This technology features a capsule-type robot structure consisting of a body with multiple internal chambers and openings, and a magnetic drive unit that moves forward, backward, and rotates via an external magnetic field to press the transport mechanism of a selected chamber. Through the mechanical interaction between guide grooves and guide pins, it independently controls the protrusion of multiple transport mechanisms to perform the collection or delivery of biological materials.
Conventional in-vivo transport capsules rely on peristalsis, making active movement impossible, and lack the functionality to operate selectively while preventing cross-contamination during multiple sample collections or multi-material delivery.
This technology employs a selective drive mechanism where transport mechanisms are housed in multiple chambers arranged radially within the body, and a rod on the magnetic drive unit—movable and rotatable along a shaft via an external magnetic field—presses and extends a specific transport mechanism. Applicable to surgical robots, interventional systems, and medical automation, it improves the efficiency of collecting samples from specific locations within the digestive tract and enhances independent multi-picking and delivery capabilities.
This invention was developed with support from the Ministry of Health and Welfare for the development of therapeutic modules for micro-medical robots.
This technology is a parking lock system that controls parking by automatically reading license plates. It consists of a ground-fixed base, a sloped cover, an upper body equipped with ultrasonic distance sensors and digital cameras, and a lower body featuring an eSIM communication module.
Existing open parking spaces are difficult to manage efficiently because users must visit without prior reservation or confirmation, and managers are required to manually identify each vehicle.
By using ultrasonic distance sensors and cameras to automatically detect vehicle approach and recognize license plates, and by controlling the lock via mobile communication networks, this technology can be applied to resident-priority and shared parking services to handle everything from search to payment without human intervention.
This technology provides a method for predicting the liquid heat capacity of pure organic compounds by preparing molecular descriptor values and building a QSPR model based on SVRC equation parameters.
Measuring liquid heat capacity through experiments is costly and time-consuming, and it has been difficult to reliably predict the heat capacity of various organic compounds.
By predicting and verifying liquid heat capacity using a molecular descriptor-based QSPR model, this technology can be applied to the field of chemical property prediction to calculate heat capacity without the need for experiments.
This patent is owned by IPBank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points during evaluations for priority procurement of excellent inventions.
This technology provides a method for predicting the saturated liquid density of non-hydrocarbon organic compounds by preparing molecular descriptor values and constructing QSPR models for the parameters of the SVRC equation.
Measuring saturated liquid density through experiments is time-consuming and costly, and it has been difficult to reliably predict the physical properties of various organic compounds.
By predicting and verifying saturated liquid density using molecular descriptor-based QSPR models, this technology can be applied to the field of chemical property prediction to calculate properties without the need for experiments.
This patent is owned by IP Bank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points when applying for priority review of excellent inventions.
This technology is a liquid fabric deodorizer composition that increases fragrance longevity by forming micelles through a blend of aroma oil, glycol-based solvents, and triblock copolymers.
Conventional fabric deodorizers suffer from low longevity due to the rapid evaporation of fragrance and difficulty in stably dispersing aroma oil in aqueous systems.
By stabilizing aroma oil in a micelle structure using triblock copolymers, this technology can be applied to liquid fabric deodorizer products to improve both fragrance longevity and deodorizing performance.
This patent is owned by IPBank. Upon purchase, you can receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points during evaluations for priority procurement of excellent inventions.
This technology manufactures membrane sheets by heating and transporting a PU film with an attached PET film, laminating it with a hot-melt coated PVC film, and then cooling it to separate the PET film.
Multi-layered membrane sheets have historically been difficult to produce with uniform thickness and quality due to the challenges of precisely controlling the film adhesion and separation processes.
This technology enables the production of uniform multi-layered sheets for membrane products by heat-laminating PU and PVC films and subsequently cooling them to separate the PET film.
This patent is owned by IP Bank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and bonus points during evaluations for priority procurement of excellent inventions.
This technology features a parking lock remotely controlled via a mobile network, consisting of a cylindrical base bolted to the ground and a sloped cover that sits on top to distribute the weight of vehicle tires.
Existing residential priority parking or open parking lots are difficult to manage without personnel to prevent unauthorized parking, and current locking devices are often prone to damage due to their vulnerability to vehicle weight.
By using a base support and a sloped cover structure to distribute vehicle tire weight directly to the ground, this technology enhances durability, making it ideal for managing residential priority and shared parking spaces by preventing unauthorized use and reducing equipment damage.
This technology is a resin-based sheet coating method that involves molding scratches onto a resin substrate, applying a UV coating layer, and then performing curing, heating, pressing, and cooling processes.
Previously, there were issues with poor adhesion when forming coating layers on resin sheets, which made the coating prone to peeling and made it difficult to maintain consistent surface quality.
By forming a UV coating layer over the scratched surface and using heat and pressure to ensure strong adhesion, this technology improves both the durability and surface quality of resin sheet products.
This patent is owned by IP Bank. Upon purchase, you can receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points when applying for priority procurement of excellent inventions.
This technology synchronizes and fuses data from fixed sensors installed in control infrastructure with onboard sensor data from Autonomous Mobile Robots (AMRs) based on a spatio-temporal grid. By doing so, it detects hazards in the robot's blind spots and generates avoidance paths.
AMRs often face collision risks because their onboard sensors have limitations, making it difficult to detect objects located behind obstacles or within blind spots in advance.
This technology establishes a path-generation control system that receives data from control infrastructure sensors (cameras, LiDAR, etc.) and the robot's own sensors, synchronizes them with the robot's location, and fuses them using a grid fusion method to avoid paths containing hazards. Applicable to logistics transport, service robots, and autonomous driving platforms, it prevents collisions with obstacles in blind spots and enhances the ability of mobile objects to actively manage objects in their path, thereby improving safety and efficiency across various fields.
This invention was developed with support from the Ministry of Science and ICT for the development of autonomous avoidance driving technology for the pre-recognition and protection of traffic objects through infrastructure linkage.
This technology is a simulation-based system that calculates the optimal installation locations for surveillance sensors based on movement path scenarios of objects and mobile units within an indoor monitoring area. By simulating the total time during which the detection ranges of surveillance sensors and mobile unit sensors overlap, it identifies the sensor placement configuration that maximizes object detection time.
The risk of collision with objects due to blind spots in autonomous robot detection ranges, and the inefficiencies of existing surveillance sensor installation methods (increased costs due to over-installation or blind spots caused by under-installation).
This technology is a device and method that performs simulations by inputting time-based movement path scenarios for objects and mobile units along with monitoring area maps. It calculates the 'object detection time' for various combinations of potential surveillance sensor locations and identifies the optimal installation index that maximizes this time. Applicable to logistics transport, service robots, and autonomous driving platforms, it improves object detection efficiency, reduces the number of required control sensors, and enhances the overall safety of autonomous robots within the monitored area.
This invention was developed with support from the Ministry of Science and ICT for the development of an autonomous mobile robot blind-spot avoidance path optimization algorithm based on multi-sensor fusion for efficient manufacturing process automation.
This technology is a complex sensing control system that precisely estimates the positions of a robot and surrounding objects by arranging multiple sensor units at equal angles around the robot's exterior and integrating vision, depth, and marker tracking information. It updates real-time position data by converting individual sensor reference coordinates into a single coordinate system centered on the robot.
Existing LiDAR and radar sensors are limited in their ability to perform precise autonomous driving and tasks due to narrow fields of view, low resolution, and limited accuracy. Furthermore, it has been difficult to reliably estimate posture when the robot's position fluctuates.
This technology utilizes a housing containing vision cameras, depth sensors, and marker trackers, arranged around the robot's body to acquire multi-angle environmental information. A processor maps the reference coordinates of each sensor to the robot's origin coordinates and updates map and position data complementarily based on marker recognition to control autonomous navigation. Applicable to robot gripping, precision measurement, and automated facilities, this technology improves the accuracy of position estimation for both the robot and objects in the workspace, thereby enhancing overall operational performance.
This technology allows users to simply enter a store's phone number to have the membership management server automatically connect them to that store's dedicated app page. It integrates the website management, app download management, and delivery management servers into a unified management server to process orders and payments.
Traditional ordering and payment methods require customers to visit in person and wait in line, while stores must maintain dedicated staff to handle payments, leading to significant labor cost burdens.
By automatically recognizing the dialed phone number to connect directly to a store-specific page without the need for app searches or QR codes, this technology can be applied to non-face-to-face ordering and payment services in sectors like food service and retail, effectively reducing wait times and labor costs.
This technology is a method for manufacturing embossing film by coating, drying, and curing a UV-curable coating onto a base film, followed by heat softening and forming identical patterns on both sides using an embossing roller and a backup roller before cooling.
Existing embossing films often suffer from issues such as patterns being limited to one side or low pattern precision, making it difficult to form uniform, identical patterns on both sides.
By heat-softening the UV-curable coating and using an embossing roller and an elastic backup roller to shape both sides, this technology enables the uniform formation of identical double-sided patterns for decorative and functional films.
This patent is owned by IP Bank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points during evaluations for priority procurement of excellent inventions.
This technology involves manufacturing an electrically conductive mask pack sheet by laminating a silver film—featuring a silver composition layer—onto a lyocell non-woven fabric impregnated with essence gel, followed by the removal of the polypropylene film, aging, and rolling.
To impart electrical conductivity to functional mask packs, silver components must be stably bonded to the sheet; however, achieving uniform lamination has historically been a challenge.
By thermally laminating a silver film onto an essence gel-impregnated non-woven fabric to provide electrical conductivity, this technology can be applied to functional mask pack products to enhance skin care efficacy.
This patent is owned by IP Bank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and bonus points during evaluations for priority procurement of excellent inventions.
This technology involves manufacturing non-woven fabric by heat-laminating binder-coated aluminum foil onto hydrogel-coated fabric, removing the base, and cutting it into the shape of a mask pack.
Hydrogel sheets for mask packs often struggle with moisture evaporation and maintaining their shape, making it difficult to achieve both effective barrier properties and a secure fit.
By laminating aluminum foil onto hydrogel fabric to create a barrier layer, this technology helps mask pack products retain moisture and improve the delivery of active ingredients.
This patent is owned by IP Bank. Upon purchase, you may receive support through commercialization programs, recommendations for technology transfer and commercialization funding guarantees, and additional points during evaluations for priority procurement of excellent inventions.