Large-Tonnage Lifting Boom: Multiple Ropes Collaborate for Stable, Accurate, and Fast Lifting of Heavy Objects
In large-tonnage heavy lifting scenarios such as port loading and unloading and heavy manufacturing, "inability to lift, instability, and low efficiency" have long plagued many companies. This large-tonnage lifting boom, with its core advantages of "multiple ropes collaborating + exceptional load-bearing capacity + adaptability to multiple scenarios," has become the "efficiency champion" of heavy lifting operations.

It can flexibly accommodate multiple ropes, acting like a "powerful net" to evenly distribute the stress of heavy objects. Whether it's tens of tons of steel structures, large ship components, or groups of heavy equipment, the multiple ropes combined with the boom's structural design ensure stable and balanced lifting and transfer, eliminating the risk of tilting or swaying. Its large tonnage carrying capacity is its strength, making it easily capable of handling heavy lifting needs. Its wide range of applications, from loading and unloading containers and large machinery at ports, to lifting ship sections at shipyards, to handling oversized workpieces at heavy industrial plants... It can handle all types of heavy, irregularly shaped lifting tasks with a single rod, significantly improving operational efficiency.
When lifting large, heavy objects requires stability, accuracy, and versatility, this lifting boom is the key to solving these challenges, making heavy lifting easier!
Features of industrial-grade lifting booms made from different materials:
High-strength alloy steels, such as Q345 and Q690, combine high yield strength, toughness, and fatigue resistance. They can withstand heavy loads without deformation or fracture, and can operate stably under complex conditions such as impact and vibration. Stainless steel, such as 304 stainless steel, offers excellent corrosion resistance and is suitable for harsh environments such as humid, acidic, and alkaline environments (e.g., crane booms in the chemical industry).
Aluminum alloy: Low density and corrosion resistance significantly reduce boom weight, making it suitable for lightweight lifting applications (e.g., small crane booms).
Synthetic materials, represented by carbon fiber reinforced plastic (CFRP) and glass fiber reinforced plastic (FRP), combine lightweight, high strength, corrosion resistance, and fatigue resistance. They are often used in high-end/specialized crane booms (e.g., large-tonnage lifting requiring extreme lightweight performance, or highly corrosive environments such as marine engineering). They significantly reduce boom weight while maintaining strength, improving operational efficiency.
