Mechanical & Mechatronic Design

Mechanical design for precision scientific instruments

We develop the mechanical architecture needed to turn demanding assays and workflows into reliable instruments, integrating motion, thermal control, fluidics, optics, sensors, structures, and serviceability as one machine.

Capabilities

From precision mechanisms to complete instrument integration

Motion Systems

Design XY/Z motion, stages, actuators, bearings, encoders, transmission elements, stiffness, dynamics, homing, repeatability, and positioning architectures.

Thermal Systems

Engineer heating, cooling, thermal cycling, uniformity, insulation, heat paths, sensors, interfaces, and the physical plant needed for stable control.

Fluidics & Dispensing

Integrate pumps, valves, tubing, manifolds, syringes, pressure paths, precision dispensing, wash paths, and disposable interfaces into the instrument.

Optics & Sensor Integration

Create stable mechanical interfaces for imaging, illumination, detectors, optical paths, alignment, focus, vibration control, and calibration.

Structures, Enclosures & Service

Design frames, covers, access points, cable routing, safety features, serviceability, ergonomic interfaces, and packaging around the working machine.

Tolerance, GD&T & DFM

Use tolerance analysis, GD&T, materials, manufacturing processes, assembly strategy, and DFM to preserve performance from prototype through production.

Machine-level integration

Precision comes from the whole mechanical system, not one component.

Motion accuracy, thermal stability, fluidic performance, optical alignment, structural stiffness, and manufacturability interact. We design those interactions deliberately so the instrument performs outside the CAD model and across real builds.

Paska Scientific

Need mechanical design for a complex instrument?

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