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Precision Swiss CNC machined titanium medical screw Swiss turned micro brass electrical connector pins
Built for Palo Alto Engineers

Swiss CNC Machining
in Palo Alto, CA

Palo Alto engineering runs on institutions: Stanford labs prototyping surgical robots, SLAC building detector hardware, Page Mill Road startups racing a funding clock. All of them eventually need a turned part smaller than a pencil, held to a tenth. RivCut Swiss machines bone screws, contact pins, luer fittings and slender shafts on sliding headstock lathes across the bay in Union City, on bar stock from 0.020 to 1.50 inches, with no minimum order.

Upload 3D CAD files or 2D prints for immediate pricing & guide-bushing DFM review.

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What Is Swiss CNC Machining?

Swiss CNC machining (also known as Swiss screw machining or sliding headstock turning) feeds bar stock through a stationary guide bushing directly adjacent to the cutting tool. Because the material is supported right where the cut happens, deflection and vibration are eliminated — allowing ultra-tight tolerances, micro features, and length-to-diameter aspect ratios over 20:1 that conventional CNC lathes cannot achieve.

1

Bar Stock Feeds Through Guide Bushing

The raw bar feeds through a carbide-lined guide bushing, providing zero-clearance support right next to the cutting insert.

2

Sliding Headstock Moves Along Z-Axis

Instead of moving the cutting tool along the part, the headstock advances the bar past fixed gang tooling, maintaining maximum rigidity.

3

Live Tooling & Sub-Spindle Dual Machining

Cross-milling, axial drilling, threads, and back-side features are completed in a single setup before parting off the finished part.

Where Palo Alto Institutions Meet Micro Turning

Talent density is the real story of Palo Alto manufacturing demand. Stanford Health Care and the medical device companies of Stanford Research Park generate steady work in surgical instruments and implantables, Varian-heritage radiation therapy engineering left behind a culture of sub-thousandth beam hardware, and Sand Hill Road keeps funding medtech and hardware startups whose first hundred parts decide their next round. The parts these teams spec, cannulated screws, electrode bodies, connector pins, dosing fittings, are exactly the geometry a Swiss lathe with a guide bushing was built for.

The research side pulls in the same direction. SLAC National Accelerator Laboratory fabricates flight-grade detectors and vacuum systems whose standoffs, feedthrough pins and precision spacers demand documented material chain of custody, and the Stanford Nanofabrication Facility runs cleanroom fixturing that cannot tolerate burrs or embedded contamination. Ten minutes south, Lockheed Martin Space in Sunnyvale anchors a satellite corridor that consumes turned flight hardware by the thousand.

Geography helps too. Our shop in Union City sits about 25 minutes from Page Mill Road across the Dumbarton Bridge, so ground shipments to Palo Alto arrive in a day and an engineer who wants to talk over a first article can do it without booking a flight. Standard runs go from one prototype to 100,000 plus bar-fed pieces with live tooling and sub-spindle work finishing parts in a single setup.

Engineered for Micro-Precision & High Volume

From single medical prototypes to automated 100,000+ piece production runs — built for zero defect manufacturing.

±0.0001" Micro Tolerance

Holding ultra-precise concentricity, diameter, and thread pitch tolerances on slender pins, shafts, and medical implants where standard lathes fail.

Single-Setup Completion

Multi-axis live tooling and sub-spindles handle turning, off-center milling, cross-drilling, hex broaching, and thread whirling with zero secondary setups.

Superior Ra 16 Surface Finish

Rigid guide bushing support eliminates chatter and micro-vibration, consistently producing mirror-smooth Ra 16 µin (0.4 µm) turned surfaces as-machined.

Lights-Out Production Savings

Automatic bar feeders and continuous chip management allow 24/7 un-attended operation, dramatically lowering unit costs for mid-to-high volume orders.

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Swiss Machining Services Suite

Sliding headstock capabilities engineered for challenging small-diameter components.

Micro-Miniature Turning

Machining small-diameter components down to 0.020" (0.5 mm) with tight features, internal bores, and miniature threads for medical instruments and micro-valves.

Down to 0.5 mm bar

High L/D Ratio Slender Shafts

Turning long, slender shafts and pins with length-to-diameter ratios up to 20:1 without chatter, taper, or deflection.

L/D up to 20:1

Multi-Axis Live Tooling

Up to 12 axes with motorized driven tools for off-center milling, keyways, cross-drilled passages, hex flats, and helical thread whirling.

Up to 12-axis live

Dual-Spindle Sub-Machining

Synchronized pick-off sub-spindle finishes the back end of the part—chamfering, counterboring, and tapping—delivering 100% complete parts off the line.

100% finished parts

Medical & Implant Machining

Precision turning of Titanium Ti-6Al-4V ELI bone screws, dental implant posts, orthopedic pins, and endoscope tips with ISO 13485 quality control.

Titanium & 316L medical

High-Volume Bar Fed Runs

Automated 12ft bar loaders, high-pressure coolant (2,000 PSI), and automated part catchers support fast production runs from 500 to 100,000+ pieces.

500 to 100,000+ pcs
Swiss CNC turned titanium medical screw and brass connector pins
Optical & CMM Verified — 100% Feature Pass

Titanium Grade 5 Dental Implant Post & Bone Screw

Swiss turned for a medical device manufacturer requiring intricate thread geometry, micro-cannulation through-holes, and tight hex drive features. Machined in a single operation with zero hand deburring required.

±0.00015"
Outer diameter
tolerance held
12 Ra
As-machined thread
surface finish
5 Days
First article delivery
turnaround
0 Defect
Lot pass rate on
2,500-piece run
  • Optical comparator & CMM dimensional inspection report
  • Mill test certs (EN 10204 3.1) with heat lot traceability
  • Passivation certs per ASTM A967 / ASTM F86
  • Certificate of Conformance per medical purchase order

Swiss Turning vs. Standard Lathe vs. CNC Milling

Choose the right manufacturing method based on geometry, tolerances, and batch size.

Feature / Attribute Swiss CNC Machining Standard CNC Turning 5-Axis CNC Milling
Primary Geometry Slender cylindrical, micro pins, threaded shafts Bushing, disc, standard length shafts Prismatic, complex 3D contoured blocks
Max L/D Ratio (No Tailstock) 20:1 + (Zero deflection) 3:1 max without tailstock N/A (Workpiece clamped)
Achievable Tolerance ±0.0001 in (±0.0025 mm) ±0.0005 in (±0.012 mm) ±0.0002 in (±0.005 mm)
As-Machined Surface Finish Ra 16 µin (0.4 µm) Ra 32 µin (0.8 µm) Ra 32–63 µin (0.8–1.6 µm)
Bar Stock Size Range 0.020" to 1.50" (0.5 to 38 mm) 0.25" to 12.0" (6 to 300 mm) Up to 24" x 18" x 12" block
Best For Batch Sizes 10 to 100,000+ pieces 1 to 5,000+ pieces 1 to 1,000 pieces

Stocked Materials for Swiss Turning

Precision ground round bar stock in metals, medical alloys, and engineering plastics.

Titanium Alloys

Ti-6Al-4V (Grade 5), Ti-6Al-4V ELI (Grade 23), Commercially Pure Titanium (Grade 2). Ideal for biocompatible implants, dental screws, and aerospace pins.

Stainless Steels

303, 304/304L, 316/316L, 17-4 PH, 440C, Custom 455. Excellent corrosion resistance, high tensile strength, and medical compliance.

Copper & Brass Alloys

C36000 Free-Cutting Brass, C17200 Beryllium Copper, Tellurium Copper C14500. Perfect for gold-plated electrical contacts and probe tips.

Specialty & Superalloys

Inconel 718, Kovar, Nitronic 60, Hastelloy C-276, Nitinol. High-temperature and controlled-expansion applications for aerospace and energy.

Medical Plastics

PEEK (Unfilled & 30% Glass Filled), Delrin (POM-H), PTFE (Teflon), Ultem 1000, Torlon 4203. Biocompatible, autoclavable, and dimensionally stable.

Alloy & Tool Steels

4140, 4340, A2, D2, M2 tool steel. High wear resistance and toughness after vacuum heat treating for mechanical shafts and dowels.

DFM Tips for Swiss Turned Parts

Optimize your 3D CAD models and drawings for maximum Swiss machining efficiency.

1. Precision Ground Bar Stock

Because the bar slides through a guide bushing, use h8 diameter tolerance precision ground bar stock to prevent binding or loose play.

2. Thread Relief Grooves

Provide a thread relief necking groove at thread shoulders (minimum 1.5x thread pitch) to allow clean single-point thread tool retraction.

3. Corner Radii & Chamfers

Specify internal corner radii of at least R 0.010" (0.25 mm) and external 45° lead-in chamfers to ease automated tool engagement and deburring.

Where Swiss Machining Fits in Palo Alto

From prototypes to bar-fed production, this is Palo Alto's Swiss workload.

Medical Devices & Implants

Palo Alto medtech spans Stanford Health Care clinical programs, Varian-heritage radiation therapy engineering now under Siemens Healthineers and a dense layer of Sand Hill Road funded device startups. Their turned parts are classic Swiss work: bone screws and cannulated pins in Ti-6Al-4V, luer fittings and electrode bodies in 316L and PEEK, collimator and positioning hardware held to sub-thousandth accuracy. RivCut delivers them with full material traceability and first article reports, which keeps a 510(k) file clean from the first prototype lot.

Typical Parts
bone screwscannulated pinsluer fittingselectrode bodiesdental implant blanksPEEK insulators
Local Anchors
Stanford Health CareVarian Medical (Siemens Healthineers)Sand Hill Road medtech startups

Aerospace & Research Instrumentation

SLAC National Accelerator Laboratory builds detector systems and accelerator hardware for NASA and DOE missions, and the satellite offices of Stanford Research Park feed programs like Lockheed Martin Space just down US-101. That world buys small turned parts in volume: connector pins, vacuum feedthrough components, precision standoffs, sensor housings and fuel system fittings in 303 stainless, 6061 and titanium. Guide bushing support lets us hold concentricity to 0.0002 inches TIR on slender geometry past 20 to 1 length over diameter, with heat lot certs and inspection reports attached to every shipment.

Typical Parts
connector pinsprecision standoffsvacuum feedthrough componentssensor housingsfuel fittings
Local Anchors
SLAC National Accelerator LaboratoryLockheed Martin SpaceStanford Research Park

Semiconductor & Hardware Startups

Between the Stanford Nanofabrication Facility, HP Inc. legacy imaging engineering and the Page Mill Road startup corridor, Palo Alto buys a surprising volume of micro turned hardware: probe station contact pins, wafer fixture dowels, ferrules, nozzle bodies and locating pins for cleanroom tooling. These jobs reward Swiss machining because Ra 16 microinch finishes come off the bar as machined, no secondary grinding, and contamination-sensitive parts ship cleaned and bagged for cleanroom entry. Startups iterating weekly get 5 to 10 day standard turns and pricing that drops steeply once a design stabilizes into bar-fed production.

Typical Parts
contact pinswafer fixture dowelsferrulesnozzle bodieslocating pins
Local Anchors
Stanford Nanofabrication FacilityHP Inc.Page Mill Road
Insider tip: If your part will ever enter a cleanroom at SLAC or the Stanford Nanofabrication Facility, say so on the RFQ. Cleanroom-bound parts get ultrasonic cleaning and contamination-controlled packaging quoted up front, which is far cheaper than re-cleaning a lot that arrived in standard oiled bags.

What Palo Alto Engineers Ask Us

Everything Palo Alto buyers ask before the first PO.

Yes. We turn bone screws, cannulated pins and electrode bodies in Ti-6Al-4V, 316L and PEEK with tolerances to ±0.0001 inches and full material traceability. Certs and first article inspection reports ship with the parts, so documentation for a regulatory submission starts clean at prototype one.
Our shop is in Union City, roughly 25 minutes across the Dumbarton Bridge, so ground delivery is next business day and local pickup or courier is practical for urgent lots. Standard machining runs 5 to 10 business days depending on material and quantity, with expedite available when a build or a demo cannot slip.
Often, yes. SLAC detector work carries DOE chain-of-custody expectations and satellite work routed through Palo Alto engineering offices frequently requires ITAR-aware handling. Flag the end use on your RFQ and we attach heat lot certs, dimensional reports and the right compliance documentation from the first quote.
No minimum. We run single prototypes for Stanford lab spinouts and Sand Hill Road funded teams, then scale the same part number into bar-fed runs of 500 to 100,000 plus pieces. Live tooling and sub-spindle work mean most parts complete in one setup, so per-piece price falls quickly with volume.
Diameters to ±0.0001 inches, concentricity to 0.0002 inches TIR and surface finishes near Ra 16 microinches as machined. The guide bushing supports the bar at the cutting point, so slender shafts beyond 20 to 1 length over diameter come off straight, which matters for probe pins, cannulated instruments and sensor stems alike.
Swiss CNC machining uses a sliding headstock lathe with a guide bushing. The bar stock feeds through the guide bushing past the cutting tool, providing rigid support directly next to the cut. This eliminates bar deflection and allows ultra-precise turning of long, thin or micro parts down to ±0.0001 inch tolerance.
We machine bar diameters from 0.020 in (0.5 mm) up to 1.50 in (38 mm). We specialize in micro-miniature parts, long slender shafts, medical bone screws, electrical contacts and valve spools.

Swiss Precision, Delivered to Palo Alto

From first article to bar-fed production, quoting for Palo Alto starts with one CAD upload.

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