Cable Assembly to PCB: Crimp, Strain Relief and Retention
A cable assembly is where a board meets the outside world, and it is where most of the field failures that are blamed on the board actually happen. The crimp, the strain relief and the connector retention each have a defined requirement that is often not written down.
What the Assembly Has to Do
The assembly carries current, and it holds the conductors in position so that the current path is not disturbed by vibration, handling or repeated mating.
Those two functions are separate, and a design that satisfies one usually compromises the other. A crimp that is tight enough for the current may be too stiff for the strain relief, and a flexible assembly may have a joint that loosens.
Crimp Terminations
A crimp forms a cold weld between the conductor and the terminal when the correct tool and the correct wire are used together. The result is gas tight and it does not depend on solder.
The parameters are the strip length, the insulation support and the crimp height. All three should be verified by a pull test and a cross section, because a crimp that looks correct can be under or over compressed. Our joint failure notes describe the defects that show up later.
Soldered Terminations
A soldered termination is used where the connector is designed for it or where the volume does not justify a crimp tool. It requires strain relief because the solder wicks into the strands and creates a rigid point where the wire will flex and break.
The wicking can be limited by the termination design and by the soldering method, but never eliminated, so the design should assume the wire will fail at the solder boundary unless it is supported.

Strain Relief and Routing
Strain relief transfers the load from the termination to the structure. It can be a clamp, a tie, a moulded feature or a grommet, and it must be positioned so that the wire cannot be pulled directly at the termination.
The routing radius matters as well. Below the minimum bend radius the conductor and the insulation are both stressed, and the damage appears as an intermittent open rather than as a break. Our flex notes describe the same limit for a flexible circuit.
Connector Retention
The connector must stay mated under the vibration the product will see. A friction fit alone is often insufficient, and the retention feature is a latch, a screw, a clip or a tie.
Where the connector is attached to the board rather than to the chassis, the load passes through the solder joints. A connector that carries the cable weight without a mechanical anchor will crack its joints over time. Our panel mount notes, where published, describe the transition from cable to board.
Testing the Assembly
The tests are a pull test on the crimp, a continuity check, a hi-pot where the insulation matters, and a vibration or flex test on the finished assembly.
The tests should be performed on the production assembly rather than on a hand made sample, because the difference between the two is usually in the tooling and the strip length. Our design release notes describe where the results are recorded.
Documentation
The assembly drawing should show the wire type, the length, the strip length, the terminal, the seal, the routing and the retention method. A note that says only the connector part number leaves the rest to the operator.
Where the assembly is bought in, the same drawing becomes the purchase specification, and it should be specific enough that two suppliers produce interchangeable parts. Our component selection notes describe the same discipline.
Process Control and Verification
On a design of this kind, strain relief is the item that decides how the rest of the board is arranged. Where a value sits close to a process limit, the drawing should say so, since the shop can then open the process window rather than working to a nominal figure that carries no tolerance. A stack-up that is drawn rather than described removes most of the ambiguity from a quotation, and it lets the fabricator price the board against the dielectric and copper weights that will actually be used.
Where the requirement is not written down, the shop supplies its own default, and the default is chosen for the process rather than for the design. The measurements that matter are the repeatable ones: conductor width and spacing, annular ring, finished hole size, plating thickness and surface finish are all verifiable on a coupon that travels with the panel.
Running a first article through the same checks as the production panel confirms that the two agree, and that comparison is the cheapest form of process control available at prototype stage. Keeping a sample from the panel turns a dispute into a measurement, because the same coupon can be re-examined by both parties without rebuilding the batch.
Reviewing the design before the data is released is cheaper than correcting it after the panel is in the tank, because every step downstream inherits the decision made at the front end.
Process Control and Verification
On a design of this kind, strain relief is the item that decides how the rest of the board is arranged. Where a value sits close to a process limit, the drawing should say so, since the shop can then open the process window rather than working to a nominal figure that carries no tolerance. A stack-up that is drawn rather than described removes most of the ambiguity from a quotation, and it lets the fabricator price the board against the dielectric and copper weights that will actually be used.
Where the requirement is not written down, the shop supplies its own default, and the default is chosen for the process rather than for the design. The measurements that matter are the repeatable ones: conductor width and spacing, annular ring, finished hole size, plating thickness and surface finish are all verifiable on a coupon that travels with the panel.
Process Control and Verification
On a design of this kind, strain relief is the item that decides how the rest of the board is arranged. Where a value sits close to a process limit, the drawing should say so, since the shop can then open the process window rather than working to a nominal figure that carries no tolerance. A stack-up that is drawn rather than described removes most of the ambiguity from a quotation, and it lets the fabricator price the board against the dielectric and copper weights that will actually be used.
A first article check confirms that the process and the drawing agree on the points listed above, and that the coupon data supports the values used in the design.

Where a measurement falls outside the expected window, the sample is retained so that the cause can be established before the balance of the batch is released.
FAQ
Can a soldered joint replace a crimp? Only where the connector is designed for soldering. A crimp terminal soldered instead is usually a repair, and it should be treated as one.
Does a longer wire reduce stress? It gives more room for the routing and the strain relief, which helps, but the length is a packaging decision and it must be fixed before the assembly is qualified.
What does gopcb provide for cable assemblies? We provide terminal and wire selection, crimp height and pull test verification with cross sections, strain relief and routing definition, connector retention design, assembly level vibration and continuity testing, and drawings that specify the assembly rather than only the connector.



