Resistors-Chassis Mount

Image Part Number Description / PDF Quantity Rfq
LPSA600H1R00JB

LPSA600H1R00JB

Vishay / Sfernice

LPSA 600 H 1U 5% BO15

0

VNC1207668R0JB

VNC1207668R0JB

Vishay / Sfernice

VNC 12X76 68U 5% BO100

0

LPSA800L4R70JB

LPSA800L4R70JB

Vishay / Sfernice

LPSA 800 L 4U7 5% BO15

0

RCMC500L1R00KB

RCMC500L1R00KB

Vishay / Sfernice

MCB RESISTORS

0

RCMC50018R0KB

RCMC50018R0KB

Vishay / Sfernice

MCB RESISTORS

0

LPSA300H1000JB

LPSA300H1000JB

Vishay / Sfernice

LPSA 300 H 100U 5% BO15 E

30

LPSA800L10R0JB

LPSA800L10R0JB

Vishay / Sfernice

LPSA 800 L 10U 5% BO15

0

LPSA300L47R0JB

LPSA300L47R0JB

Vishay / Sfernice

LPSA 300 L 47U 5% BO15

0

RSO25138CR220KB00

RSO25138CR220KB00

Vishay / Sfernice

RSO 25X138 CS U22 10% BO2NA

0

LPSA300H1R00KB

LPSA300H1R00KB

Vishay / Sfernice

LPSA 300 H 1U 10% BO15

0

LPS0300H4R70JB

LPS0300H4R70JB

Vishay / Sfernice

RES CHAS MNT 4.7 OHM 5% 300W

67

LPS0600L2R00JB

LPS0600L2R00JB

Vishay / Sfernice

LPS 600 L 2U 5% BO15

0

RCMC500L2R00KB

RCMC500L2R00KB

Vishay / Sfernice

MCB RESISTORS

0

RCH50S15R00JS06

RCH50S15R00JS06

Vishay / Sfernice

RES CHAS MNT 15 OHM 5% 50W

18

LPSA800H1R00KB

LPSA800H1R00KB

Vishay / Sfernice

LPSA 800 H 1U 10% BO15

0

LPSA800L47R0JB

LPSA800L47R0JB

Vishay / Sfernice

LPSA 800 L 47U 5% BO15

0

LPSA300L1000JB

LPSA300L1000JB

Vishay / Sfernice

LPSA 300 L 100U 5% BO15

0

LPS0600L8201JB

LPS0600L8201JB

Vishay / Sfernice

LPS 600 L 8K2 5% BO15

0

LPSA800H10R0KB

LPSA800H10R0KB

Vishay / Sfernice

LPSA 800 H 10U 10% BO15

0

C38TF1800JB

C38TF1800JB

Vishay / Sfernice

C 38 TF 180U 5% BO20

0

Resistors-Chassis Mount

1. Overview

Chassis Mount Resistors are specialized electronic components designed for direct mounting onto equipment chassis or heat sinks. They provide critical functions including current limiting, voltage division, and energy dissipation in high-power applications. Their importance in modern technology lies in enabling thermal management stability and electrical performance in industrial, automotive, and power electronics systems.

2. Major Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Wirewound Chassis MountHigh precision, pulse stability, 10-100W power ratingIndustrial motor drives, test equipment
Film Type Chassis MountLow noise, fast response, 5-50W ratingCommunication infrastructure, medical devices
Ceramic Composite MountHigh-temperature resistance, 50-300W ratingEV charging systems, renewable energy inverters

3. Structure and Composition

Typical construction includes:

  • Aluminum alloy heat-dissipating housing (surface-anodized for insulation)
  • High-purity ceramic substrate with resistive element (NiCr or TaN)
  • Multi-layer silicone coating for vibration resistance
  • Brass/copper alloy mounting terminals (anti-corrosion plated)

Thermal interface materials (TIM) ensure efficient heat transfer to chassis.

4. Key Technical Specifications

ParameterImportanceTypical Range
Rated PowerDetermines thermal handling capacity5-500W
Resistance RangeAffects current regulation precision0.1 -100k
ToleranceImpacts circuit accuracy 0.5% to 5%
Temperature CoefficientStability over operating temperature50-200ppm/ C
Dielectric StrengthSafety insulation performance1.5-5kV

5. Application Fields

Primary industries include:

  • Industrial automation (variable frequency drives, PLCs)
  • Renewable energy (solar inverters, wind turbine converters)
  • Transportation (EV on-board chargers, railway traction systems)
  • Telecommunications (base station power amplifiers, data center PSUs)

Case Study: 300W ceramic composite resistors in EV fast chargers enable 15-minute battery charging cycles.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Vishay Precision GroupCPW-100100W wirewound, 0.1% tolerance
Ohmite Manufacturing270 series500W ceramic housing, IP65 rated
Panasonic ElectronicERJ-P11Thin-film technology, 100ppm/ C stability

7. Selection Guidelines

Key considerations:

  • Calculate required power derating (70% of max rating recommended)
  • Match resistance value with system voltage/current requirements
  • Evaluate thermal interface compatibility with chassis
  • Consider environmental factors (humidity, vibration, ambient temperature)
  • Budget allocation: High-reliability models may cost 2-3 standard versions

8. Industry Trends Analysis

Current development trends include:

  • Nano-ceramic materials enabling 40% smaller form factors
  • Integrated temperature sensing resistors for smart power systems
  • Graphene-enhanced thermal coatings improving heat dissipation by 25%
  • Automotive-grade models supporting 150 C operating temperatures
  • Industry 4.0 compatibility with IoT-enabled resistance monitoring

Market projections indicate 8.7% CAGR through 2030 driven by EV and 5G infrastructure demands.

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