DXNest Motion is browser-based kinematics software for constructing, simulating, and analysing planar mechanisms — linkages, sliders, gears, racks, eccentric drives, rollers, and rolling segments. A mechanism is built on an engineering canvas, solved over its full input cycle, inspected as trajectories and motion curves, and exported as drawings or calculation data, with nothing to install.
It is the second product of DXNest and the direct commercial successor to a decade of mechanism calculation software written for die-cutting-press research. The companion product, DXNest Fabrication, covers CAD/CAM production preparation.
What it does
- Builds planar mechanisms from links, revolute pairs, one- and two-link slider groups, and pivoted slotted-link mechanisms.
- Models multi-wheel external gear trains, internal gears and gear sectors, fixed and driven racks, eccentric drives, roller contacts, and rolling pressing segments.
- Solves the complete input cycle with a constraint solver and animates every solved position.
- Calculates displacement, velocity, and acceleration for points, links, sliders, gears, segments, and roller contacts.
- Overlays calculated curves from several mechanisms open in different tabs for direct comparison.
- Exports project data and results as JSON, CSV, SVG, DXF, and XLSX, including per-object cycle tables and charts.
Why it exists
The kinematic comparison of drive mechanisms that underpins this line of research — wedging drives, two-slider layouts, additional driven cranks, and double-wedging mechanisms — previously required custom desktop programs, Mathcad models, and SolidWorks Motion studies stitched together by hand. DXNest Motion collapses that workflow into one browser workspace, so a mechanism concept can be dimensioned, solved, compared against alternatives, and exported into engineering documentation in a single session.
Architecture & stack
An interactive SVG engineering canvas with multiple mechanism tabs, an object list, parameter and dimension panels, and light and dark drafting themes, backed by a constraint-based cycle solver with differentiated velocities and accelerations. Built as a browser application on a React and Python stack; projects are kept in the user account at motion.dxnest.io.
Research lineage
The solver and the comparison workflow grew out of six Ukrainian software copyright certificates for mechanism synthesis and analysis programs and out of peer-reviewed work on die-cutting-press pressure-plate drives. See the Publications and Patents & certificates pages for the underlying research record.