Non-imaging optics redirect incoherent light onto the powder bed, reducing thermal gradients and minimizing energy losses during pre-heating.
Local preheating via synchronized beam guidance minimizes thermal stress and enhances dimensional accuracy during selective laser melting.
Self-balancing channel structure in adjustable slit-type extrusion head prevents radial deformation and flow stagnation.
Segmenting the structure into a high-resolution jacket and an internal volume eliminates external support requirements while maintaining dimensional stability.
A plasticizing device uses a variable gap between the screw groove and barrel facing surface to direct material flow toward a central communication hole.
Segmented volume chambers reduce manufacturing time and material usage while enhancing component strength through targeted filler integration.
Heat-induced protein aggregation forms solid parts from unmodified build solutions, eliminating chemical functionalization and reducing process complexity.
A thermostatic section between the molding table and driving mechanism suppresses thermal deformation, improving lamination molding accuracy.
A thermally conductive nozzle body merges heater and sensor conduits to enable precise temperature control during extrusion.
Long-wavelength radiation heats surface powder rapidly while protecting deeper layers from thermal stress and material aging.
A controllable powder roller applies heated particulate material to prevent thermal shock and warping during selective sintering.
Thermoplastic layers printed with specific path orientations enable thermal transformation into desired shapes using standard equipment.
A discharge head deposits composite material while a cure enhancer partially cures the resin during extrusion.
A 3D printing filament uses a compatibilizing agent between resins to coat fibers for improved mechanical integrity.
Catechol derivatives mediate bonding between metal powders and latex binders to resolve tensile strength failures during green body handling.
Sealed curing device with internal reflection plate and rotatable support resolves uneven temperature distribution in 3D printed products.
Viscoelastic sacrificial inks prevent wrinkling to achieve glossy surfaces.
Integrating a piezoelectric ceramic sheet with a position detector filters environmental noise, enabling accurate nozzle positioning on larger print areas.
A water-based nanoclay support material enables additive manufacturing of complex silicone elastomers without high-temperature processing.
Orthogonal energy sources on dual scanning carriages improve temperature uniformity across the build surface, reducing inhomogeneous contraction.
Localized laser heating liquefies strand surfaces for bonding while maintaining a solid core, enabling rapid prototype development of large objects.
A gas replacer generates a laminar flow of predetermined gas to replace ambient air within the fabrication housing.
A print head integrates a doser and sensor to regulate matrix coating on continuous reinforcement during additive manufacturing.
Segmented heating of heat-curable silicone layers resolves curing uniformity issues in thick 3D printed objects.
Sensor-based calibration determines optimal printing liquid interaction with powder layers, resolving quality defects from non-optimal material mixing.
Heating polymer powder accelerates binder dissolution and increases viscosity during additive manufacturing layer deposition.