Handles

Image Part Number Description / PDF Quantity Rfq
565.2-20-128-A-EL

565.2-20-128-A-EL

J.W. Winco

ALUMINUM CABINET U-HANDLE

200

528-PP-235-10.5-SW

528-PP-235-10.5-SW

J.W. Winco

CABINET U-HANDLE, PLASTIC

48

667-30-600-SW

667-30-600-SW

J.W. Winco

TUBULAR GRIP HANDLE, ALUMINUM

32

528.2-PA-140-SW

528.2-PA-140-SW

J.W. Winco

CABINET U-HANDLE, PLASTIC

30

28W200AT0Q/B

28W200AT0Q/B

J.W. Winco

SYSTEM HANDLE, ALUMINUM

31

667-30-600-NG

667-30-600-NG

J.W. Winco

TUBULAR GRIP HANDLE, STAINLESS

30

26W112B79K/5T

26W112B79K/5T

J.W. Winco

ALUMINUM CABINET U-HANDLE

30

666-30-M8-250-EL

666-30-M8-250-EL

J.W. Winco

TUBULAR GRIP HANDLE, ALUMINUM

38

20W128B79T/3T

20W128B79T/3T

J.W. Winco

ALUMINUM CABINET U-HANDLE

50

333-28-200-A-EL

333-28-200-A-EL

J.W. Winco

ALUMINUM TUBULAR HANDLE

30

667-20-350-NG

667-20-350-NG

J.W. Winco

TUBULAR GRIP HANDLE, STAINLESS

30

668-20-210-A-SW

668-20-210-A-SW

J.W. Winco

CABINET U-HANDLE, ALUMINUM

45

35W94BGC/C5

35W94BGC/C5

J.W. Winco

ERGOSTYLE U-HANDLE, PLASTIC

26

333-28-600-B-SW

333-28-600-B-SW

J.W. Winco

ALUMINUM TUBULAR HANDLE

30

12W200D35V

12W200D35V

J.W. Winco

ALUMINUM CABINET U-HANDLE

30

667-30-500-EL

667-30-500-EL

J.W. Winco

TUBULAR GRIP HANDLE, ALUMINUM

34

667-20-300-NG

667-20-300-NG

J.W. Winco

TUBULAR GRIP HANDLE, STAINLESS

30

666-30-M8-350-ELG

666-30-M8-350-ELG

J.W. Winco

TUBULAR GRIP HANDLE, ALUMINUM

31

565.1-26-116-SW

565.1-26-116-SW

J.W. Winco

ALUMINUM CABINET U-HANDLE

500

668-20-170-A-SR

668-20-170-A-SR

J.W. Winco

CABINET U-HANDLE, ALUMINUM

30

Handles

1. Overview

Handles for boxes, enclosures, and racks are critical mechanical components designed to facilitate safe and ergonomic handling of technical equipment. These components enable efficient installation, maintenance, and mobility of enclosures housing electrical, electronic, or mechanical systems. In modern industrial, data center, and automation environments, standardized handle solutions ensure operational reliability while meeting safety and durability requirements.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Flush Mount HandlesLow-profile design with concealed mountingServer racks, control cabinets
Foldable HandlesSpace-saving retractable mechanismPortable test equipment, mobile racks
Overcenter Latches with HandlesIntegrated locking and lifting functionalityIndustrial enclosures, NEMA-rated cabinets
Knob HandlesErgonomic rotary grip designToolboxes, small instrument enclosures

3. Structural and Technical Composition

Typical handle systems consist of: 1) Load-bearing base plates (steel/aluminum alloys), 2) Gripping elements (thermoplastic/nylon coatings), 3) Mechanical fastening systems (stainless steel screws/pins), and 4) Optional sealing interfaces. Advanced designs incorporate vibration dampening materials and corrosion-resistant surface treatments like powder coating or electropolishing.

4. Key Technical Parameters

ParameterImportanceTypical Values
Load CapacityEnsures structural integrity under stress25-200 kg
Material GradeDetermines environmental resistanceStainless steel, PA66
Installation DimensionsGuarantees compatibility with enclosuresM4-M8 threaded holes
Operating TemperatureDefines environmental adaptability-20 C to +80 C

5. Application Fields

  • Industrial automation (PLC control cabinets)
  • Data centers (server rack systems)
  • Telecommunications (outdoor enclosures)
  • Medical equipment (diagnostic instrument cases)
  • Military/defense (ruggedized transport cases)

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
PanduitToolless Rack Handle KitQuick-release mechanism
RittalTS 8 Cabinet HandleIP54 sealing compatibility
Hammond Manufacturing1551XX SeriesUV-resistant polymer construction

7. Selection Recommendations

Key considerations: 1) Environmental conditions (temperature, corrosive agents), 2) Mechanical load requirements, 3) Compatibility with enclosure standards (IEC 60529), 4) Maintenance accessibility, 5) Cost-efficiency ratio. For high-vibration environments, select handles with anti-loosening features. In cleanrooms, specify non-shedding materials.

8. Industry Trends

Current developments include: 1) Integration with smart monitoring systems (IoT-enabled handles), 2) Adoption of composite materials for weight reduction, 3) Modular quick-swap designs, 4) Enhanced ergonomics through biomechanical research. Sustainability trends drive the use of recyclable thermoplastics and powder coating processes with 95%+ material efficiency.

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