Water Jet Cutting

Water jet cutting is a manufacturing process that uses a high-pressure stream of water to cut material. For harder materials, abrasive particles are added to the stream. Because the cut produces little heat, it can shape metals, plastics, composites and stone without significantly affecting the material around the cut.

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How the Process Works

1. Design review

We review your component specifications and CAD drawings, to understand the part's outline, holes and dimensions.

2. Material Selection

We help you choose the right material, sheet thickness, quantity, and any required tolerances.

3. Precision Cutting

The CNC water jet cutting machine will be programmed to follow the path outlined in the CAD drawing.

4. Inspection and Certification

Your component(s) are then fully inspected and sent to you with a CoC.

  • When would you choose this method?

    You would choose water jet cutting when you need to cut a shape from a flat sheet or plate without heating the material. For a black polymer part, this is useful if a laser might melt or alter the cut edge. It also suits intricate outlines, thicker stock and small batches that do not justify a custom mold.

    Water jets are typically used to cut flat parts or profiles from sheet and plate material. Examples include:

    • Polymer  gaskets, seals and pads
    • Covers, panels and protective plates
    • Brackets and mounting plates cut from metal
    • Composite panels and structural blanks
    • Stone or ceramic tiles with shaped edges or openings
  • Why choose this method?

    Choose water jet cutting when you need a precise shape cut from sheet material without heat. It can cut polymers, rubber, composites and metals without melting the edge, and it is useful for prototypes or small batches because no custom mold is needed. It works best for outlines and holes that pass all the way through the material. 

    In comparison to other manufacturing methods, it is ideal for designs that do not require a mold. Water jet cutting is ideal for simpler designs that do not require depth. It is often used as an initial step for component production. 

  • The benefits of this method:

    • No heat damage: The cut does not melt or burn heat-sensitive polymers.
    • No custom mold: Useful for prototypes, one-off parts and small batches.
    • Flexible shapes: Cuts detailed outlines and through-holes from sheet material.
    • Wide material range: Works with polymers, rubber, composites and metals.
    • Efficient use of sheet: Multiple parts can be arranged closely together for cutting. 

Limitations of Water Jet Cutting 

Water jet cutting is mainly suited to cutting outlines and through-holes, so it cannot create pockets, threads or other features within a part without additional machining. Thick material may take longer to cut and can have a less accurate or more tapered edge. Some materials may also need cleaning or drying after cutting, and abrasive cutting adds consumable costs.

Which materials can be Water Jet Cut?

Suitability depends on a component's material

Can be water jet cut

Polyacetal (POM), polyether ether ketone (PEEK), polyamide (PA), polyetherimide (PEI), polycarbonate (PC), polyphenylene sulphide (PPS), polyimide (PI), polyvinylidene fluoride (PVDF), polyvinyl chloride (PVC), polyethylene (PE), polypropylene (PP), polytetrafluoroethylene (PTFE), perfluoroalkoxy (PFA)

Unfilled plastic sheet is generally well suited to water jet cutting. The water cut process introduces no heat that could melt the edge. Thin or flexible stock may need extra support.

PEEK GF30, PA66 GF60, RENY MXD6

Their glass reinforcement calls for abrasive water jet cutting and a trial cut to check the edge and any exposed fibers.

Ceramic alumina (Al₂O₃), ceramic zirconia (ZrO₂)

Both can be abrasive-water-jet cut, but brittle ceramics need suitable support and a careful start to the cut to limit cracking or chipping.

Cannot be water jet cut