Patents by Inventor Seokpum KIM
Seokpum KIM has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Publication number: 20250242542Abstract: A method of depositing material for additive manufacturing of an object includes providing a printhead configured to move linearly along a flat x-y plane parallel to a build surface for the object and configured to simultaneously move in a vertical z-direction that is perpendicular to the x-y plane. The method further includes forming a layer of the object by extruding material from the printhead while simultaneously operating the printhead to move in a printing pattern that includes both a linear component in the x-y plane and a vertical component in the z-direction to deposit a layer of material along a path of the printing pattern. The printing pattern is sinusoidal, sinusoidal-like, partially sinusoidal, or partially sinusoidal-like. The printing pattern compensates for material contraction upon solidification of the formed object, thereby reducing one or both of residual stress in the formed object and distortion of the formed object.Type: ApplicationFiled: January 31, 2025Publication date: July 31, 2025Inventors: Halil Tekinalp, Seokpum Kim, Soydan Ozcan
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Publication number: 20250214307Abstract: Systems and methods for generating a shape-based graded lattice structure that can be used in additive manufacturing. A slicer computer system generates the lattice structure by simulating the packing of a planar region with variable-sized packing shapes, where packing shape sizes correspond to intensity values of a non-uniform physical field expected to be experienced by the article. An intermediate lattice structure is then generated using a first set of polygonal cells, followed by a second set of polygonal cells that refine the final lattice structure. Tailored sectioning and field-based smoothing can modify polygon packing algorithms to adapt lattice generation. The resultant multi-stage graded lattice structures, which may include multiple lattice patches and transition zones, from shape-based packing, tailored sectioning, field-based smoothing, and slicer-based additive manufacturing processing improve connectivity and manufacturability over traditional lattice structures.Type: ApplicationFiled: February 7, 2025Publication date: July 3, 2025Inventors: Seokpum Kim, John C. Bowers, Kenneth Stephenson, Vlastimil Kunc, Ahmed Arabi Hassen, Lonnie J. Love, Gregory D. Dreifus
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Patent number: 12233603Abstract: Slicer system for generating molecular dynamic graded lattice structures that can be used as infill for additively manufactured articles. Molecular dynamically generated lattice infill is based on force balancing a node distribution instead of a circle packing. Field data can be utilized to adjust the spacing of the node distribution according to a force balance equilibrium model that accounts for the field expected to be experienced by the article being additively manufactured. The resultant non-uniform honeycomb structures from force-balancing robustly and efficiently address the connection issues with traditional non-uniform lattice structures.Type: GrantFiled: June 30, 2023Date of Patent: February 25, 2025Assignee: UT-Battelle, LLCInventors: Seokpum Kim, Ahmed Arabi Hassen, Lonnie J. Love, Vlastimil Kunc
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Publication number: 20240383201Abstract: An additive manufacturing system for additive manufacturing with an additive manufacturing material and fibers includes an extruder comprising a static-mixing nozzle having a static-mixing channel and static-mixing structures distributed inside the static-mixing channel and extending radially inward from the channel wall, and being longitudinally distributed and radially staggered over a portion of the length of the static-mixing channel. A static-mixing nozzle, a method of additive manufacturing, and a method of making a static mixing nozzle for additive manufacturing are also disclosed.Type: ApplicationFiled: September 29, 2023Publication date: November 21, 2024Inventors: Tyler C. Smith, Ahmed A. Hassen, John M. Lindahl, Seokpum Kim, Vlastimil Kunc, Vipin Kumar, Brian K. Post, Peeyush Nandwana
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Publication number: 20240383196Abstract: An additive manufacturing system for an additive manufacturing material and embedded short-chopped fibers includes an extruder comprising a nozzle having a nozzle flow channel. The nozzle includes a plurality of spaced apart elongated aligning structures distributed inside the nozzle flow channel and parallel to the longitudinal center axis defining alignment flow channels within the nozzle flow channel. A nozzle for additive manufacturing, a method of additive manufacturing, and a method of making a nozzle for an additive manufacturing system for and additive manufacturing material and embedded short-chopped fibers are also disclosed.Type: ApplicationFiled: September 29, 2023Publication date: November 21, 2024Inventors: Tyler C. Smith, Ahmed A. Hassen, John M. Lindahl, Seokpum Kim, Vlastimil Kunc, Vipin Kumar, Chase Joslin
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Patent number: 11873382Abstract: The current embodiments include all-polymeric protective material for mitigating lightning strike damage. The protective material includes a hybrid matrix comprising PANI and MXene dispersed within a thermosetting epoxy resin. This hybrid matrix can be painted, printed, or applied as a conductive polymeric layer to a FRCP structure, for example an aircraft fuselage, wing, empennage, control surface (aileron, flap, slats, rudder, elevator) or a wind turbine blade. The protective material not only withstands lightning strikes, but also functions as shielding against electromagnetic interference and is corrosion-resistant and lightweight.Type: GrantFiled: March 30, 2022Date of Patent: January 16, 2024Assignee: UT-BATTELLE, LLCInventors: Vipin Kumar, Ahmed A. Hassen, Christopher J. Hershey, Seokpum Kim, Vlastimil Kunc, John M. Lindahl
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Publication number: 20230339186Abstract: Slicer system for generating molecular dynamic graded lattice structures that can be used as infill for additively manufactured articles. Molecular dynamically generated lattice infill is based on force balancing a node distribution instead of a circle packing. Field data can be utilized to adjust the spacing of the node distribution according to a force balance equilibrium model that accounts for the field expected to be experienced by the article being additively manufactured. The resultant non-uniform honeycomb structures from force-balancing robustly and efficiently address the connection issues with traditional non-uniform lattice structures.Type: ApplicationFiled: June 30, 2023Publication date: October 26, 2023Inventors: Seokpum Kim, Ahmed Arabi Hassen, Lonnie J. Love, Vlastimil Kunc
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Patent number: 11794415Abstract: A simulation-assisted additive manufacturing system and method for generating an anisotropic compensation to account for non-uniform deformation due to additive manufacturing and service loading. The predicted deformation may not be fully defined. The present disclosure provides a system and method for estimating the missing deformation data through regression analysis. The present disclosure also provides an integrated framework where the various simulated-assisted design modules are configured for two-way communication and sharing access to changes to the model.Type: GrantFiled: September 15, 2021Date of Patent: October 24, 2023Assignee: UT-Battelle, LLCInventors: Seokpum Kim, Ahmed A. Hassen, John M. Lindahl, Lonnie J. Love, Vlastimil Kunc, Thomas Feldhausen
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Patent number: 11738515Abstract: Systems and methods for generating molecular dynamic graded lattice structures that can be used as infill for additively manufactured articles. Molecular dynamically generated lattice infill is based on force balancing a node distribution instead of a circle packing. Field data can be utilized to adjust the spacing of the node distribution according to a force balance equilibrium model that accounts for the field expected to be experienced by the article being additively manufactured. The resultant non-uniform honeycomb structures from force-balancing robustly and efficiently address the connection issues with traditional non-uniform lattice structures.Type: GrantFiled: December 8, 2021Date of Patent: August 29, 2023Assignee: UT-Battelle, LLCInventors: Seokpum Kim, Ahmed Arabi Hassen, Lonnie J. Love, Vlastimil Kunc
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Patent number: 11630439Abstract: Toolpath generation for additive manufacturing systems involves operations on polygonal contours derived from a model for additively manufacturing a structure. One aspect involves modifying or creating a model to allow parts to be printed without starting and stopping the printing equipment by generating continuous toolpaths or toolpaths having a reduced number of isolated paths. Another aspect involves modifying a slicing engine to generate a continuous toolpath or toolpath having a reduced number of isolated paths based on a representation of an object to be additively manufactured. Another aspect involves selectively placing the gaps at alternating positions among the sliced layers to create a zippering effect.Type: GrantFiled: April 7, 2020Date of Patent: April 18, 2023Assignee: UT-Battelle, LLCInventors: Michael C. Borish, Alex C. Roschli, Brian K. Post, Phillip C. Chesser, Seokpum Kim
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Patent number: 11623395Abstract: An apparatus and device for creating a vertical strengthening feature within a 3D printed article of manufacture for improving mechanical performance in the Z-direction. Fill material is deposited in voids vertically crossing multiple layers during the build of 3D printing. The device includes a penetrating extension that fits within the void to create a vertical strengthening feature via heat and/or extruded fill material. The size and/or movement of the heated extension can impact the void side walls to reflow the build material and blend the layers together within the void side walls.Type: GrantFiled: October 25, 2021Date of Patent: April 11, 2023Assignee: UT-BATTELLE, LLCInventors: Vlastimil Kunc, Seokpum Kim, John M. Lindahl, Jordan A. Failla, Chad E. Duty
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Patent number: 11602898Abstract: Systems and methods for generating graded lattice structures that can be used as infill for additively manufactured articles. Tailored sectioning and field-based smoothing are modified polygon, e.g., circle, packing algorithms that adjust the size of the circles based on physical field data to adapt the infill generation process to a field expected to be experienced by the article. Molecular dynamically generated lattice infill is based on force balancing a node distribution instead of a circle packing. Field data can be utilized to adjust the spacing of the node distribution according to a force balance equilibrium model that accounts for the field expected to be experienced by the article being additively manufactured. The resultant non-uniform honeycomb structures from tailored sectioning, field-based smoothing, and force-balancing robustly and efficiently address the connection issues with traditional non-uniform lattice structures.Type: GrantFiled: May 28, 2021Date of Patent: March 14, 2023Assignee: UT-Battelle, LLCInventors: Seokpum Kim, John C. Bowers, Kenneth Stephenson, Vlastimil Kunc, Ahmed Arabi Hassen, Lonnie J. Love, Gregory D. Dreifus
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Patent number: 11534977Abstract: A system and method for improving additive manufacturing, including additive manufacturing toolpaths, is provided. The system and method includes a toolpath generator that obtains initial toolpaths of an object, identifies isolated paths in the toolpaths, and adds bridge connections between neighboring isolated paths in each layer to improve the toolpaths. The bridge connections facilitate the continuous and non-stop deposition of each layer according to improved toolpaths during additive manufacture, which can reduce total deposition time and improve the resultant additive manufacture.Type: GrantFiled: January 23, 2020Date of Patent: December 27, 2022Assignee: UT-Battelle, LLCInventors: Seokpum Kim, Vlastimil Kune, Ahmed A. Hassen, John M. Lindahl, Brian K. Post, Alex C. Roschli, Phillip C. Chesser, Michael C. Borish, Gregory D. Dreifus, Lonnie J. Love, Craig A. Blue, Bentley T. Beard, II
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Patent number: 11518073Abstract: An improved method for obtaining high fiber volume fraction, long fiber injection molded articles is provided. According to one embodiment, the method includes forming an injection molding feedstock by cutting pre-impregnated fiber-reinforced tape into platelets. The platelets can be coated with a thin layer of polymer to allow sliding of the platelets with respect to each other at the early stages of plastication, rather than forcing relative motion of fibers with respect to each other. The method can further include the dispersion of material only in the final stages of the injection molding screw to promote gentle motion of the feedstock at the earlier stages of the plastication process. The method allows improvement of mechanical properties of articles manufactured with equipment and techniques that are prevalent in high volume automotive and consumer industries.Type: GrantFiled: November 20, 2020Date of Patent: December 6, 2022Assignee: UT-BATTELLE, LLCInventors: Vlastimil Kunc, Ahmed A. Hassen, John M. Lindahl, Seokpum Kim
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Publication number: 20220315733Abstract: The current embodiments include all-polymeric protective material for mitigating lightning strike damage. The protective material includes a hybrid matrix comprising PANI and MXene dispersed within a thermosetting epoxy resin. This hybrid matrix can be painted, printed, or applied as a conductive polymeric layer to a FRCP structure, for example an aircraft fuselage, wing, empennage, control surface (aileron, flap, slats, rudder, elevator) or a wind turbine blade. The protective material not only withstands lightning strikes, but also functions as shielding against electromagnetic interference and is corrosion-resistant and lightweight.Type: ApplicationFiled: March 30, 2022Publication date: October 6, 2022Inventors: Vipin Kumar, Ahmed A. Hassen, Christopher J. Hershey, Seokpum Kim, Vlastimil Kunc, John M. Lindahl
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Publication number: 20220315774Abstract: A polymeric adhesive film including a conductive filler of polyaniline (PANI) and MXene is provided. The adhesive film can be painted, printed, or applied to different substrate structures, including aircraft and wind turbine blades. The adhesive film has potential as a fatigue sensor, a strain sensor, a gas sensor, a humidity sensor, and a temperature sensor, by non-limiting example. In one embodiment, a force sensing material includes a conductive filler of PANI and MXene within an organic or polymer matrix. The force sensing material is used to measure local mechanical strain by detecting the change in electrical conductivity induced by the mechanical strain. The force sensing material can also be used in other applications where local strain changes, including the detection of local humidity and local temperature.Type: ApplicationFiled: March 30, 2022Publication date: October 6, 2022Inventors: Vipin Kumar, Justin C. Condon, Ahmed A. Hassen, Christopher J. Hershey, Seokpum Kim, Vlastimil Kunc, John M. Lindahl
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Publication number: 20220143918Abstract: Systems and methods for generating molecular dynamic graded lattice structures that can be used as infill for additively manufactured articles. Molecular dynamically generated lattice infill is based on force balancing a node distribution instead of a circle packing. Field data can be utilized to adjust the spacing of the node distribution according to a force balance equilibrium model that accounts for the field expected to be experienced by the article being additively manufactured. The resultant non-uniform honeycomb structures from force-balancing robustly and efficiently address the connection issues with traditional non-uniform lattice structures.Type: ApplicationFiled: December 8, 2021Publication date: May 12, 2022Inventors: Seokpum Kim, Ahmed Arabi Hassen, Lonnie J. Love, Vlastimil Kunc
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Publication number: 20220088881Abstract: A simulation-assisted additive manufacturing system and method for generating an anisotropic compensation to account for non-uniform deformation due to additive manufacturing and service loading. The predicted deformation may not be fully defined. The present disclosure provides a system and method for estimating the missing deformation data through regression analysis. The present disclosure also provides an integrated framework where the various simulated-assisted design modules are configured for two-way communication and sharing access to changes to the model.Type: ApplicationFiled: September 15, 2021Publication date: March 24, 2022Inventors: Seokpum Kim, Ahmed A. Hassen, John M. Lindahl, Lonnie J. Love, Vlastimil Kunc, Thomas Feldhausen
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Publication number: 20220040920Abstract: An apparatus and device for creating a vertical strengthening feature within a 3D printed article of manufacture for improving mechanical performance in the Z-direction. Fill material is deposited in voids vertically crossing multiple layers during the build of 3D printing. The device includes a penetrating extension that fits within the void to create a vertical strengthening feature via heat and/or extruded fill material. The size and/or movement of the heated extension can impact the void side walls to reflow the build material and blend the layers together within the void side walls.Type: ApplicationFiled: October 25, 2021Publication date: February 10, 2022Applicant: UT-BATTELLE, LLCInventors: Vlastimil Kunc, Seokpum KIM, John M. LINDAHL, Jordan A. Failla, Chad E. Duty
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Patent number: 11199517Abstract: A structural health monitoring method is provided that utilizes self-sensing printed polymer structures. The method is based on resistivity properties of conductive materials, which can be integrated to a 3D printed polymer structure during additive manufacturing. An article to be monitored has at least one 3D printed polymer structure including a circuit comprising at least one conductive pathway extending through a non-conductive material. The resistance across the circuit is measured during or after loading of the article to determine a resistance value. The measured resistance value is compared to a known resistance value, and based on the comparison, a defect can be detected in the 3D printed polymer structure. Structural health monitoring systems and articles with integrated structural health monitoring are also provided.Type: GrantFiled: August 13, 2019Date of Patent: December 14, 2021Assignee: UT-Battelle, LLCInventors: Vlastimil Kunc, Ahmed A. Hassen, Pooran C. Joshi, Seokpum Kim, John M. Lindahl, Chad E. Duty, Jordan A. Failla, Tyler C. H. Smith