Inventors list |
Assignees list |
Classification tree browser |
Top 100 Inventors |
Top 100 Assignees |
Fueki
Kazui Fueki, Tokyo JP
| Patent application number | Description | Published |
|---|---|---|
| 20110198037 | Coating Film Transfer Tool - There is provided a coating film transfer tool with a reduced number of components and a high degree of design freedom, comprising a feed spool around which an unused transfer tape is wound, a transfer head from which the transfer tape is suspended and which pressure transfers a coating film on the transfer tape suspended therefrom to a transfer-receiving object by pressing the coating film thereagainst, a take-up spool around which the transfer tape on which transfer of the coating film is completed is wound, a transfer portion case | 08-18-2011 |
Nobuhiro Fueki, Utsunomiya-Shi JP
| Patent application number | Description | Published |
|---|---|---|
| 20110051123 | OPTICAL FIBER SENSOR, PRESSURE SENSOR, END EFFECTOR AND SENSOR SIGNAL PROCESSOR - An FBG (Fiber Bragg Grating) sensor is equipped with a plurality of stress detection sensors made up from optical fibers in which gratings that reflect light of a specified wavelength are arrayed, and a stress direction converter that converts stresses applied from the exterior into stresses of a direction in which the gratings are arrayed, and which transmits the stresses to each of the gratings. Consequently, the stress direction converter can transmit stresses, which are applied from a body, to a plurality of gratings. | 03-03-2011 |
| 20110102766 | OPTICAL FIBER SENSOR, PRESSURE SENSOR, END EFFECTOR AND STRESS DETECTING METHOD USING THE SAME - In an FBG (Fiber Bragg Grating) sensor, a stress direction converter includes a flat portion to which stresses are applied from the exterior, and stress transmitting sections that are bridged from the flat portion to an optical fiber cable. An inclined portion of the optical fiber cable, through which reflected light reflected by gratings is transmitted, is disposed along an inclined section that makes up one of the stress transmitting sections. | 05-05-2011 |
Nobuhiro Fueki, Tochigi JP
| Patent application number | Description | Published |
|---|---|---|
| 20090285521 | OPTICAL FIBER SENSOR - An optical fiber sensor which functions as a tactile sensor includes a plurality of shearing stress sensor sections including respective optical fibers and a plurality of gratings for reflecting light beams having predetermined wavelengths. The gratings are disposed in the optical fibers and arrayed along a plane parallel to the direction in which a shearing stress is applied from an object to the shearing stress sensor sections. The sensor also includes a perpendicular stress sensor section including an optical fiber and a plurality of gratings for reflecting a light beam having a predetermined wavelength. The gratings are disposed in the optical fiber and arrayed along a plane parallel to the direction in which a perpendicular stress is applied from the object to the perpendicular stress sensor section. Preferably, stress direction converting means such as elastic members for converting the direction of an applied stress are mounted on the optical fibers. | 11-19-2009 |
Shungo Fueki, Saitama JP
| Patent application number | Description | Published |
|---|---|---|
| 20090039577 | Active vibration isolating support apparatus and method for controlling the same - A method includes the steps of: detecting “starter ON” by IG-SW signal (step S | 02-12-2009 |
| 20090045560 | Engine natural vibration frequency detection method, active vibration isolation support device control method, engine natural vibration frequency detection apparatus, active vibration isolation support device control apparatus, active vibration isolation support device, and vibration frequency detection apparatus for vibrating body - The natural vibration frequency of a roll resonance which does not occur since the engine rotation number is high in a normal operation range of an engine is detected at the time of engine start or stop when the engine rotation number is lower than the normal operation range, and thus the natural vibration frequency of the roil resonance can be detected with a good accuracy. A current is generated by an electromotive force of an actuator of the active vibration isolation support device excited by the engine immediately before stopping its rotation, and the frequency of the current is used to detect the natural vibration frequency of the engine, and the roll resonance of the engine is suppressed by controlling the operation of the active vibration isolation support device at the time of engine start based on the natural vibration frequency, thereby not only eliminating the need of a specific frequency detection sensor, but also effectively reducing the vibration at the time of engine start when the roll resonance becomes strong. | 02-19-2009 |
Shungo Fueki, Tochigi-Ken JP
| Patent application number | Description | Published |
|---|---|---|
| 20110206213 | ACTIVE TYPE ACOUSTIC CONTROL SYSTEM - In an acoustic control system an operation range of an active type noise control device (an ANC device) and an operation range of an active type effect sound control device (an ASC device) are exchanged in accordance with the number of working cylinders of an engine. | 08-25-2011 |
Toshie Fueki, Kanagawa JP
| Patent application number | Description | Published |
|---|---|---|
| 20100320660 | Spring assembly and manufacturing method therefor - According to one embodiment, a spring assembly includes: a substrate; a coil spring having an end turn portion fixed to the substrate; an inner wall provided at an inner peripheral side of the coil spring; and an outer wall provided at an outer peripheral side of the coil spring, wherein one of the inner wall and the outer wall forms a spring fixing wall configured to prevent the end turn portion of the coil spring from coming off in an axial direction of the coil spring, and wherein the other of the inner wall and the outer wall forms a support wall configured to prevent the end turn portion of the coil spring from moving in a radial direction of the coil spring. | 12-23-2010 |
