OEM / ODM Custom Interconnect Solutions
Custom Spring Contact & Connector Solution

Multi Pin Single Row Pogo Pin Connector

Custom multi-pin pogo pin connector with a long single-row contact arrangement for linear electrical interfaces. The visible configuration includes a spring-contact strip and a corresponding flat-contact strip, while the final mating configuration should be confirmed by the approved project drawing. Pin count, contact pitch, mounting structure, working stroke, pin assignment and electrical ratings are defined according to the specific interface design.

Confirm the Contact Interface
Contact Geometry Plunger, barrel, tail, housing and overall dimensions
Mounting & Termination DIP, SMT, right angle, double ended or custom structure
Mechanical Travel Working stroke, maximum travel and spring-force condition
Contact Arrangement Pin count, pitch, rows, Pin Map and mating alignment

Select an Individual Contact or a Complete Connector Assembly

Determine whether the project needs a single spring-loaded contact, a multi-contact connector assembly, a specific mounting method or a customer-defined mechanical interface.

01

Individual Pogo Pin

A single spring-loaded contact supplied for integration into the customer’s PCB, housing or connector structure.

Browse Individual Pogo Pins →
02

Pogo Pin Connector

A complete multi-contact assembly combining pogo pins, insulating housing, contact pitch and mounting structure.

Browse Connector Assemblies →
03

Mounting and Tail Structure

Choose through-hole, surface mount, right-angle, double-ended or customer-specific termination.

Review Engineering Guides →
04

Customized Contact Interface

Define travel, spring force, current path, housing, Pin Map and device-side mechanical constraints.

Submit Project Requirements →

Engineering Summary

This multi-pin pogo pin connector uses a long single-row contact architecture for linear electrical interfaces. The integrated housing maintains multiple contact positions in one connector assembly instead of requiring individual pogo contacts to be positioned separately.

The product image shows a spring-contact strip together with a flat-contact strip. Whether these components form a supplied mating connector pair should be confirmed from the approved project drawing before pair-specific terminology is published.

Single-Row Multi-Contact Architecture

Multiple electrical contact positions are arranged along one continuous linear row. This architecture is useful where the available interface is long and narrow rather than optimized for a compact dual-row connector block.

Exact pin count, contact pitch, array length, Pin 1 position and contact-center coordinates should be confirmed from the approved connector drawing.

Spring-Loaded and Flat Contact Interface

The visible product configuration includes one linear strip with spring-loaded contacts and another strip with flat contact faces. The spring-loaded side can provide electrical contact and controlled compliance along the contact axis when compressed against an approved mating target.

The flat-contact side should not be assumed to be a specific male or female connector until the complete mating architecture, mounting method and connector terminology are confirmed.

Mating Interface Definition

A valid electrical interface requires more than contact between the two visible components. Final seating, alignment, compression and positional control should be established by the surrounding mechanical design, approved datums and mechanical stops.

The pogo contacts should provide controlled electrical-contact compliance and should not be used as the structural stop for the completed assembly.

Mounting and Termination

The exact mounting and termination structure should be confirmed from the approved drawing. Product photography alone is not sufficient to establish an SMT, SMD, through-hole, wire or other PCB termination method.

The released mechanical drawing and PCB interface should define the terminal geometry, footprint, installation direction and assembly tolerance.

Working Stroke and Contact Compression

Each spring-loaded contact should operate within the working stroke defined by the approved connector drawing. Working stroke is different from total available mechanical travel.

Recommended compression should be selected together with mating-surface position, mechanical tolerance and final seating geometry so the complete contact row operates within its intended range.

Mechanical Tolerance Across a Long Contact Row

Long single-row connector assemblies should be reviewed for mating-surface flatness, housing straightness, contact-height consistency and parallelism across the complete contact length.

These mechanical conditions can affect how evenly the spring-loaded contacts are compressed across the interface.

Pin Map and Contact Assignment

A multi-pin connector provides multiple physical contact positions, but pin count does not define their electrical functions. Power, return, control, sensing, identification or signal functions should be established through the approved customer pin map.

Pin numbering should include a clear Pin 1 reference and viewing direction so the spring-contact side, flat-contact side, PCB and system schematic use the same orientation.

Current Capability and Complete Conductive Path

Current capability should be evaluated across the complete conductive path:

Source → PCB or wire → termination → pogo contact → contact interface → target conductor → load.

Pin count, visible contact diameter or a previous product-page rating is not sufficient to establish an approved current capability. Conductor geometry, termination resistance, contact resistance, mating resistance and temperature rise should be reviewed together.

Parallel Power Contacts

Multiple contact positions may be evaluated in parallel when required by the project electrical architecture, but the total current should not be determined by simply multiplying a single-contact rating by the number of parallel contacts.

Current sharing, conductor routing, resistance variation, contact compression and thermal conditions should be included in the review.

Signal and Data Considerations

A multi-pin connector does not automatically provide a specific data bandwidth or communication protocol.

Signal capability depends on the actual pin map, return-path allocation, contact pitch, contact geometry, PCB transition, wire or cable structure if present, and the complete electrical channel.

Application Fit

This long single-row connector architecture can be evaluated for multi-contact electrical interfaces where numerous independently assigned contact positions must fit within a narrow linear envelope.

Application suitability depends on exact pin count, available interface length, mounting method, mating geometry, working stroke, electrical requirements and mechanical tolerance.

Environmental and Material Considerations

Contact material, plating, cycle life, temperature capability, corrosion performance and compliance status should only be published when supported by approved specifications or validation data.

A gold-colored contact surface does not establish a gold-plating specification, and a plastic housing does not establish a UL94 rating or operating-temperature capability.

Customization Options

CTP can review project-specific requirements for pin count, contact pitch, connector length, spring-contact geometry, flat-contact geometry, mounting method, working stroke, pin assignment and electrical interface.

Final mechanical and electrical specifications should be released through an approved project drawing.

Information Engineers Should Provide

  • Required pin count
  • Available X/Y/Z installation space
  • Required contact pitch
  • Spring-contact and target-contact configuration
  • Mounting and termination method
  • Complete pin map
  • Pin 1 orientation
  • System voltage
  • Continuous and peak current
  • Parallel contact assignments if required
  • Signal or communication requirements
  • Required working stroke
  • Mating tolerance and final seating position
  • Operating environment
  • 2D / 3D drawings and PCB layout
  • Prototype quantity and expected production volume

FAQ

How many contacts does this pogo pin connector have?

The product uses a multi-contact single-row architecture. The exact contact count should be confirmed from the approved product drawing before the final SKU and product title are released.

Are the two visible strips a mating connector pair?

The image shows a spring-contact strip and a flat-contact strip, but pair status and the final mating configuration should be confirmed by the approved mechanical interface.

Is the contact pitch 2.54 mm?

The exact center-to-center contact pitch should be confirmed from the approved connector drawing before PCB or mating-interface design.

Is this specifically a battery connector?

Not necessarily. A pogo pin connector can be used for different electrical functions. Battery or charging terminology should only be used when the actual project pin map and application confirm that function.

Can this connector carry 3A?

Current capability is project-specific and should be evaluated across the complete conductive path, including conductors, termination, spring contacts, mating interface and target load.

Does a multi-pin connector automatically support data communication?

No. Pin count does not define data capability. Signal performance depends on the pin map, return paths, contact geometry, pitch and complete electrical channel.

How should working stroke be selected?

Working stroke should be selected from the approved spring-contact design together with mating tolerance, target position and the device-level mechanical stop.

Can the pin count and connector length be customized?

Project-specific pin count, pitch, housing length, contact geometry and termination structures can be reviewed according to the available installation space and electrical interface requirements.

Request a Pogo Connector Engineering Review

If this long single-row multi-contact connector architecture is close to your interface requirements, submit the required pin count, available length, contact pitch, mounting method, pin map, working stroke and electrical conditions for engineering review.

Request Custom Quote & Samples   |   Browse Pogo Pin Connectors

Engineering Review for Multi Pin Single Row Pogo Pin Connector

This product page presents a CTP magnetic connector configuration for engineering reference. Final dimensions, electrical ratings, materials, magnet structure, sealing level and reliability targets are not universal values; they are confirmed against the approved drawing, installation condition and model-specific validation plan.

Information to provide for evaluation

  • pin count, pitch, pin map and mating direction
  • housing envelope, mounting method and device-side interface
  • current, voltage, signal and contact-resistance targets
  • magnetic retention, polarity, sealing, materials and finish
  • sample quantity, validation plan and forecast volume

How specifications are confirmed

CTP reviews the application and prepares a drawing or specification for approval before sample production. Test scope, acceptance criteria and report format should identify the model, sample status, method, conditions, result and review date.

Can this magnetic connector be customized?

Yes. Customization can cover geometry, contact layout, materials, cable construction, magnetic structure, sealing and appearance. Feasibility depends on the application and approved specification.

Are the electrical and waterproof values universal?

No. Current, voltage, resistance, temperature rise and ingress-protection claims apply only to the identified model and stated test conditions.

What determines sample and production timing?

Timing is confirmed after the drawing, materials, tooling, sample quantity, validation scope and production requirements have been reviewed.

From Contact Requirements to Project Validation

The development route depends on whether an existing pogo pin can be used, modified or assembled into a customized multi-contact connector.

01

Requirement Review

Confirm product type, dimensions, stroke, force, current, mounting and project quantity.

02

Structure Selection

Match the contact geometry, tail structure, housing, Pin layout and installation method.

03

Drawing and Sample Scope

Confirm dimensional tolerances, material requirements and sample configuration.

04

Validation and Production Review

Review electrical, mechanical, assembly and application-specific validation conditions.

Have a Pogo Pin Drawing, PCB Layout or Contact Requirement?

Submit the product type, dimensions, mounting method, working stroke, spring-force condition, electrical requirements, Pin Map, PCB layout and available drawings for project review.

Submit Pogo Pin Requirements

Applications of Precision Pogo Pin Contacts

Our high-precision pogo pin connectors can be seamlessly integrated into a wide range of industries. Explore our core application areas below. Feel free to contact our engineering team for custom solutions.

Custom precision pogo pin connectors integrated onto a PCB board for consumer electronics.
High current spring-loaded pogo pin contacts with wire solder cups for stable power transmission.
Surface mount SMD pogo pins soldered on a smart wearable device motherboard for reliable signal connection.

Smart Wearables

TWS Earbuds & Watches

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Medical Devices

Healthcare Equipment

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Automotive (EV)

High Current Systems

📡

Telecommunication

Data Transmission

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Smart Home

IoT & LED Lighting

Explore More Pogo Pin Solutions