Abstract:
A recording apparatus including recording modules each having a recording medium conveyance path, the modules being identical in external shape and disposed such that conveyor surfaces thereof are parallel to each other and such that same-shaped portions thereof align with each other in a first direction intersecting the conveyor surface, wherein, in a certain cross section orthogonal to the conveyor surface and parallel to the first direction, where a dimension of each module in a second direction orthogonal to a conveyor surface is L1 and a dimension thereof in a third direction orthogonal to the second direction is L2, a dimension L3, in the second direction, of adjacent two of the modules in the first direction is smaller than twice the dimension L1 and a dimension L4, in the third direction, of the adjacent two modules is smaller than twice the dimension L2 and is larger than the dimension L2.
Abstract:
An ink-jet recording apparatus is provided, including a first transport section which transports a recording medium; a recording section which is formed with a plurality of nozzles and which records an image on the recording medium by discharging ink droplets from the nozzles; an interference member which is provided at a position separated from the recording section; and a control unit which controls the recording section so that only a part of the nozzles is used for a certain area of the recording medium.
Abstract:
An inkjet printer is configured to acquire gap variation information related to a variation of a gap between a specific portion of an ink discharging surface and a recording sheet as a function of an inkjet head position, the specific portion located within a usage nozzle disposed area where usage nozzle rows to be actually used are disposed, determine representative gap variation information related to a variation, as a function of the inkjet head position, of a representative gap representing actual gaps between the usage nozzle rows and the recording sheet, by multiplying the gap variation information by a correction coefficient dependent on a width of the usage nozzle disposed area in a head moving direction and a wavelength of a wave shape of the recording sheet, and determine ink discharging timing based on the representative gap variation information, assuming that the actual gaps are equal to the representative gap.
Abstract:
A liquid jetting apparatus includes a liquid jetting head having a liquid jetting surface in which a plurality of nozzles are aligned along a predetermined direction, a head holder holding the liquid jetting head and being rotatable within a plane parallel to the liquid jetting surface, a rotation regulation member contacting with two contact portions of the head holder to regulate rotation of the head holder, and an inclination adjustment mechanism, which has a cam member being rotatable about a rotation shaft and being capable of displacing a first contact portion of the two contact portions in a direction including a directional component perpendicular to a direction linking the first contact portion with a second contact portion of the two contact portions within the plane, and which adjusts inclination of the head holder by rotating the cam member to rotate the head holder about the second contact portion.
Abstract:
an image printing device comprises a transfer roller configured to transfer a printing medium in a transfer direction, a first sensor configured to detect a rotation amount of the transfer roller, a carriage mounted with a printhead. The image printing device further comprises a second sensor mounted to the carriage and configured to detect the printing medium. The image printing device further comprises a reference member disposed at a position opposing to the second sensor and a drive transmission mechanism configured to move the reference member in conjunction with a rotation of the transfer roller. The image printing device determines a position of an origin of the transfer roller based on detection results of the first sensor and the second sensor.
Abstract:
An image recording apparatus, including: a platen which supports a sheet; a movable carriage disposed so as to face to the platen; a head mounted on the carriage to record an image on the sheet; an optical sensor mounted on the carriage and constituted by an emitting element which emits light and a receiving element which receives light reflected from the sheet and output an electric signal according to intensity of the reflected light; a changing mechanism which changes the optical sensor between first and second positions; and a calculation section which calculates at least one of a distance between the optical sensor and the sheet and a reflectivity of the sheet on the basis of (a) a first electric signal outputted from the receiving element with the optical sensor disposed at the first position and (b) a second electric signal outputted from the receiving element with the optical sensor disposed at the second position.
Abstract:
A rotation-body controlling apparatus including: a first motor configured to rotate a first rotation body; a second motor configured to rotate a second rotation body; a first rotation amount detecting portion configured to detect a rotation amount of the first rotation body rotated in synchronization with the first motor; a second rotation amount detecting portion configured to detect a rotation amount of a second rotation shaft rotated in synchronization with the second rotation body; a transmitting mechanism configured such that a rotation of the first rotation body is transmittable to the second rotation shaft; and an origin-position detecting portion configured to detect an origin position of a rotation phase of the first rotation body on the basis of a phase of the first rotation body at a time when the second rotation amount detecting portion has detected a rotation of the second rotation shaft, where the rotation of the first rotation body operated by the first motor is transmitted to the second rotation shaft via the transmitting mechanism.
Abstract:
A feeding device including: (a) a feed mechanism including a motor driven with supply of a power thereto, and a feeder operated by the motor for feeding an object; (b) a power supply controller for supplying the power to the motor until an actual operating position of the feeder coincides with a power-supply-stop operating position located before a target operating position of the feeder, and to stop the supply of the power to the motor when the actual operating position coincides with the power-supply-stop operating position, for causing the actual operating position to eventually coincide with the target operating position owing to an inertia of the feed mechanism; and (c) a power-supply-stop operating-position determiner for determining the power-supply-stop operating position, for reducing a positioning error of the object in presence of a torque fluctuation of the feed mechanism, based on the target operating position and a cyclic variation of an operating velocity of the feeder that is caused by the torque fluctuation.
Abstract:
A water jet propulsion watercraft includes, a main engine body, a rotor chamber provided at a rear portion of the main engine body, a crankshaft arranged such that a rear end portion of the crankshaft is disposed in the rotor chamber, the rear end portion having a first connection portion, an output shaft having a second connection portion at a front end of the output shaft, the second connection portion arranged to be connected to the first connection portion of the crankshaft such that the output shaft rotates together with the crankshaft about a rotational center axis of the crankshaft, a rotor unit housed in the rotor chamber and fixed to the output shaft, a fastening member arranged to fasten the first connection portion and the second connection portion, a drive shaft connected to a rear end portion of the output shaft and arranged to be rotated together with the output shaft, and a jet propulsion unit, having an impeller that is coupled to the drive shaft and arranged to suck in and jet out water. A fastening axis of the fastening member differs from the rotational center axis.
Abstract:
A rotation-body controlling apparatus including: a first motor configured to rotate a first rotation body; a second motor configured to rotate a second rotation body; a first rotation amount detecting portion configured to detect a rotation amount of the first rotation body rotated in synchronization with the first motor; a second rotation amount detecting portion configured to detect a rotation amount of a second rotation shaft rotated in synchronization with the second rotation body; a transmitting mechanism configured such that a rotation of the first rotation body is transmittable to the second rotation shaft; and an origin-position detecting portion configured to detect an origin position of a rotation phase of the first rotation body on the basis of a phase of the first rotation body at a time when the second rotation amount detecting portion has detected a rotation of the second rotation shaft, where the rotation of the first rotation body operated by the first motor is transmitted to the second rotation shaft via the transmitting mechanism.