Product Description

Product Name Flexible beam coupling
Material Aluminum 
Type FC16-63
Structure  1 shaft ( 1 / 1a / 1b ) with bore
Bore size  5-35 mm
Weight  About 9.2-580G g / pcs
packing plastic bag +paper box +wooden box +wooden pallet

1. Engineering: machine tools, foundry equipments, conveyors, compressors, painting systems, etc.

2. Pharmaceuticals& Food Processing: pulp mill blowers, conveyor in warehouse, agitators, grain, boiler, bakery machine, labeling machine, robots, etc.

3. Agriculture Industries: cultivator, rice winnower tractor, harvester, rice planter, farm equipment, etc.

4. Texitile Mills: looms, spinning, wrappers, high-speed auto looms, processing machine, twister, carding machine, ruler calendar machine, high speed winder, etc.

5. Printing Machinery: newspaper press, rotary machine, screen printer machine, linotype machine offset printer, etc.

6. Paper Industries: chipper roll grinder, cut off saw, edgers, flotation cell and chips saws, etc.

7. Building Construction Machinery: buffers, elevator floor polisher mixing machine, vibrator, hoists, crusher, etc.

8. Office Equipments: typewriter, plotters, camera, money drive, money sorting machine, data storage equipment, etc.

9. Glass and Plastic Industries: conveyor, carton sealers, grinders, creeper paper manufacturing machine, lintec backing, etc.

10. Home Appliances: vacuum cleaner, laundry machine, icecream machine, sewing machine, kitchen equipments, etc.

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clamp coupling

Contribution of Beam Couplings to Dampening Vibrations and Reducing Resonance

Beam couplings play a significant role in dampening vibrations and reducing resonance in motion control systems. Their unique design and material properties contribute to this effect in the following ways:

  • Helical Beam Design:

    Beam couplings consist of helical beams that provide flexibility and torsional elasticity. When subjected to vibrations or dynamic loads, the helical beams can absorb and dampen these oscillations. The ability to flex and twist helps in dissipating vibrational energy and preventing it from propagating through the system.

  • Vibration Absorption:

    Beam couplings are designed to be relatively compliant, which allows them to absorb vibrations and shocks generated during operation. This absorption capability is especially beneficial when dealing with high-speed applications or systems with rapid accelerations and decelerations.

  • Reduced Resonance:

    Resonance occurs when the natural frequency of a system matches the frequency of external vibrations or disturbances. This phenomenon can lead to excessive vibration amplitudes, potentially causing damage or affecting the system’s performance. Beam couplings’ torsional elasticity helps to mitigate the risk of resonance by altering the system’s natural frequency, reducing the likelihood of resonance occurring within the operating range.

  • Material Selection:

    The choice of materials for beam couplings also contributes to their ability to dampen vibrations. Materials with good damping characteristics, such as certain alloys or elastomers, are commonly used to manufacture beam couplings. These materials can dissipate vibrational energy as heat, minimizing the transmission of vibrations to other system components.

  • Shock Absorption:

    In addition to dampening vibrations, beam couplings can absorb shocks or sudden impact loads. When the system experiences sudden changes in load or abrupt movements, the flexible nature of beam couplings helps to cushion and distribute the shock, protecting the machinery and reducing stress on the connected components.

Overall, the combination of the helical beam design, vibration absorption properties, reduced resonance, and appropriate material selection makes beam couplings effective in dampening vibrations and enhancing the overall stability and performance of motion control systems. When properly selected and installed, beam couplings can contribute to smoother and quieter operation, increased system reliability, and reduced wear and tear on critical components.

clamp coupling

Contribution of Beam Couplings to Overall Efficiency and Reliability of Motion Systems

Beam couplings play a crucial role in enhancing the overall efficiency and reliability of motion control systems in various industrial applications. Their unique design and material properties contribute to these advantages in several ways:

  • High Torque Transmission:

    Beam couplings provide efficient torque transmission between shafts, allowing for precise and reliable power transfer. They can handle high torque loads without introducing backlash or slippage, ensuring accurate motion control and consistent performance.

  • Flexibility and Misalignment Compensation:

    Beam couplings offer flexibility, allowing them to accommodate small shaft misalignments. This characteristic reduces stress on the connected components and bearings, minimizing wear and enhancing the system’s overall reliability.

  • Low Inertia:

    Due to their lightweight design, beam couplings have low inertia, which means they have minimal impact on the system’s acceleration and deceleration. This low inertia helps in achieving faster response times and smoother motion profiles, improving the overall efficiency of the system.

  • Vibration Dampening:

    Beam couplings dampen vibrations and absorb shocks generated during operation. By reducing vibrational energy transmission, they minimize the risk of resonance and prevent premature wear or damage to the motion system components.

  • Wide Range of Sizes and Materials:

    Manufacturers offer beam couplings in various sizes and materials to suit different application requirements. This versatility allows for optimal coupling selection based on factors such as torque capacity, shaft diameter, and environmental conditions, ensuring an efficient and reliable coupling solution.

  • Easy Installation and Maintenance:

    Beam couplings are relatively simple to install and maintain. Their clamp or set screw mounting methods simplify the coupling assembly process. Additionally, routine maintenance, such as lubrication and visual inspections, helps extend their lifespan and ensures continuous system reliability.

  • Non-Magnetic and Electrical Isolation Options:

    Some beam couplings are available in non-magnetic materials, such as plastic or brass, which are suitable for applications where magnetic interference must be minimized. Additionally, plastic couplings offer electrical isolation properties, making them useful in applications requiring electrical insulation.

Overall, beam couplings contribute significantly to the overall efficiency and reliability of motion systems by providing precise torque transmission, compensating for misalignment, minimizing vibrations, and offering a broad range of options to meet diverse application needs. Their durable construction and ease of installation make them a dependable choice for motion control in various industrial settings.

clamp coupling

Differences between Single-Beam and Multi-Beam Couplings

Single-beam and multi-beam couplings are two common types of beam couplings used in motion control applications. While they both provide flexibility for misalignment compensation, they have distinct differences in design and performance. Let’s explore these differences:

  • Structure:

    A single-beam coupling consists of a single helical beam that connects the two shafts. It is a straightforward design with a single helix providing angular misalignment compensation. On the other hand, a multi-beam coupling has multiple helical beams arranged in parallel around the circumference of the coupling. The multiple beams increase its flexibility and enable compensation for angular, axial, and parallel misalignment.

  • Misalignment Compensation:

    Both single-beam and multi-beam couplings are capable of compensating for misalignment between connected shafts. However, the level of compensation differs between the two types. Single-beam couplings are more suitable for applications with primarily angular misalignment. They can handle small amounts of axial and parallel misalignment but are less effective than multi-beam couplings in this regard. Multi-beam couplings, with their multiple beams, can efficiently accommodate more extensive misalignment in all three axes, making them suitable for applications with more complex misalignment requirements.

  • Torsional Rigidity:

    Single-beam couplings typically have lower torsional rigidity compared to multi-beam couplings. This means that single-beam couplings may exhibit slightly more torsional flexibility and compliance under torque compared to their multi-beam counterparts. As a result, multi-beam couplings are often preferred in applications where high torsional rigidity is essential to maintain precise motion control and minimize backlash.

  • Applications:

    The choice between single-beam and multi-beam couplings depends on the specific requirements of the application. Single-beam couplings are commonly used in applications where space is limited, and primarily angular misalignment needs to be compensated. They are suitable for less demanding misalignment scenarios and can be found in various motion control systems, including small automation machinery and robotics.

    Multi-beam couplings are chosen for applications that require more comprehensive misalignment compensation. They excel in situations where misalignment can occur in multiple axes and are often used in precision motion control systems, optical equipment, and applications with high torsional rigidity and accuracy requirements.

In summary, single-beam and multi-beam couplings both offer flexibility for misalignment compensation in motion control systems. Single-beam couplings are simple, space-efficient, and suitable for applications with primarily angular misalignment. On the other hand, multi-beam couplings provide enhanced misalignment compensation in all three axes and offer higher torsional rigidity, making them ideal for precision applications with more complex misalignment requirements.

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editor by CX 2024-01-25