Skip to content
Contact details to be supplied
  • 17 Years of Manufacturing
  • Custom Connector Solutions
  • Precision Design
Magtor
Magtor

Main navigation

Contact details to be supplied
Industry Insights & Technical Updates

Mounting Magnetic Connectors: Terminations, Retention and Design Checks

Published on July 30, 2026
Snap-fit, in-mold, screw-lock and SMT or DIP mounting examples with original explanations.

Mounting affects board strength, assembly, sealing, maintenance and service life. Compare surface-mount and through-hole terminations with screw retention, molded integration and snap-fit retention, then select a combination suited to the product.

Why the Mounting Structure Matters

Repeated mating, separation, sideways movement, vibration and impacts load a magnetic interface. Magnetic guidance helps locate the mating halves, but the resulting forces still reach the PCB, housing, solder joints, screws, clips or molded structure around the connector.

magnetic connector

An unsuitable mounting method may cause:

  • Cracked or fatigued solder joints

  • PCB pad lifting

    PCB
  • Connector displacement

  • Poor pogo pin contact

  • Inconsistent magnetic alignment

  • Water or dust leakage

  • Housing deformation

  • Reduced product service life

Review the electrical connection alongside the path that carries mechanical loads. The mounting structure should support repeated handling without compromising electrical contact.

1. Surface-mount Termination

Surface-mount technology, or SMT, solders the connector terminals to pads on the PCB surface, commonly by reflow. The terminals do not pass through the board; confirm that the selected connector is approved for the intended process.

SMT
Twenty-four gold spring contacts arranged in three rows on a printed circuit board.

Possible uses include watches, wireless earphones, medical wearables, smart glasses, portable electronics, sensors and other compact products. Application examples do not establish approval for a particular device.

Advantages of SMT Mounting

A small footprint and low profile are useful SMT characteristics. With no electrical terminals passing through the board, the layout can use both sides efficiently, while retaining the necessary mounting and insulation clearances.

Suitable connectors can be placed automatically and reflowed with other board components, reducing manual installation in volume production. Packaging, pickup geometry and the reflow process still require validation.

Additional advantages include:

  • Small PCB footprint

  • Low installation height

  • High assembly efficiency

  • Compatibility with automated SMT lines

  • Flexible terminal layouts

  • Suitable for lightweight products

Engineering Considerations for SMT Connectors

Solder-joint loading is a principal concern. If repeated vertical or sideways handling forces act directly on SMT terminals, solder fatigue or pad separation can result. Design a suitable supporting load path.

Engineers should carefully control:

  • PCB pad dimensions

  • Solder paste thickness

  • Terminal coplanarity

  • Reflow temperature profile

  • Connector placement accuracy

  • Solder fillet quality

  • Distance between the connector and PCB edge

Larger connectors, higher retention forces or frequent mating may need reinforcement. Consider locating posts or bosses, side solder tabs, brackets, adhesive or support from the enclosure, and verify which features carry the load.

Verify magnets, housing plastics, adhesives and internal components against the actual reflow profile. An SMT designation alone does not establish their heat tolerance.

Best Applications for SMT Mounting

Consider SMT when these requirements apply:

  • Compact dimensions

  • Low installation height

  • Automated PCB assembly

  • Moderate mating force

  • High production volume

  • Minimal manual installation

Space-limited consumer and wearable designs often benefit from SMT, especially where the enclosure can support the connector mechanically.

2. Through-hole Termination

Through-hole technology, or THT, passes terminals or support pins through PCB holes and solders them from the opposite side, using wave, selective or hand soldering as appropriate. This mounting approach is sometimes labeled DIP in connector catalogs; DIP more specifically describes a dual in-line package.

THT / through-hole
Five-terminal magnetic connector soldered to a circuit board.

Through-hole magnetic connectors are an option for industrial equipment, docks, control panels and communication products that need robust board retention.

Advantages of Through-hole Termination

Pins anchored through the board can provide better resistance to pulling, tilting and sideways loading than a basic unsupported SMT design. The actual result depends on the terminals, soldering, board and support structure.

A properly soldered through-hole joint provides a physical anchor that can reduce separation risk during repeated mating. Validate the complete load path rather than relying on the hole alone.

Potential benefits include:

  • Stronger mechanical retention

  • Better resistance to lateral force

  • Stable positioning during soldering

  • Suitability for larger connectors

  • Greater tolerance for repeated connections

  • Easy integration of positioning posts

Through-hole terminals may permit larger conductor cross-sections, but the mounting method does not set the current rating. Check contact diameter, conductor size, resistance, materials, plating, PCB copper, wiring and allowable temperature rise.

Engineering Checks for Through-hole Connectors

Board holes constrain routing on both surfaces and can affect internal copper layers. Reserve the required clearance around terminals and include those constraints in the PCB layout.

Important design factors include:

  • Hole diameter and tolerance

  • Pin diameter

  • Annular ring size

  • PCB thickness

  • Solder filling ratio

  • Distance between electrical pins and support posts

  • Wave or selective soldering temperature

  • Accessibility for inspection and rework

Large terminals draw heat from the soldering process. Supply enough energy for the required hole fill while keeping the housing and magnets within their thermal limits.

Where Through-hole Termination May Fit

Consider through-hole mounting for these requirements:

  • Higher mechanical strength

  • Frequent mating cycles

  • Larger connector dimensions

  • Stronger PCB retention

  • Industrial or semi-industrial reliability

  • Better resistance to vibration and impact

Charging bases and docks may benefit where users repeatedly place, remove or tilt the mating device. Check the retention structure against those actual movements.

3. Screw Retention

Screws can secure a connector to the board, panel, bracket or housing. Its electrical termination can independently use SMT, through-hole pins, soldered wires, crimps or another suitable method.

Five-contact screw-lock housing, two screws and the original mounting and alignment explanations.

Screw retention describes mechanical attachment; SMT and THT describe electrical termination. They can therefore be used together.

Advantages of Screw-Lock Mounting

A screw-supported layout can route mating and release loads into the fasteners and housing, reducing reliance on solder joints. Verify that the geometry provides the intended load path.

This approach is worth considering for larger interfaces, high-current systems, industrial products, vehicles, robots and outdoor equipment. Those applications still need their own electrical and environmental validation.

Its main advantages include:

  • High mechanical strength

  • Strong vibration resistance

  • Good protection for solder joints

  • Easy connector replacement

  • Stable panel positioning

  • Compatibility with sealing gaskets

  • Suitability for heavy cables and large magnets

Controlled fastener compression of a gasket or O-ring can support a sealed interface. The assembly must be tested before assigning an IP rating.

Engineering Considerations for Screw-Lock Connectors

Define a suitable tightening window. Excess torque can crack plastic, deform the connector, compress a seal unevenly or damage the PCB; too little can allow loosening under vibration.

Engineers should define:

  • Screw type and diameter

  • Thread engagement length

  • Recommended tightening torque

  • Metal insert requirements

  • Screw-locking adhesive requirements

  • Washer or spring washer selection

  • Gasket compression ratio

  • Flatness of the mounting surface

  • Service and replacement procedures

Threaded metal inserts may improve the durability of a plastic mounting point, particularly when servicing requires repeated removal. Select the insert and fastening design for that duty.

Add locating features where needed so that screw holes alone do not determine contact alignment.

Best Applications for Screw-Lock Mounting

Screw-lock mounting is appropriate for:

  • High-current connectors

  • Industrial robots

  • AGVs and automation equipment

  • Medical equipment

  • Automotive electronics

  • Outdoor charging systems

  • Large docking stations

  • Products requiring field replacement

Fasteners add components and assembly work, but can offer strong retention and convenient replacement when those features are designed and validated.

4. Molded Integration

Place the connector or selected components in the mold before injecting plastic or elastomer around them. Depending on the assembly, this may be described as insert molding or overmolding; the terms describe related processes rather than identical structures.

Original two-contact connector housing cutaway in a new pale composition.

Applications can include magnetic charging cables, sealed modules, wearables, medical products, sensors and custom housings.

Advantages of In-Mold Assembly

Integrating the connector with the molded structure can reduce separate parts, support sealing, form strain relief and create a consistent external finish.

Its key advantages include:

  • Compact integrated construction

  • Good resistance to connector movement

  • Reduced number of assembly components

  • Potentially improved waterproof performance

  • Improved cable strain relief

  • Consistent external appearance

  • Protection of internal solder joints and wiring

  • Suitability for customized product shapes

On cable assemblies, suitable overmolding can protect the wire termination and reduce how much bending load reaches a solder joint. Validate the strain relief geometry and material.

Engineering Considerations for In-Mold Assembly

Coordinate connector geometry, mold design, resin selection and process development for molded integration.

Injection pressure and temperature must not displace, distort or degrade the connector. Check the magnet grade at the actual molding temperature, since excessive heat can reduce magnetic strength.

Key process controls include:

  • Connector positioning inside the mold

  • Mold cavity tolerance

  • Injection pressure

  • Resin temperature

  • Magnet temperature resistance

  • Plastic shrinkage

  • Prevention of resin flash

  • Protection of pogo pin contact surfaces

  • Sealing around wires and terminals

  • Adhesion between different materials

Keep plastic, oil, release agents and other contamination off the contact surfaces. Even small amounts of flash can alter mating height or electrical contact.

Check compatibility between the molding material and housing. Differences in thermal expansion, shrinkage or chemistry can cause stress, cracks or gaps during temperature cycling.

Best Applications for In-Mold Assembly

In-mold assembly is particularly suitable for:

  • Waterproof charging cables

  • Medical wearable devices

  • Smart watches and bands

  • Compact sensor modules

  • Outdoor electronic products

  • Customized cable heads

  • High-volume products with stable designs

Molded integration usually needs more tooling investment and process qualification. Once developed, it can provide a compact assembly and effective sealing, subject to material bonding and process control.

5. Snap-fit Retention

Molded clips, hooks, tabs or flexible latches retain the connector when it is pressed into its housing and the locking features engage.

Six-contact magnetic connector and snap-fit holder showing insertion and locking directions.

Fast-assembly consumer electronics, docks, replaceable modules, smart home products and plastic housings are possible uses for snap-fit retention.

Advantages of Snap-Fit Mounting

Many snap-fit designs avoid screws and need few tools, reducing parts and final assembly work. Confirm engagement and any required installation tooling for the design.

Its main benefits include:

  • Fast installation

  • Low part count

  • No screw-tightening process

  • Lower assembly cost

  • Easy integration into plastic housings

  • Suitable for automated or semi-automated assembly

  • Clean external appearance

Snap-fits can be attractive in volume products where rapid assembly takes priority over repeated field disassembly.

Engineering Considerations for Snap-Fit Connectors

Retention reliability depends on resin selection, latch geometry, molding tolerances and the direction of assembly.

Latches need enough flexibility for installation and enough strength to resist movement during mating. Account for creep, fatigue, temperature changes and long-term deformation.

Important factors include:

  • Clip thickness

  • Root radius

  • Insertion angle

  • Retention angle

  • Maximum allowable strain

  • Plastic material and glass-fiber content

  • Housing tolerance

  • Connector tolerance

  • Assembly force

  • Removal requirements

  • Vibration direction

  • Magnetic separation force

Where practical, direct normal operating loads into a rigid housing surface rather than leaving a flexible latch under continuous pull.

A latch intended for initial assembly may weaken or break during repeated removal. Specify and validate removal cycles if servicing is required.

Best Applications for Snap-Fit Mounting

Snap-fit mounting is suitable for:

  • High-volume consumer products

  • Plastic charging docks

  • Smart home devices

  • Lightweight connector modules

  • Products with moderate magnetic force

  • Applications requiring fast final assembly

A snap-fit intended for a sealed product normally needs a separate gasket, adhesive, sealant or controlled seal-compression feature.

Comparing the Five Approaches

Mounting methodMain advantageMain limitationTypical applications
SMTCompact and automation-friendlySolder joints may carry mechanical stressWearables, earphones, smart glasses
THT / through-holeStrong PCB retentionRequires PCB holes and more board spaceCharging docks, industrial electronics
Screw-lockExcellent mechanical strength and serviceabilityAdditional parts and assembly timeRobotics, automotive, high-current systems
In-mold assemblyIntegrated structure and strong sealing potentialHigher tooling and process requirementsWaterproof cables, medical and wearable devices
Snap-fitFast, low-cost assemblySensitive to plastic fatigue and toleranceConsumer electronics and plastic housings

Scroll horizontally to view every column.

Choosing for the Complete Product

No approach fits every magnetic interface. Review the complete structure and its load paths rather than choosing from connector size alone.

Mechanical Load

Include magnetic attraction, release force, cable weight, handling direction, vibration and the required number of mating cycles in the load assessment.

A small wearable may suit reinforced SMT, whereas a large high-current interface may need screws or a bracket. Use those as design options, rather than fixed rules.

Production Volume

SMT and snap-fits can suit automated volume assembly. Screw retention may add manual operations, while molding needs tooling that can become economical at larger volumes. Compare the actual production processes.

Product Size

SMT often offers a low profile, depending on the part. THT needs board holes; screws need boss and tool clearance. Molding can form an integrated shape but may add mold complexity.

Waterproof Requirements

The mounting method alone does not determine the waterproof rating.

SMT or THT parts may need rear-side adhesive, O-rings, gaskets, potting or enclosure seals. Screws can control gasket compression, while molding can integrate a seal if material bonding and process parameters are controlled. Verify the completed enclosure.

Snap-fit mounting usually requires an additional sealing feature.

Maintenance Requirements

For field replacement, consider screw retention or a snap-fit designed for removal. Permanent assemblies may use molding, adhesive reinforcement or another non-serviceable structure.

Electrical Performance

Establish current capability from the electrical system, rather than the attachment style alone. Verify the following:

  • Contact resistance

  • Pogo pin diameter

  • Terminal cross-section

  • Pin quantity

  • PCB copper area

  • Cable size

  • Allowable temperature rise

  • Duty cycle

  • Ambient temperature

Strong mechanical retention cannot correct an undersized electrical contact or conductor system.

Using Methods in Combination

Many finished magnetic interfaces combine two or more attachment or termination methods.

An industrial interface might combine through-hole electrical terminals, screw retention and a gasket. A wearable might use SMT contacts, locating posts and adhesive reinforcement. A cable head might combine soldered wires with overmolding for sealing and strain relief. Each combination needs validation for its product.

Assigning electrical, mechanical and sealing duties to suitable features can improve the complete assembly’s reliability.

Mounting Design Questions

Which Mounting Approach Fits the Product?

Choose against connector size, retention force, mating frequency, board layout, environment and maintenance needs. SMT can suit compact electronics; THT can add board anchorage; screws support retention and servicing; molding supports integration and sealing; snap-fits support rapid assembly. The approaches can be combined.

When Does SMT Need Mechanical Reinforcement?

Small, light SMT interfaces can perform reliably when pads, joints and enclosure supports are designed for their loads. For higher retention or frequent mating, consider posts, tabs, brackets, adhesive or housing support to keep excessive force off the solder joints.

How Do SMT and Through-hole Terminations Differ?

SMT terminals solder to board-surface pads, supporting compact layouts and automated assembly. THT terminals pass through board holes and can provide stronger anchorage against pulling and sideways loads than basic unsupported SMT. THT also consumes routing space and requires through-hole processing; compare the complete designs.

How Can Mounting Support a Sealed Interface?

Screws can compress a gasket or O-ring, while molding can integrate the connector into a plastic or elastomer sealing structure. SMT, THT and snap-fit assemblies can also be sealed with suitable adhesive, potting, gaskets or housing seals. An installation method alone does not establish waterproof performance.

Can Electrical Termination and Retention Methods Be Combined?

Yes. A connector can combine through-hole terminals for electrical connection, screws for retention and an O-ring for sealing. A wearable can combine SMT terminals, locating posts, housing supports and adhesive. Allocate each function deliberately and validate the combined structure.

What Needs Verification Before Installation?

Check the footprint, mounting tolerances, orientation, polarity, mating height, soldering temperature, load direction, enclosure support, seals and cycling target. Confirm that operating forces reach an appropriate supporting structure instead of relying entirely on solder joints or electrical terminals.

Planning the Mounting System

Surface-mount and through-hole terminations, screw retention, molded integration and snap-fit retention offer different routes to integrating a magnetic interface.

SMT can support compact automated assembly, while THT can add PCB anchorage. Screws can support retention and maintenance; molding can integrate sealed cable or housing structures; snap-fits can simplify final assembly. Actual strength, sealing and cost depend on the design.

Match the mounting system to dimensions, magnetic force, cycling, environment, sealing needs, production volume and maintenance strategy.

Evaluate the connector, board, enclosure, molding process and load paths as one system. A well-chosen mounting design can simplify production and protect electrical contacts, while validation establishes whether it meets the required service life.

Discuss your project

17 years of manufacturing, precision design and prototyping. Contact details pending. Development test — no email will be sent.

Magtor

Work with Magtor for precision connector design, prototyping and production at scale, supported by 17 years of manufacturing experience.

Three people at a connector exhibition booth with neutral signage.
  • 17 Years of Manufacturing

    Manufacturing experience helps guide your connector project from development into production.

  • Prototyping and Mold Making

    Prototype development and mold making in-house to suit your connector design.

  • Technical Support and Solution Development

    Engineering support to review specifications and develop a suitable connection solution.

Technical enquiries & global support

Contact details to be supplied

Manufacturing headquarters

406, Building 3, No. 12, Zhenyuan Road, Wusha, Chang'an Town, Dongguan City, Guangdong Province, China

Custom Magnetic Connection Solutions

Service goal: review project specifications and respond within 24 hours. This development preview does not send inquiries or schedule replies.

Development test: submissions are checked on this preview only. No email is sent. Development test — no email will be sent.

Your project information is treated as confidential and used to review your requirements.