PCB manufacturing PCB manufacturing
Home > Blog

through hole assembly

Custom Through-Hole PCB Design: Footprints, Assembly and RFQ Checklist
Saturday, July 11th, 2026

A custom through-hole PCB should be designed from the component leads outward: confirm the real lead dimensions, define finished holes and pads with the fabricator, reserve assembly access, and send complete fabrication and assembly files. The board is only ready for quotation when the manufacturer can identify every drilled hole, plated feature, component orientation, soldering method, inspection requirement, and acceptable substitution without guessing.

This guide focuses on the decisions that connect a through-hole schematic to a manufacturable board and an accurate RFQ. It complements our broader explanation of through-hole circuit board construction, plating, and assembly.

Custom through-hole PCB design with leaded components and plated drill patterns
A useful through-hole PCB design starts with verified component leads, finished-hole requirements, and an assembly plan.

What Is a Custom Through-Hole PCB?

A custom through-hole PCB is a printed circuit board whose plated holes, pads, component footprints, mechanical outline, and assembly method are designed for a specific set of leaded components and operating constraints.

Through-hole technology (THT) places component leads through drilled holes and solders them on the opposite side. It is often selected for connectors, transformers, relays, terminal blocks, large electrolytic capacitors, switches, or other parts that need mechanical retention, serviceability, or compatibility with an existing design. A board can be entirely through-hole or use mixed technology, with SMT parts on one or both sides and selected THT parts added later.

“Custom” does not simply mean a nonstandard outline. The drill table, lead pattern, component height, copper connection, solder access, fixture needs, panel direction, and inspection criteria may all change the manufacturing route.

When Does Through-Hole Technology Make Sense?

Through-hole technology makes sense when component availability, mechanical loading, manual service, high-mass parts, or legacy compatibility matters more than maximum placement density.

Design condition Why THT may help What to verify
Frequently mated connector Leads can transfer mechanical load through the board Connector retention, board support, pad geometry, enclosure load
Large transformer, relay, or capacitor Lead insertion provides stable placement before soldering Mass, vibration, creepage, keepouts, adhesive or mechanical support
Prototype or field-service design Leaded parts may be easier to probe and replace manually Expected rework cycles and pad durability
Legacy product Existing BOM and mechanical interfaces can be retained Lifecycle, alternates, obsolete footprints, documentation quality
Mixed SMT and THT assembly Dense SMT circuitry can coexist with mechanically loaded THT parts Process order, bottom-side clearances, soldering method, fixture access

THT is not automatically more reliable in every design. Reliability depends on the complete interconnect system: component construction, hole and pad design, laminate, copper plating, solder process, mechanical support, cleanliness, inspection, and operating environment.

How Should You Build a Through-Hole Footprint?

A through-hole footprint should be built from the current component drawing, not from a nominal package name or an unverified library symbol.

Check the lead count, pitch, lead cross-section, body size, standoff, insertion side, pin-one convention, polarization, mating direction, tolerance, and any locating or retention features. For rectangular or tab-shaped leads, the diagonal and orientation may control the required hole more than the nominal width.

  • Record the component manufacturer and exact orderable part number.
  • Use the latest mechanical drawing and note its revision.
  • Separate electrical leads from tooling, locating, or non-plated mounting holes.
  • Show polarity and pin-one marks on assembly documentation and silkscreen where space permits.
  • Check the courtyard against neighboring parts, insertion tools, test probes, and enclosure walls.
  • Confirm whether the part must sit flush, use a controlled standoff, or receive extra mechanical support.

A library footprint can be a starting point, but the released footprint should be traceable to a controlled component drawing. This is especially important for connectors and electromechanical parts whose similar product names may hide different pin spacing or retention posts.

How Do You Specify Finished Holes and Pads?

Specify the required finished-hole size and let the PCB fabricator account for its validated drilling and plating process; do not assume the drill tool equals the finished plated hole.

The required clearance depends on the maximum lead envelope, lead shape, component tolerance, insertion method, board fabrication tolerance, plating allowance, and assembly process. The correct value is therefore a design decision to confirm with both the component drawing and the selected manufacturer rather than a universal number copied from another board.

Feature Design input Manufacturing question
Finished plated hole Maximum lead envelope plus validated insertion clearance What finished-hole tolerance can be held for this stackup and quantity?
Pad and annular ring Current, mechanical load, breakout risk, routing space What minimum retained annular ring is supported after registration tolerances?
Thermal connection Required current, heat flow, solderability Will the copper connection cause difficult heating or insufficient solder fill?
Non-plated hole Fastener, locating post, tooling, isolation Is it clearly separated from plated drill data and copper clearances?
Slot or unusual lead Tab dimensions and orientation Is the slot plated, routable, and compatible with the assembly process?

Large copper planes around a THT pad can draw heat away during soldering. Thermal-relief geometry may improve solderability, but it must still meet current and mechanical requirements. Ask the fabricator and assembler to review the actual copper connection instead of applying one default rule to power terminals, signal pins, and structural leads.

What Layout Details Affect Through-Hole Assembly?

Through-hole layout must reserve physical access for insertion, lead trimming, soldering, inspection, rework, and any fixture that supports the board.

Keep polarized parts consistently oriented where practical. Leave enough space to read assembly markings and to reach solder joints without damaging adjacent components. Tall or heavy parts may need spacing from board edges and vibration-sensitive areas. Connectors must be checked in the mated condition, not just as an isolated footprint.

Operator inserting leaded components into a custom through-hole PCB
Insertion access, component orientation, lead retention, and fixture clearance should be reviewed before layout release.

For mixed-technology boards, review the entire process sequence. Bottom-side SMT components can interfere with wave pallets or selective-solder nozzles. A component that is easy to place by hand may still block automated soldering or inspection. If prototype and production quantities will use different soldering methods, design for both routes or document the intended change.

Which Soldering Method Should You Plan For?

Choose hand soldering, wave soldering, or selective soldering according to volume, component distribution, thermal mass, bottom-side obstructions, repeatability needs, and fixture cost.

  • Hand soldering suits prototypes, repairs, low volumes, and joints that need individual access, but workmanship consistency and cycle time require control.
  • Wave soldering can process many accessible THT joints efficiently when the underside layout, component orientation, masking, and pallet strategy support the process.
  • Selective soldering targets defined joints or regions and can suit mixed-technology boards where a full solder wave would contact protected areas.

The short comparison below shows the practical difference between wave and selective soldering. It belongs here because the decision directly changes layout clearances, fixtures, process time, and RFQ assumptions.

Wave soldering and selective soldering require different access, masking, and fixture decisions.

When the assembly route is not yet fixed, ask for a DFM review from the intended through-hole assembly service before freezing the bottom-side layout.

What Quality Checks Matter for a Custom Through-Hole PCB?

Quality checks should verify the bare board, component installation, solder joints, cleanliness, electrical function, and any mechanical load that the assembly must carry.

Bare-board review can include drill and plating conformity, continuity and isolation testing, hole position, annular ring, board dimensions, and surface condition. Assembly inspection should check correct components, orientation, seating, lead condition, solder coverage, bridges, void-related concerns where visible or otherwise inspectable, flux residues, and damage from handling or rework.

Microscope inspection of through-hole PCB solder joints
Inspection criteria should match the product class, drawing requirements, acceptance standard, and actual assembly process.

Do not write “IPC Class 2” or “Class 3” on an RFQ without identifying the applicable acceptance document, revision, product requirements, exceptions, and evidence expected from the supplier. If a connector carries repeated mechanical load, a functional or mechanical test may be more informative than appearance alone.

What Causes Common Through-Hole PCB Problems?

Most through-hole problems can be traced to an incorrect footprint, poorly defined hole or copper connection, unstable component retention, unsuitable solder access, uncontrolled thermal demand, or incomplete work instructions.

Observed problem Possible design or process cause Review action
Part will not insert consistently Lead envelope, hole tolerance, pitch, slot orientation, or bent leads Compare the physical part, drawing, footprint, and finished-hole data
Weak or inconsistent solder joint Thermal imbalance, contamination, access, process window, or geometry Review copper connections, materials, cleaning, profile, and acceptance criteria
Component lifts or tilts Poor retention, uneven leads, fixture limits, or solder forces Define seating, lead forming, retention, and fixture method
Pad or barrel damage during rework Excess heat, force, dwell time, or repeated repair cycles Define approved rework method and evaluate repairability during design
Connector fails mechanically Board flex, enclosure load, inadequate support, or incorrect footprint Review the complete mated mechanical system and load path

What Files Are Needed for an Accurate RFQ?

An accurate RFQ needs enough controlled data for fabrication, procurement, assembly, inspection, and acceptance without relying on assumptions.

  • Gerber or ODB++ fabrication data with a clearly identified revision.
  • NC drill files that distinguish plated and non-plated holes, plus slot definitions.
  • Fabrication drawing with board outline, stackup expectations, material, copper, finish, thickness, tolerances, and notes.
  • BOM with manufacturer part numbers, approved alternates, quantities, and do-not-fit status.
  • Assembly drawings for each populated side, including polarity and reference designators.
  • Centroid data for SMT portions of mixed-technology boards.
  • Special instructions for lead forming, insertion depth, standoff, clinching, adhesive, hardware, conformal coating, cleaning, or masking.
  • Inspection and test requirements, including fixtures, firmware, test limits, and acceptance records.
  • Prototype and forecast quantities, packaging needs, and any component consignment plan.

For early builds, a prototype PCB assembly run can confirm footprint fit, insertion access, soldering behavior, and test coverage before production tooling is finalized. If schedule is critical, compare the files and approvals needed for a quick-turn PCB assembly route rather than asking only for the shortest calendar lead time.

Custom Through-Hole PCB Pre-Release Checklist

A design is ready to release when the electrical, mechanical, fabrication, assembly, and inspection data agree with one another.

  1. Match every footprint to the current component drawing and exact orderable part.
  2. Confirm maximum lead dimensions, pitch, orientation, and retention features.
  3. Define finished plated holes, non-plated holes, slots, pads, and copper connections.
  4. Check component body, height, mating, tool, probe, enclosure, and rework clearances.
  5. Select the intended soldering route and review bottom-side access and fixture needs.
  6. Review heavy parts, connectors, board flex, vibration, and mechanical support.
  7. Align fabrication drawing, BOM, assembly drawing, drill data, and revision identifiers.
  8. Define inspection, electrical test, functional test, cleanliness, and acceptance evidence.
  9. Run DFM and assembly review before ordering production quantities.
  10. Validate the prototype with the actual enclosure, cables, mating connectors, firmware, and test fixture.

Frequently Asked Questions

Is a through-hole PCB the same as a plated-through-hole PCB?

Not necessarily. “Through-hole PCB” often describes a board assembled with leaded components, while “plated through-hole” describes a hole with conductive plating connecting pads or copper layers. A board may contain plated through-holes as component holes or vias even when most components are surface mounted.

Can a custom board use both SMT and through-hole components?

Yes. Mixed-technology assemblies are common when dense SMT circuitry must coexist with connectors, relays, transformers, or other leaded parts. The layout must account for process order, bottom-side SMT parts, wave pallets or selective-solder access, inspection, and rework.

How much clearance should a lead have inside a finished hole?

There is no single clearance that fits every component and process. Use the maximum lead envelope, lead shape, insertion method, component tolerance, finished-hole tolerance, plating process, and assembly capability. Confirm the final value with the component drawing and manufacturer before release.

Should the PCB drawing specify drill size or finished-hole size?

The design documentation should clearly communicate the required finished feature and tolerance. The fabricator normally selects a process drill that accounts for plating and its controlled manufacturing route. Ambiguous drill notes can lead to incorrect assumptions, so align the drill files and fabrication drawing.

Are thermal reliefs always required on through-hole pads?

No. Thermal reliefs can improve solderability when a pad connects to a large copper area, but high-current, heat-transfer, or mechanical requirements may call for a different connection. Review electrical and thermal needs together with the solder process.

When is selective soldering better than wave soldering?

Selective soldering is useful when only defined THT joints can contact solder or when bottom-side SMT parts and sensitive areas prevent full wave exposure. Wave soldering can be efficient for layouts designed around broader underside access. Volume, fixture cost, spacing, and thermal demand also affect the choice.

What should be included in a through-hole assembly drawing?

Show component locations, reference designators, insertion side, polarity, pin one, orientation, do-not-fit parts, special seating or standoff requirements, hardware, lead forming, and revision. Add separate controlled instructions when soldering, masking, cleaning, coating, or test requirements need more detail.

How can connector solder joints be protected from mechanical stress?

Design the load path across the connector, board, mounting hardware, enclosure, and cable. Board supports, retention features, fasteners, strain relief, adequate pad and hole design, and controlled mating forces may all matter. Do not expect solder joints alone to absorb repeated external load.

What should be tested on a first prototype?

Verify component fit, polarity, insertion and solder access, electrical continuity, programmed function, connector mating, enclosure fit, temperature behavior, mechanical loads, test-point access, and rework feasibility. Record every change against the controlled design revision before production release.

How do I reduce quotation delays?

Send synchronized fabrication data, drill files, BOM, assembly drawings, test requirements, quantities, and revision identifiers. Flag alternate parts and special processes clearly. A concise question list for unresolved items is better than leaving the supplier to infer missing requirements.

Final Design Decision

A custom through-hole PCB succeeds when the component drawing, finished-hole definition, copper connection, assembly access, soldering route, inspection plan, and RFQ package describe the same product. Resolve those interfaces before production, not during component insertion.

If you are preparing a through-hole or mixed-technology PCB for prototype or production, send the engineering files, BOM, expected quantities, soldering constraints, and test requirements to sales@bestpcbs.com for DFM review and quotation.

You may also like

Through-Hole Assembly
Wednesday, March 18th, 2026

Through-hole assembly (also known as Thru-Hole Technology or THT) is a printed circuit board (PCB) mounting process where electronic component leads are inserted into pre-drilled holes in the board and soldered to pads on the opposite side. While newer Surface Mount Technology (SMT) has become the industry standard for smaller devices, THT remains essential for components that require high mechanical strength or heat resistance.

Through-Hole Assembly

Through-Hole Assembly

Are You Facing These Through-Hole Assembly Challenges?

Many engineers and buyers encounter similar issues when scaling through hole pcb assembly from prototype to production, especially when consistency becomes critical.

  • Unstable solder quality in wave soldering
  • High defect rate in manual insertion
  • Difficulty handling large connectors or transformers
  • Long lead time for mixed SMT + THT projects
  • Reliability issues under vibration or thermal stress

These problems often lead to rework, delays, and increased cost, while also affecting product performance in the field.

How We Solve These Through-Hole Assembly Challenges?

Instead of only offering manufacturing, we focus on solving the root causes behind these issues through process control and engineering support.

  • Inconsistent solder quality → Optimized wave soldering profile (245–260°C) with controlled dwell time (2–4 sec), ensuring stable hole fill
  • High defect rate in insertion → Hybrid approach combining automated insertion and standardized manual processes with fixtures
  • Handling heavy components → Custom support fixtures to prevent movement and improve solder joint strength
  • Mixed SMT + THT inefficiency → Integrated production flow to reduce handling and improve efficiency
  • Reliability concerns → Multi-stage inspection with AOI and X-ray to ensure consistency

Our Through-Hole PCB Assembly Capability

Our through hole pcb assembly service is built on both advanced equipment and real production experience, which allows us to deliver consistent results across different industries. EBest Circuit (Best Technology), founded in 2006, provides one-stop PCB and PCBA solutions with over 20 years of manufacturing experience and multiple quality certifications.

Key Capabilities

  • Selective soldering for complex assemblies
  • Wave soldering lines with precise thermal control
  • Automated insertion for radial and axial components
  • Support for large pin components (up to 1.8–2.0 mm)
  • PCB thickness capability up to 3.2 mm
  • AOI and X-ray inspection for quality assurance

Production Performance Indicators

MetricTypical Value
Solder joint yield>99.2%
First pass yield>98.5%
Rework rate<1.5%
Standard PCBA lead time~1.5 weeks
Prototype turnaround3–5 days

How We Control Solder Quality in Real Production?

Solder quality is the most critical factor in through hole assembly, and it depends on precise process control rather than equipment alone.

In our production environment, we control:

  • Wave soldering temperature: 245–260°C
  • Preheating ramp: 1–3°C/sec
  • Contact time: 2–4 sec
  • Cooling profile: controlled to reduce stress

Typical Defects and Control Methods

Defect TypeRoot CauseControl Method
Insufficient hole fillLow temp / short dwellOptimize wave profile
Solder bridgingExcess solderAdjust flux and process
Cold jointsPoor wettingControl preheat and flux
Component misalignmentManual variationUse fixtures and AOI
Voids / weak jointsImproper heatingStable thermal control

By continuously monitoring these parameters, we ensure stable quality across batches, even for complex boards.

What Results Can You Expect from Our Through Hole Assembly Service?

Customers do not only need capability, they need predictable results that improve production efficiency and reliability.

  • More consistent solder quality across batches
  • Reduced defect rate during mass production
  • Faster turnaround for mixed SMT + THT projects
  • Improved reliability in harsh environments

In addition, DFM support before production helps identify risks early, which reduces rework and saves both time and cost.

Through Hole Assembly Process – Step-by-Step Overview

Through hole assembly follows a structured workflow, and each step must be controlled to ensure stable quality.

1. Component preparation and lead forming

2. PCB drilling and plating

3. Manual or automated insertion

4. Wave or selective soldering

5. Cleaning when required

6. Inspection (AOI / X-ray / visual)

7. Functional testing

Key Process Control Parameters

Process StepParameterTypical Range
PreheatingTemperature ramp1–3°C/sec
SolderingTemperature245–260°C
Contact timeDwell2–4 sec
CoolingRateControlled
Lead protrusionLength1–2 mm

What Is the Difference Between Through-Hole and SMT?

Through-hole assembly and SMT differ in structure, reliability, and production efficiency. While SMT is suitable for compact and high-speed designs, through hole pcb assembly is preferred for high-reliability applications.

Detailed Comparison

FeatureThrough-Hole AssemblySMT
Mounting methodInserted leadsSurface mount
Mechanical strength30–50% higherLower
Soldering temperature245–260°C235–250°C
Contact time2–4 sec60–90 sec
Board densityLowerUp to 10× higher
Automation level30–70%80–95%
Defect rate~1–2%~0.5–1%
ReliabilityExcellentModerate
ApplicationIndustrial / automotiveConsumer electronics

When Should You Choose Through-Hole PCB Assembly Instead of SMT?

Through hole pcb assembly is preferred when mechanical strength and durability are more important than size.

  • High-current applications
  • Large or heavy components
  • Harsh environments with vibration
  • Long-life industrial systems

Which Industries Use Through-Hole Assembly the Most?

Through hole assembly services are widely used in industries that require stable and long-term performance.

  • Industrial control
  • Automotive electronics
  • Aerospace and defense
  • Power and energy systems
  • Medical equipment
Which Industries Use Through-Hole Assembly the Most?

Why Customers Switch to Us from Other Suppliers?

Many customers switch to us after facing recurring issues during mass production, rather than at the prototype stage.

Common reasons include:

  • Unstable solder quality
  • Poor SMT + THT coordination
  • Lack of engineering support
  • Delivery delays

By addressing these issues through process optimization and engineering collaboration, we help customers achieve more stable production.

FAQ About Through-Hole Assembly

1. Is through-hole assembly better than SMT?

It depends on the application. Through-hole assembly (THT) is superior for components requiring high mechanical strength, such as connectors and heavy transformers, or for devices used in extreme environments. However, Surface Mount Technology (SMT) is better for high-density, compact electronics (like smartphones) because it allows for smaller components and faster, automated mass production.

2. Why is through-hole technology still used?

Through-hole technology remains essential because it provides the strongest mechanical bond between a component and the PCB. Engineers specify THT for:

  • High-stress environments: Aerospace and military gear that face intense vibration.
  • High-power applications: Components that handle high voltage or generate significant heat.
  • Prototyping: Parts that need to be manually swapped or tested during the design phase.

3. What are the disadvantages of through-hole assembly?

The primary drawbacks of through-hole assembly are increased board size and higher production costs. Because THT requires holes to be drilled through every layer of the board, it limits available routing space and prevents components from being packed as densely as they are in SMT. Additionally, the process often requires more manual labor, which slows down the manufacturing timeline.

4. Can you mix through-hole and SMT on the same board?

Yes. This is known as mixed technology assembly. It is very common in modern electronics to use SMT for small, high-speed chips (like microprocessors) and THT for bulky or high-stress parts (like power plugs, large capacitors, or switches). This approach balances the space-saving benefits of SMT with the durability of THT.

5. What are the two main types of through-hole components?

Through-hole components generally fall into two categories based on their lead configuration:

  • Axial Leads: Leads exit from opposite ends of the component (like a standard resistor), usually lying flat across the board.
  • Radial Leads: Leads exit from the same side of the component (like a disc capacitor), allowing the part to stand upright and save horizontal board space.

6. Is through-hole assembly more expensive than SMT?

Generally, yes. THT is more expensive for high-volume production because of the drilling requirements and the difficulty of fully automating the placement of “loose” components. While SMT machines can place thousands of parts per hour, THT often involves semi-automated or manual insertion followed by wave soldering, leading to higher labor and fabrication costs per unit.

Ready to Improve Your Through-Hole Assembly Quality and Reduce Defects?

If you are dealing with soldering issues, inconsistent quality, or long lead times, working with the right manufacturer can make a real difference.

  • DFM feedback within 24 hours
  • Process optimization suggestions
  • Fast quotation with lead time

Contact us: sales@bestpcbs.com

You may also like

Through-Hole Assembly
Wednesday, March 18th, 2026

Through-Hole Assembly remains a critical manufacturing method for electronics that demand strong mechanical connections and long-term reliability. In this guide, you will learn how through hole pcb assembly works, when to use it, and how to choose the right through hole pcb assembly service for your project.

What Is Through-Hole Assembly and Why Is It Still Essential?

Through-hole assembly refers to inserting component leads into drilled holes on a PCB and soldering them on the opposite side, which creates a strong and stable mechanical bond. Compared with surface mount technology, this method offers better durability, especially in applications exposed to vibration, heat, or high electrical load.

Although SMT dominates consumer electronics, through-hole pcb assembly is still widely used in industrial, aerospace, and automotive sectors. The reason is simple: reliability matters more than size in these environments, and through-hole connections are much harder to fail under stress.

What Are the Advantages of Through-Hole PCB Assembly?

Through hole assembly services continue to be preferred in many industries, because they offer several practical advantages that SMT alone cannot fully replace.

  • Strong mechanical bonding for heavy or large components
  • Better resistance to vibration and thermal cycling
  • Higher reliability in high-current and high-voltage circuits
  • Easier inspection, repair, and rework
  • Suitable for connectors, transformers, and power components

Because of these benefits, many designs still combine SMT and through hole pcb assembly to achieve both compact size and strong reliability.

What Types of Through-Hole Assembly Services Do We Offer?

A professional through hole pcb assembly service should cover different production needs, from low-volume prototypes to large-scale manufacturing. At EBest Circuit, we provide flexible and scalable solutions to match different project requirements.

  • Manual through hole assembly for complex or low-volume boards
  • Automated through hole assembly for high-volume production
  • Mixed technology assembly (SMT + THT)
  • Wave soldering and selective soldering
  • Full turnkey service including PCB fabrication and component sourcing

By integrating all processes into one workflow, we help reduce lead time and improve overall production efficiency.

Through Hole Assembly Process – Step-by-Step Overview

The through hole assembly process follows a structured workflow, and each stage must be controlled carefully to ensure consistent quality.

1. Component preparation and lead forming, ensuring proper fit for insertion

2. PCB drilling and plating, creating reliable conductive holes

3. Component insertion, either manually or using automated machines

4. Soldering, typically through wave soldering or selective soldering

5. Cleaning, removing flux residues when required

6. Inspection, including AOI, X-ray, and visual checks

7. Functional testing, verifying electrical performance

Each step plays a role in ensuring that the final product meets both mechanical and electrical requirements.

What Equipment Is Used in Through-Hole PCB Assembly?

Modern through hole pcb assembly equipment helps improve efficiency and consistency, especially in large-scale production.

  • Automated insertion machines for axial and radial components
  • Wave soldering systems for high-speed production
  • Selective soldering machines for precision soldering
  • AOI and X-ray systems for quality inspection

With the right equipment, manufacturers can achieve both high yield and stable performance across batches.

Automated Through Hole Assembly vs Manual Assembly – Which to Choose?

Choosing between automated through hole assembly and manual assembly depends on production volume and design complexity.

TypeAutomated Through Hole AssemblyManual Through Hole Assembly
EfficiencyHighLower
CostLower at scaleHigher
FlexibilityLimitedHigh
Best forMass productionPrototypes and complex boards

When Should You Choose Through-Hole PCB Assembly Instead of SMT?

While SMT is efficient for compact designs, there are situations where through hole pcb assembly is the better choice.

  • When components require strong mechanical support
  • When the circuit operates under high current or voltage
  • When the product will face vibration or harsh environments
  • When long-term reliability is more important than size

Understanding these scenarios helps engineers make better design decisions early in the project.

Why Choose EBest Circuit for Through Hole PCB Assembly Service?

Selecting the right manufacturing partner is just as important as choosing the right technology. EBest Circuit offers a complete solution for through hole pcb assembly, backed by strong engineering and manufacturing capabilities.

  • Over 20 years of PCB and PCBA manufacturing experience
  • One-stop service from PCB fabrication to final assembly
  • Certified quality system including ISO9001, ISO13485, IATF16949, and AS9100D
  • Advanced through hole pcb assembly equipment
  • Fast turnaround from prototype to mass production
  • Mixed assembly technology including THT, DIP, manual soldering, wire harness assembly
  • No MOQ, 1 pc available for prototype
  • 1.5 weeks for small orders
  • Offer expedited service for urgent projects
  • Multiply PCB types, including MCPCB, high speed PCB, RF PCB, ceramic PCB, rigid flex pcb…

With a focus on quality and customer support, EBest helps reduce risks and improve project success rates.

Which Industries Use Through-Hole Assembly the Most?

Through hole pcb assembly remains essential in industries where durability and reliability are critical.

  • Industrial control systems
  • Automotive electronics
  • Aerospace and defense
  • Power supply and energy systems
  • Medical equipment

As electronic systems become more complex, these industries continue to rely on through-hole technology for critical components.

Common Challenges in Through Hole PCB Assembly and How to Solve Them

Like any manufacturing process, through hole assembly comes with challenges, but most of them can be addressed with the right approach.

Common challenges include:

  • Inconsistent solder joints
  • Component misalignment
  • High labor cost
  • Difficulty in automation for complex designs

Effective solutions include:

  • Using selective soldering for precision control
  • Optimizing PCB layout for easier insertion
  • Combining SMT and THT technologies
  • Working with experienced manufacturers

By addressing these issues early, manufacturers can improve both yield and reliability.

FAQ About Through-Hole Assembly

What is the difference between through hole pcb assembly and SMT?

Through hole assembly uses inserted leads, while SMT mounts components directly on the surface, resulting in different mechanical strength and application use.

Is through hole assembly still used today?

Yes, it is still widely used in high-reliability applications such as aerospace, industrial systems, and power electronics.

Can through-hole and SMT be combined on one PCB?

Yes, many designs use a mixed assembly approach to balance performance and cost.

What is automated through hole assembly?

It refers to using machines to insert components and improve efficiency in high-volume production.

Ready to Start Your Through-Hole PCB Assembly Project?

If you are looking for a reliable through hole pcb assembly service, EBest Circuit is ready to support your project with strong engineering expertise and fast delivery.

Feel free to contact us at sales@bestpcbs.com to discuss your requirements and get a quick quotation.

You may also like