Individual Pogo Pin
A single spring-loaded contact supplied for integration into the customer’s PCB, housing or connector structure.
Browse Individual Pogo Pins →An individual high-current right-angle pogo pin with a bent termination tail for compact PCB and power-contact integration. The spring-loaded contact provides controlled axial compliance while the right-angle tail redirects the termination path relative to the contact axis. Final current capability, PCB termination, working stroke, spring force, dimensions and materials are defined by the approved project drawing and complete conductive-path validation.
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.
A single spring-loaded contact supplied for integration into the customer’s PCB, housing or connector structure.
Browse Individual Pogo Pins →A complete multi-contact assembly combining pogo pins, insulating housing, contact pitch and mounting structure.
Browse Connector Assemblies →Choose through-hole, surface mount, right-angle, double-ended or customer-specific termination.
Review Engineering Guides →Define travel, spring force, current path, housing, Pin Map and device-side mechanical constraints.
Submit Project Requirements →HIGH-CURRENT RIGHT-ANGLE SPRING CONTACT
This high-current right-angle pogo pin is an individual spring-loaded electrical contact with a visibly bent termination tail. The contact axis and termination direction are arranged at an angle to each other, allowing the electrical path to be redirected where a straight axial termination is not suitable for the available PCB or mechanical space.
The spring-loaded plunger provides controlled axial compliance at the mating interface, while the bent tail provides the project-specific termination path. Final seating and structural positioning should be controlled by the surrounding housing, PCB support, mechanical datums or stops rather than by using the pogo pin as the primary mechanical stop.
This product is intended for high-current contact projects, but the supported current must be defined through complete conductive-path, voltage-drop and temperature-rise validation. A specific ampere rating should not be inferred from pogo pin diameter alone.
The visible product architecture combines a cylindrical spring-loaded contact body with a right-angle bent tail. This changes the termination direction relative to the compression axis of the plunger and can simplify integration where the available PCB or enclosure geometry does not support a straight termination.
Product Type Individual high-current pogo pin
Tail Structure Right-angle bent termination
Pin Count One electrical contact
Mechanical Function Controlled axial compliance
The bent tail allows the termination path to exit in a different direction from the spring-contact axis. This can be useful when the PCB, housing or mating architecture limits the available space for a conventional straight-tail pogo pin.
The exact PCB integration method must be defined by the approved project drawing. Tail diameter, bend geometry, PCB hole or pad geometry, soldering method, component support and clearance to adjacent structures should be reviewed together.
A widened lower feature is visible on the product, but its exact positioning, retention or support function should not be inferred from appearance alone.
Working stroke and total travel are separate mechanical parameters.
Working stroke defines the intended compression range during normal electrical contact. Total travel represents the available mechanical movement of the spring structure and should not automatically be used as the normal operating position.
The approved working condition should consider PCB position, housing dimensions, mating-surface tolerance, installed height and any mechanical stack-up between the pogo pin and the target contact.
Mechanical datums, guides or housing stops should define the final seated position. The pogo pin should provide compliant electrical contact rather than act as the primary hard stop.
This product is intended for high-current contact projects, but current capability must be evaluated across the complete conductive path rather than assigned from the pogo pin diameter or barrel size alone.
Source → PCB Copper → Termination Joint → Bent Tail → Pogo Pin Body → Spring Contact Interface → Mating Contact → Target Circuit → Load
Depending on the final design, additional connectors, wires, FPC, bus structures or PCB transitions may also contribute resistance and thermal loss.
Vdrop = I × Rpath
Ploss = I² × Rpath
Current validation should consider the complete path resistance, contact resistance, termination resistance, PCB copper geometry, temperature rise, duty cycle and mating condition.
If several pogo pins are connected in parallel to increase total power-path capacity, the current should not be assumed to divide equally between contacts.
Contact resistance, PCB trace resistance, mating compression, temperature, mechanical tolerances and termination geometry can cause unequal current sharing. The complete parallel contact arrangement should therefore be validated under the intended operating condition.
The high-current design direction makes this pogo pin primarily relevant to power-path applications, but the final electrical function is defined by the system architecture.
If the contact is assigned to control or signal functions, supported data rate cannot be determined from pin size or pin count. Return path, contact geometry, PCB transitions, adjacent conductors and the complete channel must be evaluated.
| Specification | Details |
|---|---|
| Product Type | High-Current Right-Angle Pogo Pin |
| Pin Count | 1 Pin |
| Contact Type | Individual Spring-Loaded Contact |
| Body Form | Cylindrical |
| Contact Head | Rounded / Domed |
| Tail Structure | Right-Angle / Bent Tail |
| Termination Direction | Right-Angle to Main Contact Axis |
| PCB Termination | Defined by Approved Drawing |
| Mounting Method | To Be Confirmed |
| Working Stroke | Defined by Approved Drawing |
| Total Travel | To Be Confirmed |
| Spring Force | Project-Specific |
| Current Capability | Project-Specific; Validate Complete Conductive Path |
| Continuous / Peak Current | To Be Confirmed |
| Voltage | Project-Specific |
| Contact Resistance | To Be Confirmed |
| Material | To Be Confirmed |
| Plating | To Be Confirmed |
| Cycle Life | To Be Confirmed |
| Operating Temperature | To Be Confirmed |
| IP Rating | Not Claimed for the Individual Contact |
This high-current right-angle pogo pin can be evaluated for projects that require a compliant electrical power contact together with a termination direction different from the main compression axis.
Final suitability depends on the required current, complete conductive path, PCB copper geometry, termination method, working stroke, mating tolerance and thermal performance of the finished assembly.
CTP can review project-specific high-current right-angle pogo pin requirements based on the available mechanical envelope, required termination direction, PCB structure, current path, working stroke and mating architecture.
Depending on engineering feasibility, the approved project drawing can define body dimensions, plunger geometry, bent-tail geometry, PCB interface, spring characteristics, material, plating and other application-specific requirements.
When multiple contacts must be integrated into a common housing, the pin layout, current sharing, insulation structure, mechanical alignment and complete connector architecture should be reviewed together.
For multi-contact designs, explore pogo pin connector assemblies .
It is an individual spring-loaded electrical contact designed for high-current contact projects with a bent termination tail that redirects the termination path relative to the main compression axis.
A right-angle tail can be useful when the PCB or housing does not provide sufficient space for a straight axial termination. The bent structure allows the termination direction to be changed while retaining the spring contact axis required by the mating interface.
The product is intended for high-current contact applications, but the supported current is project-specific. It must be validated across the complete conductive path including PCB copper, termination, pogo pin, mating interface and target circuit.
No. Physical size alone does not establish current capability. Complete-path resistance, termination resistance, mating condition, temperature rise and duty cycle must also be evaluated.
Working stroke is defined by the approved project drawing and represents the intended operating compression. It should not be confused with the total mechanical travel of the spring contact.
The exact PCB mounting and soldering structure depends on the approved design. Tail dimensions, PCB hole or pad geometry and assembly process should be confirmed before production.
Parallel contacts can be considered, but total current capability should not be calculated by simply multiplying the rating of one contact. Current sharing, PCB resistance, mating compression and temperature distribution must be validated in the complete assembly.
No IP rating is claimed for the individual contact. Waterproof or dust-resistant performance depends on the complete housing, sealing structure and validated assembly.
Provide the available X/Y/Z space, PCB layout, termination method, working stroke, mating tolerance, continuous and peak current requirements, voltage, permitted temperature rise, environmental requirements and available 2D or 3D drawings.
CUSTOM HIGH-CURRENT CONTACT DEVELOPMENT
Send CTP your PCB layout, available X/Y/Z space, termination direction, working stroke, mating tolerance, continuous and peak current requirements, voltage and 2D or 3D drawings. Our engineering team can review the complete current path and right-angle contact structure before quotation and sample development. Request Custom Quote & Samples
This product page presents a CTP pogo pin 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.
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.
Yes. Customization can cover geometry, contact layout, materials, cable construction, magnetic structure, sealing and appearance. Feasibility depends on the application and approved specification.
No. Current, voltage, resistance, temperature rise and ingress-protection claims apply only to the identified model and stated test conditions.
Timing is confirmed after the drawing, materials, tooling, sample quantity, validation scope and production requirements have been reviewed.
The development route depends on whether an existing pogo pin can be used, modified or assembled into a customized multi-contact connector.
Confirm product type, dimensions, stroke, force, current, mounting and project quantity.
Match the contact geometry, tail structure, housing, Pin layout and installation method.
Confirm dimensional tolerances, material requirements and sample configuration.
Review electrical, mechanical, assembly and application-specific validation conditions.
Submit the product type, dimensions, mounting method, working stroke, spring-force condition, electrical requirements, Pin Map, PCB layout and available drawings for project review.
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.
TWS Earbuds & Watches
Healthcare Equipment
High Current Systems
Data Transmission
IoT & LED Lighting
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