Ruland, 25.4 mm OD 10 mm, 34.2 mm Length Bellow Coupling 7 mm

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₩241,160.76

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  • 2026년 4월 02일 부터 배송
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RS 제품 번호:
591-452
제조사 부품 번호:
MBCK25-10-7-A
제조업체:
Ruland
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브랜드

Ruland

Product Type

Bellow Coupling

Outside Diameter

25.4 mm

Length

34.2mm

Maximum Speed

10000rpm

Torque Rating

6.8Nm

Moment of Inertia

2.72 x 10-6 kg/m²

Misalignment - Angular

1.5°

Hub Material

Aluminium

Misalignment - Parallel

0.10mm

Misalignment - Axial

0.30mm

Bore Size A

10mm

Minimum Operating Temperature

-40°F

Bore Size B

7mm

Bellows Material

321 Stainless Steel

Maximum Operating Temperature

200°F

Series

MBCK25

Standards/Approvals

DIN 912 12.9, ISO 9001:2015, REACH, RoHS3

Screw Size

M3

COO (Country of Origin):
US
The Ruland Bellows Coupling is designed for precision and durability in demanding applications. Combining advanced engineering and quality materials, it features a lightweight and low inertia design, making it suitable for high speed operations without compromising on stability. The unique construction allows for minimal vibration and ensures high torsional stiffness, perfect for machinery that requires exact positioning. Its aluminium hubs and stainless steel bellows provide not only strength but also corrosion resistance, enhancing longevity. Crafted in an ISO 9001:2015 facility, this product embodies rigorous quality assurance and sustainability practices, making it an excellent choice for engineers seeking reliability in their projects.

Engineered for high speed applications up to 10000 RPM

Corrosion resistant stainless steel bellows for enhanced durability

Balanced design reduces vibration significantly during operation

Metric hardware for compatibility in diverse engineering environments

Strict manufacturing standards ensure consistent quality and performance

Offers high torsional stiffness for optimal torque transmission

RoHS3 REACH and Conflict Minerals compliant for eco conscious choices

Zero backlash design allows for precise angular adjustments

Lightweight structure reduces overall system inertia for improved efficiencies

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