Printing distanced beams creates a weak material phase to homogenize mechanical properties despite thermal history variations during additive manufacturing.
Mechanical vibration fluidizes powder in a build box to extract additively fabricated parts through sidewall openings, reducing manual labor and part damage.
Volatile fluid vaporization creates precise trenches in powder beds, improving edge definition and reducing energy costs without melting the entire layer.
Optical sensors read encoded markings on consumable materials to adjust dispensing rates in additive manufacturing systems.
A joint material with specific particle size fills uneven surfaces between green portions, eliminating porosity and enhancing joint strength.
Scraper limbs dislodge accumulated debris from gas heads to prevent build surface contamination.
Sandwich damping material between fibrous polymer bands in 3D printed ribs to replicate human mechanical response during collisions.
Direct 3D printing of microstructures on optical fiber ends eliminates complex alignment steps and separate molds.
Bayesian optimization iteratively adapts fibril shape to overcome template-based design limits, maximizing adhesion while reducing engineering time.
Dynamic nozzle control adapts to surface geometry, resolving flat-surface printing limits.
A detection device analyzes solidification emissions to predict defects in additively manufactured parts.
Defined cavities in the housing wall reduce temperature differences and deformation, allowing smaller radial gaps without costly materials.
Continuous helical deposition creates curvilinear ducts, overcoming discontinuous layer constraints to enhance structural strength.
A nonconductive implant surface gains electrical conductivity through laser-induced carbonization to enable low voltage stimulation.
Non-photocurable polymer with controlled hydroxyl value prevents chemical reaction with model material, allowing easy support removal without interface damage.
Dynamic slicing analyzes cost and quality across varied orientations to reduce simulation time while expanding user options for output price and quality.
Integrating a heater element inside the molded object prevents resin weld lines by controlling local temperature, eliminating complex external cooling circuits.
A hybrid additive manufacturing system combines fused deposition modeling with physical vapor deposition to deposit polymer and metallic layers.
Al-Ce alloy metal matrix composites disperse high-melting reinforcement particulates to enhance mechanical strength and ductility.
Titanium dioxide particles coated with polyether block amide polymer reduce thermal discoloration during high-temperature 3D printing processes.
Copolymers with specific ether-phenyl repeat units lower melting points, resolving the trade-off between processing ease and mechanical strength.
Detects surface roughness and porosity changes during powder bed fusion by measuring reflected light properties.
Photosensitizers accelerate photoinitiated isomerization of latent catalysts, enabling rapid curing and high-resolution 3D printing of intricate parts.
Single-stage ion milling transfers a multi-tier photoresist pattern into an AlTiC slider, reducing tier mis-registration and critical dimension errors.
Segmented ceramic core with bonded polymer shells resists injection pressure, preventing breakage of thin supply cavities during lost-wax casting.
A mechanical rod mechanism translates wire spool rotation into a visible fill level indicator without electrical power.
Additive manufacturing builds intersecting stiffening profiles on fibre composite shells using thermoplastic filaments.
A guide ring fixed to the cylinder head redirects fuel injection to improve atomization without increasing system complexity or manufacturing costs.
A digital assembler creates three-dimensional structures using discrete components with self-aligning geometric features.
Variable inkjet printing of core and edge layers eliminates stair steps on ophthalmic device surfaces while maintaining manufacturing speed.
Integrating magnetic field application during additive manufacturing eliminates separate magnetization steps, reducing production time and cost.
Segmented stencils nest to resolve the contradiction between manufacturing precision and device complexity, ensuring reproducible 3D shapes.
Sintering nanocrystalline particles prevents grain growth during additive manufacturing, achieving full density at lower temperatures.
A preliminary absorptive coating enables laser fusion of high purity copper by overcoming low reflectivity, maintaining superior electrical conductivity.
A hot isostatic pressing method consolidates metal powder into solid components using controlled pressure cycles.
Additive manufacturing process reacts feed materials with alkali metals to form dense nuclear fuel structures without binders.
Lightweight additive manufactured mandrels form complex composite pipe shapes without requiring removal.
A laser selectively removes non-patterned powder from a substrate by heating loose material, preventing mechanical damage to fixed portions.
Shear-thinning inorganic nanoparticle hydrogel ink enables precise 3D printing of high-strength scaffolds without cross-linking agents.
Photocurable APGD polymers enable in vivo curing of complex anatomical structures while matching soft tissue mechanics to prevent erosion.
Hydrolyzing additive-manufactured polymers with acid and chelating metal ions anchors electroless plating, resolving adhesion failures on synthetic polyamides.
Optimized Fe-based alloy composition reduces deformation during additive manufacturing by balancing hardness and thermal conductivity.
A printed insulating element uses layered material strands to form complex vehicle cavity shapes.
A 3D printing composition blends soft and rigid polymer precursors to form an intertwined block copolymer network upon light exposure.
Material jet printing fabricates transparent ceramic optics with tunable spatial composition, resolving optical mode instability and thermal lensing.
Three-dimensional architected composite layers eliminate interlaminar failure planes to absorb impact energy and provide tunable damping.
UV curable binder enables additive manufacturing of energetic materials, eliminating cold storage requirements and extending shelf life.
Two energy beams fuse powder layers in overlapping zones with constant combined power, preserving beam spot quality across large build volumes.
Dithiolene metal complexes absorb infrared radiation while maintaining visible transparency.