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Custom Magnetic Connector

14 Pin Dual Row Industrial Magnetic Pogo Pin Connector Pair

CTP 14 Pin Dual Row Industrial Magnetic Pogo Pin Connector Pair combines fourteen electrical contacts in a compact 2×7 layout with a spring-loaded pogo pin side, flat mating targets, magnet-assisted attachment and flange-style positioning holes for industrial equipment integration. The 14 contacts can be assigned to power, return, detection, identification, interlock, control or project-specific signal functions according to the customer Pin Map. Final contact pitch, working stroke, current, voltage, magnetic retention, vibration performance, mating life and environmental protection must be confirmed using the approved connector drawing and complete customer assembly.

For an engineering review, provide the Pin Map, voltage and current, available installation space, mating orientation, expected quantity and any available 2D or 3D drawings.
Engineering Review Inputs

Information That Helps Us Evaluate This Connector

Product specifications should be reviewed together with the customer device, PCB, electrical assignment and mechanical mating conditions.

01
Pin Map and Contact Functions

Define the function of each power, return, signal, control or detection contact.

02
Electrical Conditions

Provide voltage, continuous current, peak current and required signal conditions.

03
Mechanical Integration

Provide available length, width, height, PCB area and required mating orientation.

04
Project and Validation Scope

Provide application, expected quantity, environment and customer validation requirements.

Product Engineering Details

Technical Specifications, Structure and Integration

Review the product-specific description, technical parameters, contact arrangement, mechanical structure and project conditions below.

Engineering Summary: The CTP 14 Pin Dual Row Industrial Magnetic Pogo Pin Connector Pair combines fourteen electrical contacts in a compact 2×7 arrangement with a spring-loaded pogo pin side, flat mating targets, magnet-assisted attachment and flange-style positioning holes. The contacts can be assigned to project-specific power, return, detection, identification, interlock, control or signal functions. Final contact pitch, working stroke, electrical ratings, magnetic retention, vibration performance, mating life and environmental protection must be confirmed using the approved connector drawing and complete customer assembly.

14 Pin Dual Row Industrial Magnetic Pogo Pin Connector Overview

This 14 pin industrial magnetic pogo pin connector is designed for equipment that requires a removable multi-contact electrical interface within a compact mechanical envelope.

The connector uses fourteen electrical contact positions arranged in a dual-row layout. One connector half contains spring-loaded pogo pin contacts, while the opposing half provides corresponding flat mating targets.

The product also includes flange-style mounting features with positioning holes that can provide defined mechanical references during installation. Magnetic structures assist initial connector capture and attachment, while the housing and mechanical locating features should control final electrical alignment.

This product should be treated as a configurable 14-contact interface rather than a connector with one universal electrical architecture. The Pin Map, electrical load and signal functions must be defined for the actual customer equipment.

Visible Connector Structure

Connector ElementVisible StructureEngineering Requirement
Contact Count14 electrical contact positionsDefine the function and electrical state of every contact
Contact ArrangementDual-row 2×7 layoutConfirm exact pitch, row spacing and positional tolerances by drawing
Pogo Pin Side14 spring-loaded conductive contactsDefine free height, working stroke and contact force
Target Side14 corresponding flat mating targetsConfirm target dimensions, finish, flatness and support
HousingElongated industrial connector housingConfirm installation envelope and mechanical support
Positioning FeaturesFlange structure with mounting or positioning holesConfirm hole diameter, center distance and mounting method
Magnetic StructureMagnet-assisted mating interfaceDefine capture, seated retention and separation requirements
TerminationRear electrical terminals visible on the pogo pin sideConfirm PCB, solder or other termination using the approved drawing

Why Use a 14 Pin Magnetic Connector?

A 14-contact interface provides substantially more electrical allocation flexibility than a basic charging connector.

The additional contacts can allow engineers to separate power, return, detection, identification, interlock, control and signal functions within one removable connector interface.

Possible contact functions include:

  • Positive power input or output
  • Power return
  • Parallel power contacts
  • Device-presence detection
  • Accessory identification
  • Power-enable control
  • Mechanical or electrical interlock
  • Fault detection
  • Temperature monitoring
  • Project-specific digital or analog signals
  • Service or maintenance contacts
  • Factory test or programming contacts

Fourteen contacts do not mean that all fourteen positions should be treated as signal channels. The correct allocation must be defined by the customer circuit.

Example 14 Pin Electrical Architectures

Interface ArchitecturePossible Contact AllocationPrimary Engineering Review
Power + Control InterfacePower and return contacts plus multiple detection and control pathsPower sequence, grounding and fault response
Parallel Power + SignalsMultiple power and return contacts plus project-specific signalsCurrent sharing and signal-reference allocation
Industrial Docking InterfacePower, return, detection, identification, interlock and control contactsPartial mating, vibration and removal under load
Module InterfacePower paths plus several low-speed monitoring or control signalsPin Map, reconnection behaviour and fault states
Service InterfacePower, reference, programming and diagnostic contactsAccess control and fixture alignment

These configurations are examples only. The actual 14-contact Pin Map must be developed from the customer schematic and equipment operating states.

Dual Row 2×7 Layout and Contact Density

Arranging fourteen contacts in two rows reduces the required connector length compared with placing every contact in a single row.

The dual-row structure also makes dimensional control more important. The connector drawing should define:

  • Contact pitch within each row
  • Distance between the two rows
  • Contact positional tolerance
  • Target diameter or width
  • Target positional tolerance
  • Housing datum system
  • Maximum lateral mating offset
  • Maximum angular mating error

The worst-case dimensional stack should confirm that each pogo pin remains inside its intended target area under all approved mating conditions.

Fourteen Contacts Do Not Automatically Define a Communication Protocol

A 14 pin magnetic pogo pin connector provides fourteen conductive paths, but contact count alone does not establish support for USB, CAN, RS-485, UART, Ethernet or another communication protocol.

The complete signal channel may include:

Host Controller → Host PCB → Protection Components → Magnetic Pogo Pin Connector → Device PCB → Device Controller

Signal capability depends on:

  • Selected physical layer
  • Signal voltage
  • Required data rate
  • Signal and return allocation
  • PCB routing
  • Ground-reference strategy
  • Connector transition geometry
  • Crosstalk between adjacent contacts
  • Protection components
  • EMC requirements
  • Complete-channel validation

Protocol capability should therefore be verified at complete system level rather than inferred from the number of contacts.

Positioning Holes Should Carry Mechanical Location Functions

The visible flange and positioning holes are important features for industrial equipment integration.

They can provide mechanical references between the connector and customer enclosure or support structure.

The approved drawing should define:

  • Positioning-hole diameter
  • Hole center distance
  • Connector mounting datum
  • Screw, pin or other fixing method
  • Permitted tightening load
  • Housing flatness
  • Connector-to-PCB position
  • Permitted mechanical deformation

Pogo pins, mating targets and PCB terminals should primarily provide electrical functions rather than carry the full mechanical load of the mating accessory.

A preferred structural load path is:

Mating Module → Connector Housing / Positioning Features → Equipment Structure

rather than:

Mating Module → Magnets → Pogo Pins → Targets → PCB Terminals

Working Stroke Must Be Controlled Across All 14 Contacts

Each pogo pin must remain within its approved compression range at the final seated position.

A simplified working-stroke relationship is:

S = Hfree - Hseated

where:

  • S is actual pogo pin compression
  • Hfree is the installed free contact height
  • Hseated is the final distance to the mating target

With fourteen contacts, coplanarity and housing flatness become especially important because small dimensional differences can create unequal compression across the contact array.

The tolerance stack may include:

  • Pogo pin free-height variation
  • Target height and flatness
  • Contact positional tolerance
  • Housing flatness
  • PCB position
  • Mounting-hole location
  • Mechanical-stop position
  • Magnet position
  • Customer-enclosure deformation
Stroke ConditionPossible Result
Insufficient CompressionIntermittent contact or unstable electrical resistance
Approved Working StrokeIntended spring force and electrical contact condition
Excessive CompressionSpring bottoming, target damage or excessive housing load
Unequal CompressionResistance and current differences across the contact array

Power Contacts Require Complete-Path Thermal Validation

Current capability cannot be determined from the 14-pin contact count alone.

A simplified complete electrical path is:

Rpath = Rhost-PCB + Rtermination + Rpogo + Rinterface + Rtarget + Rdevice-PCB

The voltage drop is:

Vdrop = I × Rpath

The resistive power loss is:

Ploss = I² × Rpath

The project should define:

  • Operating voltage
  • Continuous current per power contact
  • Peak current and duration
  • Power and return-contact allocation
  • Permitted voltage drop
  • Maximum temperature rise
  • Ambient temperature
  • PCB copper and termination structure
  • Inrush current
  • Short-circuit protection

Current capability should be confirmed through complete-path voltage-drop and temperature-rise testing.

Parallel Power Contacts Need Current-Sharing Validation

A 14-contact interface gives engineers the option to place several pogo pins in parallel for power or return.

Parallel contacts do not automatically share current equally.

Current distribution can be affected by:

  • Working-stroke variation
  • Contact-resistance variation
  • Target flatness
  • Housing tilt
  • PCB routing resistance
  • Termination resistance
  • Contamination or contact wear

Individual contact current and temperature should be measured under the maximum intended operating load.

Partial Mating Is More Complex with 14 Contacts

A multi-contact magnetic connector can enter several intermediate electrical states before all fourteen contacts reach their intended working stroke.

ConditionPossible RiskRequired Review
One Side Contacts FirstUnexpected electrical sequenceApproach angle and contact-height tolerance
One Row Contacts FirstOnly part of the Pin Map becomes activeRow height and housing flatness
Only Some Contacts Are SeatedPartial power, signal or detection statePin sequence and full-seating logic
Laterally Offset MatingPogo pin contacts an unintended targetPitch, row spacing and maximum credible offset
Magnetically Retained but Not Fully SeatedUnstable electrical connectionMechanical stop and seating verification
Wrong OrientationIncorrect Pin Map conditionMechanical keying and magnetic polarity
Removal Under LoadTransient voltage, arcing or communication interruptionPower-disable sequence and powered endurance

Industrial Vibration Requires Complete Assembly Validation

Industrial equipment can expose the connector to vibration, shock, repeated handling and cable or module movement.

The validation plan should define:

  • Vibration frequency range
  • Acceleration level
  • Vibration direction
  • Mating-module mass
  • Connector orientation
  • Cable or PCB movement
  • Electrical continuity during vibration
  • Contact-resistance change after testing
  • Housing and positioning-hole condition after testing

“Industrial grade” should therefore describe a validated application and test condition rather than act as a universal connector performance rating.

Magnetic Capture and Mechanical Positioning Have Different Roles

Mating FunctionRecommended Control
Initial CaptureMagnetic layout and approach geometry
OrientationHousing shape and magnetic polarity
Final PositionHousing datums and locating features
Pogo Pin CompressionMechanical stops and tolerance stack
Equipment InstallationFlange and positioning holes
Seated RetentionMagnetic structure and customer mechanical support
RemovalDefined separation direction and release-force requirement

Capture force, seated retention and separation force should be specified separately because they describe different connector behaviours.

Environmental Protection Is Assembly-Specific

The connector housing and recessed contact area do not independently establish an IP54 or another ingress-protection rating.

The complete environmental boundary may include:

  • The connector housing
  • The contact insert
  • The connector-to-equipment interface
  • Mounting-hole areas
  • The termination area
  • Adhesive or potting
  • Gaskets or sealing structures
  • The mated and unmated connector states
  • Other openings in the equipment enclosure

Any IP, corrosion or salt-spray claim should identify the exact tested connector or assembly, exposure condition and acceptance criteria.

14 Pin Industrial Magnetic Connector Selection Parameters

ParameterProduct Definition
Product Type14 pin dual row industrial magnetic pogo pin connector pair
Contact Count14 independent electrical contact positions
Contact ArrangementDual row 2×7 layout
Mating StructureSpring-loaded pogo pin side with corresponding flat target side
Mechanical IntegrationFlange-style structure with positioning or mounting holes
Pin MapProject-specific power, return, detection, identification, interlock, control and signal allocation
Overall DimensionsConfirm using the approved product drawing
Contact PitchConfirm contact pitch and row spacing using the approved drawing
Positioning HolesConfirm hole diameter, center distance and installation datum
Working StrokeConfirm minimum, nominal and maximum pogo pin compression
Contact ForceReport at a defined working stroke
VoltageModel- and circuit-specific
Continuous CurrentConfirm per power contact through voltage-drop and temperature-rise testing
Contact ResistanceReport with test current, target, stroke and measurement method
Magnetic PerformanceCapture, seated retention and separation force are specified separately
Vibration PerformanceDefine test profile and electrical continuity acceptance criteria
Mating LifeDefined by working stroke, electrical load, target and acceptance criteria
Ingress ProtectionApplies only to a defined and tested connector or complete equipment assembly

Possible Industrial Application Areas

ApplicationPossible Connector RolePrimary Engineering Focus
Industrial Docking StationsPower, detection, interlock and signal interfaceAlignment, partial mating and repeated cycles
Automation EquipmentRemovable module power and control connectionVibration, Pin Map and mechanical support
Robotic ModulesMulti-contact removable electrical interfaceDynamic load, retention and electrical continuity
Industrial Handheld EquipmentPower, control, service or diagnostic interfaceRepeated mating, contamination and vibration
InstrumentationPower, identification, monitoring and control connectionContact stability and signal allocation
Industrial Test FixturesPower, programming and diagnostic connectionRepeatability, positioning and cycle life
Custom Equipment ModulesProject-specific 14-contact magnetic interfacePin Map, housing integration and complete validation

These applications are examples. Final suitability depends on the Pin Map, electrical load, mechanical assembly, vibration conditions and complete equipment validation.

Recommended Industrial Validation Plan

RequirementRecommended Evaluation
Pin MapConfirm the electrical function of all 14 contacts
Contact GeometryVerify contact pitch, row spacing and target positions
Positioning HolesVerify hole location, mechanical datum and mounting method
Working StrokeVerify minimum, nominal and maximum compression across all contacts
CoplanarityEvaluate contact and target height variation across the full array
Contact ResistanceMeasure under defined current, target and stroke conditions
Voltage DropMeasure each complete power path at intended electrical load
Temperature RiseEvaluate contacts, targets, terminations and PCB
Parallel Current SharingMeasure individual contact current where contacts are paralleled
Magnetic CaptureEvaluate connector approach and alignment behaviour
Retention and SeparationMeasure forces in intended use and removal directions
Partial MatingTest one-side-first, one-row-first, tilted and offset conditions
VibrationMonitor electrical continuity under the defined vibration profile
Mechanical ShockEvaluate housing, positioning features and PCB stability
Mechanical EnduranceUse defined stroke, target, speed and acceptance criteria
Powered EnduranceEvaluate mating and separation under intended electrical load
Environmental ExposureEvaluate required temperature, moisture, dust and contamination conditions

Information Required for Engineering Review

InputInformation to Provide
Pin MapFunction of all fourteen contacts
Electrical ConditionsVoltage, continuous current, peak current and signal types
Mechanical SpaceMaximum length, width, height and restricted regions
Contact GeometryRequired pitch, row spacing and mating-target dimensions
Mounting RequirementsPositioning-hole diameter, spacing and fixing method
Mating DirectionApproach, final seating and removal direction
Working StrokeMinimum, nominal and maximum pogo pin compression
TerminationPCB, FPC, wire or project-specific connection
Magnetic RequirementsCapture, seated retention and separation conditions
VibrationFrequency range, acceleration, direction and operating state
EnvironmentTemperature, humidity, dust, chemicals and cleaning exposure
Project Files2D drawing, 3D model, schematic, PCB layout or equipment assembly
CommercialPrototype quantity, annual forecast and project stage

Frequently Asked Questions

What is a 14 pin industrial magnetic pogo pin connector?

It is a magnetic spring-contact connector with fourteen independent electrical contact positions. This product uses a compact dual-row layout and can be configured for project-specific power, return, detection, identification, interlock, control or signal functions.

How are the 14 contacts arranged?

The product shown uses a dual-row arrangement with approximately seven contact positions per row. Exact pitch, row spacing and positional tolerances should be confirmed using the approved product drawing.

Why use positioning holes on an industrial magnetic connector?

Positioning holes can provide defined mechanical references for mounting the connector to the equipment structure and can reduce reliance on the electrical contacts or PCB terminals for mechanical location.

Can the 14 contacts carry both power and signals?

Yes. Different contacts can be assigned to project-specific power, return, detection, control and signal functions. The final Pin Map and electrical performance must be validated with the customer circuit.

Does a 14 pin connector automatically support high-speed data?

No. Contact count alone does not establish high-speed communication capability. Signal performance depends on the complete physical layer, PCB routing, return paths, connector geometry and channel validation.

Can multiple contacts be connected in parallel for higher current?

Parallel contact allocation can be considered, but current sharing, voltage drop and individual contact temperature must be validated under the intended operating load.

Is this automatically a 5 A connector?

No universal 5 A capability should be assumed. Current depends on the selected Pin Map, contact geometry, working stroke, mating targets, termination, PCB routing and thermal environment.

What makes this connector suitable for industrial equipment?

The high contact count, dual-row architecture, positioning features and magnet-assisted mating can support industrial equipment integration. Final suitability must still be established through project-specific electrical, mechanical, vibration and environmental validation.

Does this connector automatically achieve IP54?

No. An ingress-protection rating must apply to a defined and tested connector or complete equipment assembly under stated conditions.

What information is needed for engineering review?

Provide the fourteen-contact Pin Map, voltage, current, signal types, contact geometry, available space, positioning-hole requirements, working stroke, vibration conditions and available project drawings.

Request a 14 Pin Industrial Magnetic Connector Engineering Review

Review additional custom magnetic connector components for different pin counts, contact layouts and industrial mating structures.

Submit the 14-contact Pin Map, electrical requirements, mechanical space, mounting conditions and project drawings through the Get Quote & Samples page .

CTP can review the 14-contact dual-row layout, Pin Map, pogo pin working stroke, mating targets, positioning-hole structure, magnetic arrangement and PCB, FPC or wire termination. Final electrical ratings, signal performance, vibration capability, magnetic retention, mating life and environmental protection must be confirmed through approved drawings and project-specific validation.

Engineering Review for 14 Pin Dual Row Industrial Magnetic Pogo Pin Connector Pair

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.

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