| 1 | Bead Media Diameter | 0.1–3.0 mm Smaller media generally supports finer grinding; larger media provides higher impact energy for coarse feed. | Bead size influences stress intensity, product fineness, flow resistance, separation requirements, and media wear. | Request recommended bead size for the target particle-size distribution, feed viscosity, and solids concentration. Confirm the mill can operate safely with the selected diameter. |
| 2 | Chamber Media Fill | 50–90% by chamber volume A common starting range is approximately 70–85%, subject to process trials. | Fill level affects the number of grinding contacts, residence time, power demand, heat generation, and product throughput. | Confirm whether the stated percentage refers to settled media volume, working volume, or total chamber volume. Ask for the recommended fill range for continuous operation. |
| 3 | Target Particle Size | Define both the median size and the upper-size limit, such as D50 and D90/D99. Submicron targets typically require fine media and controlled cooling. | A single “average particle size” does not show oversize particles, agglomerates, or the width of the final distribution. | Specify the measurement method, sample preparation, and acceptance limits. Request test data using the same material and formulation type. |
| 4 | Mill Chamber Material | Common wear-resistant choices include ceramic linings, hardened steel, and corrosion-resistant metal alloys. | Chamber chemistry and hardness affect contamination risk, corrosion resistance, service life, and compatibility with abrasive solids. | Verify material composition, hardness or wear data, chemical compatibility, and whether the chamber can be inspected or replaced without changing the complete machine. |
| 5 | Separator and Screen Gap | The separation system must retain the selected media while allowing product to pass. For fine media, the effective opening must be smaller than the bead diameter. | Separator design determines allowable bead size, flow stability, clogging tendency, media loss, and achievable product fineness. | Ask for the minimum approved bead size, separator open area, screen or gap construction, cleaning method, and performance data at the intended viscosity. |
| 6 | Agitator Tip Speed | Many laboratory and production bead mills operate across a broad range of roughly 5–20 m/s, depending on design and application. | Tip speed affects stress intensity, throughput, particle-size reduction rate, media wear, and temperature rise. | Compare tip speed at the actual agitator diameter and rotational speed. Confirm whether the quoted value is maximum speed or the recommended process range. |
| 7 | Cooling Capacity | For temperature-sensitive products, specify the inlet temperature, maximum outlet temperature, cooling-fluid temperature, and heat-removal capacity in kW. | Grinding converts mechanical energy into heat. Excess temperature can reduce product quality, change viscosity, or accelerate solvent evaporation. | Request a heat-balance or trial result at the intended power load and flow rate. Confirm cooling-jacket pressure, connections, and allowable coolant type. |
| 8 | Product Flow and Residence Time | Define the operating range in L/h or kg/h. Residence time depends on chamber working volume and actual product flow. | Higher flow can increase capacity but may reduce the energy applied per unit of product. Lower flow can improve fineness while increasing heat exposure. | Request capacity data at the target viscosity, solids content, bead fill, and fineness. Confirm whether the values are laboratory results or guaranteed production rates. |
| 9 | Drive Power and Energy Use | Compare motor power in kW together with specific energy consumption in kWh/t or kWh/kg. | Motor rating alone does not demonstrate efficiency. Specific energy links power consumption with actual throughput and achieved particle size. | Require test conditions, absorbed power, product flow, media type, and final particle-size data. Check electrical frequency, voltage, efficiency class, and control-panel requirements. |
| 10 | Hygiene, Safety, and Export Readiness | Confirm closed processing, leakage control, guarding, emergency stop functions, pressure protection, drainability, and documentation for the destination market. | International installations may require different electrical, pressure, workplace-safety, chemical-handling, and documentation requirements. | Verify operating manuals, spare-parts lists, electrical diagrams, material certificates where required, conformity documentation, packing specifications, and remote-service support. |