Descrição do produto
Flexible Spider Jaw Coupling High Torque for Mask Machine Shaft Coupling CNC Flexible Plum Coupling Servo Motor
Descrição do produto
Mighty can produce full series of Tyre Coupling;The purpose of the coupling is to connect 2 shafts of different mechanisms (the driving axis and the driven axis) to rotate together and transfer torque.
JC 14-S: OD:14 Setscrew type
JC 14-C: OD:14 Clamp type
Material: Aluminum or steel;
ore type: Finished Bore/Stock Bore;
Features: Coupling assembled by pressing a polyurethane sleeve into hubs on both sides
Could absorb the vibration,parallel,angular misaligneents and shaft end-play
Resistance to oil and electrical insulation
Ldentical clockwise and anticlockwise rotational chaaracteristics
Three different hardness sleeves are availabie
Other Type of Couplings:
Company Information
Equipment: sawing machine, CNC Lathe, drilling machine, hobbing machine, punch machine, milling machine, gear shaper, grinding machine, machining center, etc.
Trade Show: PTC Asia, Canton Fair, Hannover Messe, IFPE
Principais produtos:
Timing belt pulleys, timing bars, timing belt clamping plates.
Locking elements and shrink discs: could be alternative for Ringfeder, Sati, Chiaravalli, BEA, KBK, Tollok, etc.
Polias de correia em V e bucha de fixação cônica.
Sprockets, idler, and plate wheels.
Gears and racks: spur gear, helical gear, bevel gear, worm gear, gear rack.
Shaft couplings: miniature coupling, curved tooth coupling, chain coupling, HRC coupling, normex coupling, FCL coupling, GE coupling, rigid and flexible coupling, jaw coupling, disc coupling, multi-beam coupling, universal joint, torque limiter, shaft collars.
Peças forjadas, fundidas e estampadas.
Other customized power transmission products and Machining Parts (OEM).
Aplicativo
1. Engenharia: máquinas-ferramenta, equipamentos de fundição, transportadores, compressores, sistemas de pintura, etc.
2. Indústria Farmacêutica e de Processamento de Alimentos: sopradores para fábricas de celulose, transportadores em armazéns, agitadores, grãos, caldeiras, máquinas para padarias, máquinas de rotulagem, robôs, etc.
3. Indústrias Agrícolas: cultivador, trator para debulhar arroz, colheitadeira, plantadeira de arroz, equipamentos agrícolas, etc.
4. Indústrias têxteis: teares, fiação, máquinas de enrolar, teares automáticos de alta velocidade, máquinas de processamento, torcedoras, cardadoras, calandras, bobinadeiras de alta velocidade, etc.
5. Máquinas de Impressão: impressora de jornal, máquina rotativa, máquina de serigrafia, máquina de linotipia, impressora offset, etc.
6. Indústrias de Papel: triturador de rolos picadores, serra de corte, serras de borda, célula de flotação e serras de cavacos, etc.
7. Máquinas para construção civil: polidoras, máquinas de polir pisos de elevadores, misturadores, vibradores, guindastes, britadores, etc.
8. Equipamentos de escritório: máquina de escrever, plotters, câmera, unidade de dinheiro, máquina de triagem de dinheiro, equipamento de armazenamento de dados, etc.
9. Indústrias de Vidro e Plástico: esteiras transportadoras, seladoras de caixas de papelão, trituradores, máquinas para fabricação de papel crepe, revestimento de lintec, etc.
10. Eletrodomésticos: aspirador de pó, máquina de lavar roupa, máquina de sorvete, máquina de costura, utensílios de cozinha, etc.
Perguntas frequentes
P: Vocês são uma empresa comercial ou fabricante?
A: Nós somos uma fábrica.
P: Qual é o prazo de entrega?
R: Geralmente, são de 5 a 10 dias se os produtos estiverem em estoque. Caso contrário, são de 15 a 20 dias, dependendo da quantidade.
P: Vocês fornecem amostras? São gratuitas ou têm custo adicional?
A: Sim, podemos oferecer a amostra gratuitamente, mas não cobrimos o custo do frete.
P: Quais são as suas condições de pagamento?
A: Pagamento = 1000 USD, 30% T/T adiantado, saldo antes do envio.
Caso tenha mais alguma dúvida, entre em contato conosco através dos canais abaixo:
Contatos
Recebemos calorosamente amigos do Brasil e do exterior para negociações comerciais e cooperação em benefício mútuo. É nossa responsabilidade fornecer aos clientes produtos de excelente qualidade, com bons preços e prazos de entrega pontuais.
UMPara qualquer dúvida ou solicitação, entre em contato conosco sem hesitar. Garantimos que qualquer pergunta sua receberá nossa atenção e resposta imediatas!
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| Padrão ou não padrão: | Padrão |
|---|---|
| Furo do eixo: | 3-80 mm |
| Torque: | 2.4-1880 N/M |
| Diâmetro do furo: | 3-10 mm |
| Velocidade: | 2500-28000 R/M |
| Estrutura: | Flexível |
| Exemplos: |
US$ 0,1/Peça
1 unidade (pedido mínimo) | |
|---|
| Personalização: |
Disponível
| Solicitação personalizada |
|---|


How does a flexible coupling handle angular, parallel, and axial misalignment?
A flexible coupling is designed to accommodate various types of misalignment between two rotating shafts: angular misalignment, parallel misalignment, and axial misalignment. The flexibility of the coupling allows it to maintain a connection between the shafts while compensating for these misalignment types. Here’s how a flexible coupling handles each type of misalignment:
- Desalinhamento angular: Angular misalignment occurs when the axes of the two shafts are not collinear and form an angle with each other. Flexible couplings can handle angular misalignment by incorporating an element that can flex and bend. One common design is the “spider” or “jaw” element, which consists of elastomeric materials. As the shafts are misaligned, the elastomeric element can deform slightly, allowing the coupling to accommodate the angular offset between the shafts while still transmitting torque.
- Desalinhamento paralelo: Parallel misalignment, also known as offset misalignment, occurs when the axes of the two shafts are parallel but not perfectly aligned with each other. Flexible couplings can handle parallel misalignment through the same elastomeric element. The flexible nature of the element enables it to shift and adjust to the offset between the shafts, ensuring continuous power transmission while minimizing additional stresses on the machinery.
- Desalinhamento axial: Axial misalignment, also called end-play misalignment, occurs when the two shafts move closer together or farther apart along their common axis. Flexible couplings can handle axial misalignment through specific designs that allow limited axial movement. For instance, some couplings use slotted holes or a floating member that permits axial displacement while maintaining the connection between the shafts.
By providing the capability to handle angular, parallel, and axial misalignment, flexible couplings offer several advantages for power transmission systems:
- They help to prevent premature wear and damage to the connected equipment, reducing maintenance and replacement costs.
- They minimize vibration and shock loads, enhancing the overall smoothness and reliability of the machinery.
- They reduce the risk of equipment failure due to misalignment-induced stresses, improving the system’s operational life.
- They allow for easier installation and alignment adjustments, saving time and effort during setup and maintenance.
Overall, flexible couplings play a crucial role in handling misalignment and ensuring efficient power transmission in various industrial applications.

What are the factors to consider when choosing a flexible coupling for a specific system?
Choosing the right flexible coupling for a specific system requires careful consideration of several factors. The following are the key factors that should be taken into account:
- 1. Misalignment Requirements: Assess the type and magnitude of misalignment expected in the system. Different couplings are designed to handle specific types of misalignment, such as angular, parallel, or axial misalignment. Choose a coupling that can accommodate the expected misalignment to prevent premature wear and failure.
- 2. Torque Capacity: Determine the required torque capacity of the coupling to ensure it can transmit the necessary power between the shafts. Consider both the continuous and peak torque loads that the system may experience.
- 3. Operating Speed: Take into account the rotational speed of the system. High-speed applications may require couplings that can handle the additional centrifugal forces and balance requirements.
- 4. Temperature Range: Consider the operating temperature range of the system. Select a coupling material that can withstand the temperatures encountered without losing its mechanical properties.
- 5. Environment and Conditions: Evaluate the environmental conditions where the coupling will be used, such as exposure to moisture, chemicals, dust, or corrosive substances. Choose a coupling material that is compatible with the operating environment.
- 6. Space Constraints: Assess the available space for the coupling installation. Some couplings have compact designs suitable for applications with limited space.
- 7. Installation and Maintenance: Consider the ease of installation and maintenance. Some couplings may require special tools or disassembly for maintenance, while others offer quick and simple installation.
- 8. Torsional Stiffness: Evaluate the torsional stiffness of the coupling. A balance between flexibility and stiffness is essential to prevent excessive torsional vibrations while accommodating misalignment.
- 9. Shock and Vibration Damping: For applications with high shock loads or vibration, select a coupling with excellent damping characteristics to protect the system from excessive forces.
- 10. Cost and Budget: Compare the cost of the coupling with the overall budget for the system. Consider the long-term cost implications, including maintenance and replacement expenses.
Ultimately, the choice of a flexible coupling should align with the specific requirements and operating conditions of the system. Consulting with coupling manufacturers or engineering experts can provide valuable insights to ensure the optimal selection of a coupling that enhances system performance, reliability, and efficiency.

What are the advantages of using flexible couplings in mechanical systems?
Flexible couplings offer several advantages in mechanical systems, making them essential components in various applications. Here are the key advantages of using flexible couplings:
- Compensação por desalinhamento: One of the primary advantages of flexible couplings is their ability to compensate for shaft misalignment. In mechanical systems, misalignment can occur due to various factors such as installation errors, thermal expansion, or shaft deflection. Flexible couplings can accommodate angular, parallel, and axial misalignment, ensuring smooth power transmission and reducing stress on the connected equipment and shafts.
- Amortecimento de vibrações: Flexible couplings act as damping elements, absorbing and dissipating vibrations and shocks generated during operation. This feature helps to reduce noise, protect the equipment from excessive wear, and enhance overall system reliability and performance.
- Torsional Flexibility: Flexible couplings provide torsional flexibility, allowing them to handle slight angular and axial deflections. This capability protects the equipment from sudden torque fluctuations, shock loads, and torque spikes, ensuring smoother operation and preventing damage to the machinery.
- Overload Protection: In case of sudden overloads or torque spikes, flexible couplings can absorb and distribute the excess torque, protecting the connected equipment and drivetrain from damage. This overload protection feature prevents unexpected failures and reduces downtime in critical applications.
- Reduce Wear and Maintenance: By compensating for misalignment and damping vibrations, flexible couplings help reduce wear on the connected equipment, bearings, and seals. This results in extended component life and reduced maintenance requirements, leading to cost savings and improved system reliability.
- Compensação da expansão térmica: In systems exposed to temperature variations, flexible couplings can compensate for thermal expansion and contraction, maintaining proper alignment and preventing binding or excessive stress on the equipment during temperature changes.
- Electric Isolation: Some types of flexible couplings, such as disc couplings, offer electrical isolation between shafts. This feature is beneficial in applications where galvanic corrosion or electrical interference between connected components needs to be minimized.
- Space and Weight Savings: Flexible couplings often have compact designs and low inertia, which is advantageous in applications with space constraints and where minimizing weight is crucial for performance and efficiency.
- Cost-Effectiveness: Flexible couplings are generally cost-effective solutions for power transmission and motion control, especially when compared to more complex and expensive coupling types. Their relatively simple design and ease of installation contribute to cost savings.
In summary, flexible couplings play a vital role in mechanical systems by providing misalignment compensation, vibration damping, overload protection, and torsional flexibility. These advantages lead to improved system performance, reduced wear and maintenance, and enhanced equipment reliability, making flexible couplings a preferred choice in various industrial, automotive, marine, and aerospace applications.


editor by CX 2024-03-29