Insufficient Solder Joints: Causes, Detection and Prevention
An insufficient solder joint can pass electrical test and still fail in the field. Here is what starves a joint of solder, how to detect it, and how to prevent it.
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A lifted lead can pass electrical test and fail in the field. Here is what causes lifted leads and coplanarity defects, and why 3D AOI measures what 2D has to infer.
A lifted lead is a component lead, typically a gull-wing lead on a QFP, SOIC or connector, that sits above its pad instead of resting in the solder, leaving an open or a weak, partly wetted joint. Coplanarity describes how closely all of a component's leads lie in one plane, and a coplanarity defect means one or more leads deviate far enough that they cannot all reach their pads at once.
Some lifted leads arrive on the part; others are created on the line by warpage or poor seating. The common causes are:
A lifted lead often shows as a starved joint, so this defect overlaps with insufficient solder.
Manual inspection needs a side view under magnification, which is slow on a board full of fine-pitch parts. SPI sees the paste deficit that makes a lift worse, but not the lead itself.
2D AOI judges a lifted lead from the shape and shading of the heel fillet in a top-down image. A small lift can look almost identical to a good joint from above, which is the classic weakness of 2D inspection for this defect. A lifted lead can also still touch its pad intermittently and pass electrical test, then fail in the field.
3D AOI changes the problem from interpreting an image to measuring a height. It measures each lead and the component body relative to the board, so a lifted lead, a tilted body or a coplanarity defect becomes a number checked against a limit. AXI is used for hidden joints, but gull-wing leads are visible optically.
In DaoAI's inspection coverage, item 07, Lead Condition, covers lifted, bent, damaged, missing or unsoldered leads. Item 04, Component Height & Coplanarity, uses 3D AOI to measure component height and detect lifted or tilted bodies and coplanarity defects.
The DaoAI P5 is the inline 3D machine for this work and is available for delivery now, with the P5D as its dual-track version. Its key 3D figures are below; specifications are reference values, not guaranteed limits.
| P5 specification | Reference value |
|---|---|
| 3D sensor | Four Scheimpflug structured-light projection units, one per direction |
| Height accuracy | ≤ 6 µm (≈ 0.236 mil) with the calibration tool |
| Height measurement range | 25 mm (≈ 0.984 in) |
| Camera and optical resolution | 21 MP, 10 µm (≈ 0.394 mil) |
| Smallest component | 0201 chips (imperial sizes; 0603 metric) |
| Max board size | 500 × 600 mm (≈ 19.69 × 23.62 in), single track |
Projecting from four directions reduces the shadowed areas a single projector leaves behind tall parts, which matters on connectors and large packages where lifted leads are most common.
| Cause | Prevention |
|---|---|
| Bent leads from handling | Keep fine-pitch parts in trays or tubes, and handle and rework them with suitable tools. |
| Supplier coplanarity | Check incoming lots against the datasheet coplanarity limit (often around 0.1 mm / 4 mil for fine-pitch gull-wing parts). |
| Low paste deposit | Monitor paste height in SPI on fine-pitch rows; use a step-up stencil where the part needs more margin. |
| Board warpage in reflow | Support large or thin boards in the oven, and bake boards that exceed their floor life. |
| Wicking | Add a soak so leads and pads reach temperature together. |
| Poor seating at placement | Verify placement force and Z height for each fine-pitch package. |
Have a connector or QFP that keeps escaping 2D inspection? Send us one of your own boards and we will test it for you, free of charge.
Coplanarity is how closely all the leads or terminations of a component lie in one plane. It is usually specified as the maximum distance between the lowest and highest lead, and parts outside the limit risk lifted leads after reflow.
2D AOI can detect lifts large enough to change the fillet's appearance, but small lifts can look like good joints from above. 3D AOI measures lead height directly, so it is the more reliable method.
Not always, because a lead that touches its pad without a proper joint can still conduct during test. These joints can then fail intermittently in the field.
Fine-pitch gull-wing packages such as QFPs and SOICs, and long connectors, are the most prone. Their thin leads bend easily, and board warpage affects their corner leads most.
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