a technological upgrade revolution in industrial and agricultural pipeline systems.
Traditional pipeline connections often rely on adhesive bonding, hot-melt welding, or ordinary thread compression when facing high-flow rainwater erosion or high-pressure irrigation.
However, due to several environmental factors, pipeline connections are prone to leakage or even pipe bursting:
Thermal Expansion and Contraction: Temperature shifts cause joints to weaken.
Soil Settlement: Ground movement strains connected parts.
Water Hammer Effects: Sudden pressure surges cause immediate structural failures.
The Rain Pipe Lock Ring Tee Valve cleverly introduces a "Lock Ring" design at the interface of the tee valve. Its working principle is similar to the anti-loosening structure used in heavy fasteners, featuring three core mechanisms:
Quick Plug Lock: After the pipeline is inserted into the valve, the reverse serrations or claws inside the lock ring will firmly bite the pipe wall.The Tighter It Is Pulled: When the internal pressure of the pipeline increases or there is external pulling force, the locking ring will become tighter and tighter due to its physical geometric structure, completely eliminating the risk of "pipe detachment".
Valve Three-Way Diversion: The high-definition ball valve or gate valve built into the center can achieve one-way cut-off, two-way diversion, or precise flow adjustment, perfectly adapting to the multi-channel allocation needs in the rainwater harvesting process.