Produktbeskrivelse
EMT TO BX OR NM CABLE COMBINATION COUPLING
SET SCRW TO CLAMP TYPE
Standard: UL
Material: Zinc Alloy
Size: 1/2″-3/8″
Finishing: Polishing
Joins EMT conduit to non-metallic sheathed calbe
Tri-drive set screw feature
Corrosion resistant
/* 22. januar 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))
| Connection: | Female |
|---|---|
| Struktur: | Vertical |
| Flexible or Rigid: | Stiv |
| Prøver: |
US$ 0/Piece
1 stk (min. bestilling) | Bestill prøve |
|---|
| Tilpasning: |
Tilgjengelig
| Tilpasset forespørsel |
|---|
.shipping-cost-tm .tm-status-off{background: none;padding:0;color: #1470cc}
|
Fraktkostnad:
Estimert frakt per enhet. |
about shipping cost and estimated delivery time. |
|---|
| Payment Method: |
|
|---|---|
|
Initial Payment Full Payment |
| Currency: | US$ |
|---|
| Return&refunds: | You can apply for a refund up to 30 days after receipt of the products. |
|---|


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:
- Angular Misalignment: 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.
- Parallel Misalignment: 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.
- Axial Misalignment: 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.

Can flexible couplings be used for both motor-to-shaft and shaft-to-shaft connections?
Yes, flexible couplings can be used for both motor-to-shaft and shaft-to-shaft connections in various applications. The versatility of flexible couplings allows them to adapt to different types of connections and meet the specific requirements of the system.
Motor-to-Shaft Connections:
When connecting a motor to a shaft, a flexible coupling serves as an intermediary component that joins the motor shaft and the driven shaft. Flexible couplings are commonly used in motor-driven systems to accommodate misalignment between the motor and the driven load. In motor applications, flexible couplings help reduce stress and wear on the motor bearings, thus extending the motor’s life and enhancing overall system reliability. They also act as vibration dampeners, minimizing vibrations transmitted from the motor to the driven shaft, and subsequently to connected equipment, ensuring smoother operation.
Shaft-to-Shaft Connections:
In many mechanical systems, such as those in the manufacturing, automation, and power transmission industries, shaft-to-shaft connections are required. A flexible coupling can bridge the gap between two shafts and transmit torque while accommodating misalignment. This type of coupling is commonly used to connect shafts that are not perfectly aligned due to factors like manufacturing tolerances, thermal expansion, or foundation settling. By allowing for misalignment, the flexible coupling protects the connected components from excessive stresses and ensures efficient power transmission.
Versatility and Advantages:
The ability of flexible couplings to handle both motor-to-shaft and shaft-to-shaft connections makes them versatile solutions for a wide range of industrial applications. Some of the advantages of using flexible couplings in these connections include:
- Minimizing stress and wear on connected components, such as bearings and seals.
- Compensating for misalignment, ensuring smooth power transmission.
- Damping vibrations and shock loads, reducing the risk of mechanical failures.
- Protecting equipment from excessive forces, enhancing system reliability.
- Simplifying installation and alignment procedures, reducing downtime.
- Improving overall system performance and operational efficiency.
Bruksområder:
Flexible couplings find applications in a wide range of industries, including manufacturing, material handling, automotive, aerospace, robotics, and more. Whether connecting a motor to a shaft or joining two shafts directly, flexible couplings play a crucial role in enhancing the reliability and efficiency of rotating machinery and mechanical systems.
In conclusion, flexible couplings can effectively serve as connectors for both motor-to-shaft and shaft-to-shaft connections, providing essential misalignment compensation and protection for connected equipment in various industrial applications.

Hva er en fleksibel kobling, og hvordan fungerer den?
En fleksibel kobling er en mekanisk innretning som brukes til å koble sammen to aksler samtidig som den tillater relativ bevegelse mellom dem. Den er konstruert for å overføre dreiemoment fra en aksel til en annen, samtidig som den kompenserer for feiljustering, vibrasjoner og støt. Fleksible koblinger er viktige komponenter i ulike roterende maskiner og systemer, ettersom de bidrar til å beskytte det tilkoblede utstyret og forbedre den generelle ytelsen.
Typer fleksible koblinger:
Det finnes flere typer fleksible koblinger, hver med sitt unike design og egenskaper. Noen vanlige typer inkluderer:
- Kjevekoblinger: Kjevekoblinger har elastomerkoblinger som passer mellom to nav. De kan håndtere vinkel- og parallellforskyvning samtidig som de demper vibrasjoner.
- Skivekoblinger: Skivekoblinger bruker tynne metallskiver for å koble sammen akslingene. De er svært fleksible og gir utmerket kompensasjon for feiljustering.
- Girkoblinger: Girkoblinger bruker girtenner for å overføre dreiemoment. De tilbyr høy dreiemomentkapasitet og kan håndtere moderat feiljustering.
- Bjelkekoblinger: Bjelkekoblinger bruker et enkelt stykke fleksibelt materiale, for eksempel en metallbjelke, for å overføre dreiemoment samtidig som de kompenserer for feiljustering.
- Belgkoblinger: Belgkoblinger bruker en belglignende struktur for å tillate aksial, vinkelmessig og parallell feiljusteringskompensasjon.
- Oldham-koblinger: Oldham-koblinger bruker tre skiver, hvor den midterste har et vinkelrett spor for å tillate kompensasjon for feiljustering.
Slik fungerer en fleksibel kobling:
Virkemåten til en fleksibel kobling avhenger av den spesifikke designen, men de generelle prinsippene er like. La oss ta eksemplet med en kjevekobling for å forklare hvordan en fleksibel kobling fungerer:
- To aksler er koblet til koblingsnavene på hver side, med en elastomer-edderkopp plassert mellom dem.
- Når dreiemoment påføres den ene akselen, fører det til at edderkoppen komprimeres og deformeres litt, og overfører dreiemomentet til den andre akselen.
- Ved feiljustering mellom akslingene, bøyer elastomer-kjernen seg og kompenserer for feiljusteringen, noe som sikrer jevn momentoverføring uten å påføre akslingene eller tilkoblet utstyr for store belastninger.
- Elastomer-edderkoppen fungerer også som et dempingselement som absorberer vibrasjoner og støt under drift, noe som reduserer slitasje på utstyret og forbedrer systemstabiliteten.
Samlet sett er fleksibiliteten og evnen til å kompensere for feiljustering de viktigste egenskapene som gjør at en fleksibel kobling fungerer effektivt. Valget av en spesifikk fleksibel koblingstype avhenger av applikasjonens krav, som momentkapasitet, feiljusteringskompensasjon og miljøforhold.


editor by CX 2024-03-13