Skip to content


Certifications ISO 13485:2016 | AS9100D | ITAR | FDA Registered | CAGE Code 5TTR7 


Brass-1

What to know about CNC machining brass?

Brass is one of the easiest metals to machine, making it great for CNC machining. Machined brass components are durable, corrosion-resistant, electrically conductive, and strong.

What is brass CNC machining?

Brass CNC machining is the computer-controlled cutting, drilling, milling, turning, and threading of brass stock into precise finished parts. It is a subtractive process: the machine follows digital CAD/CAM instructions to remove material from a brass bar, plate, or billet.

Brass is typically chosen when a design requires a combination of machinability, corrosion resistance, electrical conductivity, and dimensional stability that aluminum or steel cannot simultaneously provide.

In many precision assemblies, brass components serve functional roles where friction behavior, wear characteristics, or electrical performance matter more than strength‑to‑weight ratio.

Brass is typically selected for a CNC machining project when the following are needed:

  • Excellent machinability
  • Good corrosion resistance
  • Stable dimensions with low residual stress
  • Electrical and thermal conductivity

Download the brass material data sheet

What are the advantages of CNC machining brass?

CNC machining brass delivers excellent machinability, stable dimensions, low tool wear, and high-quality surface finishes straight from the machine.

The main advantages include:

  • Excellent machinability
  • Lower tool wear
  • Supports tight tolerances
  • Smooth surface finish
  • Corrosion resistance
  • Electrical conductivity

What are the challenges of CNC machining brass?

While brass is generally considered an easy metal to machine, there are several challenges that manufacturers have to keep in mind.

The main challenges include:

  • Burrs on fine features
  • Chip management
  • Material cost
  • Alloy-to-alloy variation

These challenges are important to note because brass is a significantly more expensive material than aluminum or steel, so unplanned costs can add up if there’s significant scrap or slower cycle times are needed.

What are the most common brass grades?

The brass family includes dozens of standardized alloys, but C260 (Cartridge Brass) and C360 (Free‑Machining Brass) account for the vast majority of CNC‑machined brass parts.

Of the two most popular alloys, C360 Brass is most widely used, as it is the easiest to machine, cuts fast, and has excellent surface finish.

These alloys differ significantly in composition, mechanical properties, and machining behavior, and they should not be treated interchangeably from a DFM perspective. The most important distinction for machining is lead content.

Leaded brasses, particularly C360, are engineered specifically for machining efficiency. Non‑leaded brasses like C260 sacrifice machinability for improved ductility, corrosion resistance, or formability. Selecting the wrong alloy for a given geometry often results in unnecessary cycle time, burr formation, or surface finish challenges.

Grade Tensile (KSI) Yield (KSI) Hardness (HB) Machinability Weldability Corrosion Resistance
C360 45 17 60 Excellent Poor Good
C260 50 30 70 Moderate Good Good
C272 50 24 70 Moderate Good Good
C330 52 20 75 Good Moderate Good
C385 60 20 65 Excellent Poor Good
C464 60 27 60 Moderate Good Excellent
C693 75 40 75 Good Good Excellent

*Please note that the mechanical properties are estimates and should only be used to inform research

How to pick the right brass grade?

C360 is the most commonly machined brass grade.It is widely used because it has excellent chip-breaking and a 100% relative machinability rating, making it ideal for high-volume turning, drilling, milling, and threading.

While C360 brass is the most widely used, it's still important to consider a part's end-use application and define the primary demand or limiting factor.

  • Prioritizing fast cycle time and low machining cost? C360
  • Need a lead-free grade? C693
  • Working with a corrosive environment? C464
  • Forming performance and ductility outweigh machining speed? C260

What are the best surface finish options for brass?

Brass can take media blasting, electroplating, powder coating, bead blasting, and sanding as a surface finish option.

Mechanical polishing is the most widely used surface finishing method for brass components because of the material’s relative low hardness, fine grain structure, and ductility.

Certain free‑machining brasses produce extremely clean cuts with minimal burrs, enabling sharp features and fine threads without secondary deburring operations. This makes brass attractive for high‑precision, customer‑facing, or sealing‑critical components

Important surface finish considerations:

  • Define Ra only where it affects fit, sealing, wear, or appearance to avoid unnecessary cost and machining time
  • Account for material removal from finishing operations
  • Design finishes with downstream processes in mind (e.g., plating, coating adhesion)
  • Polished brass readily oxidizes unless protected; select a finishing method based on the application's environment