Abstract:
An apparatus for monitoring biological information is provided. The apparatus includes a detection part configured to detect a signal indicative of the biological information of a subject and a judging part configured to judge the biological information to identify an attribute of the biological information. The apparatus further includes a storage part configured to store the attribute of the biological information together with a time that the attribute is stored and a producing part configured to produce a signal to display the attribute in a chart defined by a first axis representing a cyclic time series and a second axis representing a time series within a cycle of the cyclic time series.
Abstract:
In a portable electrocardiograph, combinations of analysis results corresponding to analysis items of an electrocardiographic waveform based on electrocardiography and display contents are stored in advance in association with each other. Thereby, the portable electrocardiograph analyzes obtained electrocardiographic waveform data to classify the electrocardiographic waveform data by the analysis items based on electrocardiography. It collates a classification result being classified and the combinations of analysis results stored to select a corresponding display content. It displays the selected display content as an evaluation of the electrocardiographic waveform data.
Abstract:
A portable electrocardiograph and method of use are disclosed. According to one aspect of the present invention, a portable electrocardiograph is provided which includes: a rectangular housing having at least a first outer surface and a second outer surface; a first electrode provided on the first outer surface of the housing; an electrode formation face provided on the second outer surface of the housing; and a second electrode provided within the electrode formation face; wherein the electrode formation face includes an electrode region in which the second electrode is positioned and a non-electrode region which is positioned so as to surround the electrode region.
Abstract:
A highly-viscous material coating apparatus for use, e.g. in an automobile coating process, to coat a joint of a workpiece, may be mounted on a robot. It provides improved operation where the workpiece provides a reference surface parallel to the joint, where the workpiece provides a reference surface displaced from the joint at varying distances along the length of the joint, and where the workpiece provides no reference surface. Where a reference surface is available, an extendable spring-biased guide pin of the apparatus moves along the reference surface, and any positional errors are compensated-for by action of the spring. If the distance between the reference surface and the joint varies, the varying distance may be compensated for by various disclosed practices. The apparatus also can be used where no reference surface is provided by retracting the guide pin with respect to the nozzle and by controlling the robot so as to direct the nozzle to the joint. A conventional nozzle may be adapted to dispense a highly-viscous liquid without splattering or otherwise marring the surface of the workpiece by providing the nozzle with a frusto-conic recess.
Abstract:
A powder supplying device (2) includes a case (6) in which a storage portion (6a) is formed for temporarily storing powder (10), the case (6) having an inlet (6b) formed in an upper end of the storage portion (6a), and a rectangular outlet (6c) formed in a lower end of the storage portion (6a); a rotor (7) that is arranged in the case (6) and transports the powder (10) in the storage portion (6a) to the outlet (6c) by rotating; and a mesh body (8) through which the powder (10) that has been transported to the outlet (6c) passes. The powder supplying device (2) supplies the powder (10) onto an upper surface of an electrode foil (5). The rotor (7) has a brush-like shape, with a plurality of hair members (7b) radially implanted pointing radially outward with an axial center (G) of the rotor (7) as the center.
Abstract:
A portable electrocardiograph (1A) includes a body unit (100) arranged with a negative electrode and a detachable unit (110) arranged with a positive electrode, where the detachable unit (110) is detachably attached to the body unit (100). The negative electrode and the positive electrode are both exposed in a state where the detachable unit (110) is united to the body unit (100). In the portable electrocardiograph (1A), an electrocardiographic waveform can be measured both in a state where the detachable unit (110) is united to the body unit (100) and in a state where the detachable unit (110) is separated from the body unit (100). According to such a configuration, it is possible to obtain the portable electrocardiograph in which a degree of freedom in measuring position is enhanced such that the electrocardiographic waveform can be measured by selecting a specific measuring position from a plurality of measuring positions according to a situation.
Abstract:
A manufacturing method of a catalyst container includes forming a plate member that is partially different in plate thickness or material by joining material plates that are different in plate thickness or material by welding; bending the plate member that is partially different in plate thickness or material to form a hollow material, wherein the hollow material is formed by bending the plate member and joining opposing sides thereof by welding; and changing a sectional shape of the hollow material by a spinning process.
Abstract:
A cradle includes a holding portion receiving and holding a device main body of a portable electrocardiograph, a connection terminal electrically connected to an external terminal unit and connected to an output terminal provided in the device main body of the portable electrocardiograph while the device main body of the portable electrocardiograph is attached to the holding portion, and a shield portion (a right sidewall and a left sidewall) covering a negative electrode, a positive electrode and an indifferent electrode provided on an outer surface of the device main body of the portable electrocardiograph while the device main body of the portable electrocardiograph is attached to the holding portion. Thus, occurrence of an accident of electric shock possible in connecting the portable electrocardiograph having a measurement electrode provided on the outer surface of the device main body to the external terminal unit can be prevented.
Abstract:
A portable electrocardiograph having a display function and a display method for the electrocardiograph are disclosed in which the information on display can be easily recognized visually. In measuring an electrocardiographic waveform using an electrocardiograph (1), the electrocardiograph (1) is held in position by a grip including a negative electrode (14) while at the same time pressing a contact section including a positive electrode (16) against an electrode contact portion other than the right hand of the subject. In the electrocardiograph (1), the measurement result such as an electrocardiographic waveform is displayed on a display unit (10) during the measurement operation. The measurement method is divided into what is called the induction mode I in which the contact section including the positive electrode (16) is pressed against the left hand of the subject, and what is called the induction mode II in which the contact section including the positive electrode (16) is pressed against the lower left abdomen of the subject. In the measurement conducted according to induction mode I, the measurement result is displayed in horizontal position on the display (10), while in the measurement conducted in the induction mode II, the measurement result is displayed in vertical position on the display (10).