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Custom GF30 Nylon Machining: Keeping a Thin Mounting Plate Flat

Custom GF30 nylon machining case — thin black mounting plate with screw bosses, shaped cutout, and rectangular window, machined from solid

We machine mounting plates from solid PA66 + 30% glass fiber material according to customer drawings. The plate has uniform thin walls, screw bosses around its perimeter, a shaped cutout at the top, a rectangular window at the bottom, and one central hole. The difficulty lies in the proportions: it’s a large, thin plate made of a material with internal stress, so the whole process of custom GF30 nylon machining is focused on keeping the plate flat.

GF30 nylon is plain nylon mixed with 30% glass fiber. The glass fiber increases the material’s stiffness and dimensional stability. Like all nylon materials, it absorbs moisture from the air and expands slightly after absorbing water.

How We Kept the Plate Flat

The whole machining process was carried out in stages. We did rough machining first, leaving machining allowance on all parts, then took the workpiece off the machine and let it sit for a while. Rough machining releases the internal stress of the material, which causes the plate to warp. It’s better to let this warping happen before finish machining rather than after.

For finish machining, we couldn’t use the standard clamping method. If we only clamp a thin plate at a few points, it will undergo elastic deformation, and bounce back in other places when released. So we made a conformal vacuum fixture — the upper surface of the fixture perfectly matches the underside of the workpiece, pressing the whole surface of the workpiece down. In addition, we fixed the thin perimeter and cutout areas with hot glue, so the edges wouldn’t lift up or chatter when the cutter was cutting the outline.

Coolant was used continuously throughout the machining process. Nylon retains heat easily, and once the plate warms up, it will deform. It’s impossible to machine a flat part from a warm blank.

After the final machining pass, we put the parts into water to soak. Machined nylon will absorb moisture in actual use anyway and change size slightly, so we soak the finished parts first to bring them to a stable state. This way, we don’t ship them dry and avoid the size change happening at the customer’s end.

Project Details

Part type: Custom GF30 Nylon Mounting Plate

Material: PA66 + 30% Glass Fiber (GF30 Nylon)

Machining Process:  CNC Milling

Surface Finish: As-Machined

What PA66 GF30 Is Good For

PA66 with 30% glass fiber is a common type of filled nylon. It’s stiff, dimensionally stable, and reasonably priced, so it’s widely used in many industries. Plain PA66 lacks enough stiffness and creep resistance, and adding glass fiber makes up for these shortcomings. That’s why it’s used to make parts that need to bear loads or keep their shape, such as mounting plates and backplates in control equipment, structural panels in battery and power modules, brackets, gears, pump housings, and fixtures that work in slightly hot environments.

It has good insulation performance, can work continuously at around 120°C, and isn’t easily damaged by oils and fuels. Its disadvantages are also obvious: it absorbs moisture and changes shape a little after absorbing water. It also can’t stand strong acids or long-term contact with hot water. If parts need to work underwater for a long time, PEEK is a better choice instead of nylon.

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Our Manufacturing Capabilities

5-axis CNC milling machine cutting an aluminum block during the manufacturing process.

Capabilities include 3-Axis, 4-Axis, and 5-Axis CNC Milling, as well as CNC Turning operations. Standard materials processed include Aluminum alloys, Stainless Steel, Titanium, etc. and Engineering Plastics. Available secondary operations include Anodizing, Powder Coating, Bead Blasting, and Laser Engraving.

Capacity supports requirements ranging from single-unit Rapid Prototyping to Low-Volume Production runs (1-1,000+ units).

Factory Quality Assurance

A highly accurate ZEISS Coordinate Measuring Machine (CMM) inspecting the internal dimensions and tight tolerances of a custom CNC machined component.

A standardized Quality Management System (QMS) is applied to all manufacturing orders, regardless of part complexity or production volume. The following inspection stages are mandatory for every CNC machining project:

  • Material Verification: Raw material certification (chemical composition and mechanical properties) is verified upon receipt to ensure compliance with material specifications.

  • First Article Inspection (FAI): The first unit from any production run undergoes a full dimensional report to validate the machining setup and programming before volume processing begins.

  • In-Process Monitoring: Periodic checks are conducted during the machining cycle to monitor tool wear and ensure dimensional consistency is maintained throughout the batch.

  • Final Inspection: Completed components undergo a final dimensional and cosmetic verification using CMM (Coordinate Measuring Machine) and calibrated manual instruments prior to packaging.

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Finished CNC machined components securely packaged in custom foam inserts for global shipping.

From CAD to part.

FAQs About CNC Machining Services

No. We support projects of all sizes, from a single prototype unit to low-volume production runs.

Standard lead times are typically 10–15 business days. Expedited services (Rapid Prototyping) can be completed in as little as 3–5 business days, depending on part complexity and material availability.

In most cases, we source materials from our approved suppliers to ensure quality control. However, we can machine customer-supplied materials for specialized alloys or specific requirements upon engineering review.

Unless otherwise specified, our general tolerance standard is ISO 2768-m (±0.125 mm) for metals and ±0.25 mm for plastics. Precision tolerances ±0.005 mm are achievable but must be explicitly stated in 2D technical drawings.

Our facility can accommodate parts up to 4000 x 1500 x 600 mm for milling and Ø200 mm x 500 mm for turning.

Yes. We can install inserts (e.g., Helicoils, PEM fasteners) and perform basic mechanical assembly of machined components prior to shipment.

To provide an accurate quote, we require a 3D CAD file (.step). If the part has threaded holes, tight tolerances, or specific surface finish requirements, a 2D PDF drawing must also be provided.

Not a problem at all. If you don’t have a 3D design, simply share your concept or requirements with us. We work with experienced partnered product designers who can help convert your ideas, hand-drawn sketches, or reference images into professional, manufacturing-ready 3D models.

Please note that 3D modeling services are subject to an additional design fee based on part complexity.

Absolutely. We offer full reverse engineering services for existing parts. Simply mail us your sample, and our engineering team will take care of the rest — from precise measurement and 3D modeling to final CNC production.

We take IP protection seriously. All files are stored securely, and we are willing to sign a Non-Disclosure Agreement (NDA) prior to receiving your data.

Yes. We can provide material certificates (COA) and dimensional inspection reports upon request. Please specify this requirement when placing your order.

We ship globally using major carriers (DHL, FedEx, UPS).

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