Patent classifications
G01N27/226
MEASUREMENT OF ELECTRODE LENGTH IN A MELTING FURNACE
The disclosure relates to apparatuses melting batch materials, the apparatuses comprising a vessel; an electrode assembly comprising an electrode and at least one detection component coupled to the electrode; and at least one device configured to measure an electrical or optical property of the electrode assembly. Also disclosed herein are electrode assemblies for the optical or electrical detection of electrode length, and apparatuses comprising such electrode assemblies.
Oil deterioration detector, sensor cover of oil deterioration detector, and method of measuring degree of oil deterioration
Disclosed is a device including a sensor configured to measuring an electrical characteristics of oil; a main body having the sensor in a sideward-facing orientation at one end of an elongated shape thereof; and a sensor cover having a base part configured to be attached to the main body; a tip head part having an arcuate shape or an annular shape being greater in size in a radial direction with respect to the sensor, disposed in a manner protruding at a tip side of the main body with respect to the sensor; and a connection part including a first connecting pillar connecting the base part and the tip head part and a second connecting pillar having a width smaller than a width the first connecting pillar.
Methods for generating pH/ionic concentration gradient near electrode surfaces for modulating biomolecular interactions, and bubble detection using electrodes
Device and methods for use in a biosensor comprising a multisite array of test sites, the device and methods being useful for modulating the binding interactions between a (biomolecular) probe or detection agent and an analyte of interest from a biological by modulating the pH or ionic gradient near the electrodes in such biosensor. An electrochemically active agent that is suitable for use in biological buffers for changing the pH of the biological buffers. Method for changing the pH of biological buffers using the electrochemically active agents. The methods of modulating the binding interactions provided in a biosensor, analytic methods for more accurately controlling and measuring the pH or ionic gradient near the electrodes in such biosensor, and analytic methods for more accurately measuring an analyte of interest in a biological sample.
CAPACITIVE IMAGING DEVICE AND METHOD USING ROW AND COLUMN ELECTRODES
A capacitive imaging method or device using an array of row electrodes 101 and column electrodes 102 on a substrate 100, wherein cross-capacitance between row and column electrodes is obtained from row electrode 101 self-capacitance measured with the remaining electrodes grounded, column electrode 102 self-capacitance measured with the remaining electrodes grounded, and combined row and column electrode self-capacitance measured with the remaining electrodes grounded. A preferred embodiment is a hand-held wall scanner for detecting hidden features having a two-dimensional display the size of the array and located over it. Hidden features influencing row-to-column cross-capacitances are thus imaged in real size and at their real location.
Loosening Detection Structure and Loosening Detection Method Using Said Structure
A looseness detection structure includes: a structure (transducer) T which is formed on a surface of a cable; a screw which tightens and fixes the cable in contact with the structure T; and a terminal (detection unit) which transmits a transmission signal to the structure T, receives a reception signal returning after propagating through the structure T, and detects the loosening of the screw based on a change in the reception signal.
CellDrum electrode arrangement for measuring mechanical stress
The invention pertains to a CellDrum electrode arrangement for measuring mechanical stress, comprising a mechanical holder (1) and a non-conductive membrane (4), whereby the membrane (4) is at least partially fixed at its circumference to the mechanical holder (1), keeping it in place when the membrane (4) may bend due to forces acting on the membrane (4), the mechanical holder (1) and the membrane (4) forming a container, whereby the membrane (1) within the container comprises an cell-membrane compound layer or biological material (3) adhered to the deformable membrane 4 which in response to stimulation by an agent may exert mechanical stress to the membrane (4) such that the membrane bending stage changes whereby the container may be filled with an electrolyte, whereby an electric contact (2) is arranged allowing to contact said electrolyte when filled into to the container, whereby within a predefined geometry to the fixing of the membrane (4) an electrode (7) is arranged, whereby the electrode (7) is electrically insulated with respect to the electric contact (2) as well as said electrolyte, whereby mechanical stress due to an agent may be measured as a change in capacitance.
MOVABLE ELECTRIC DEVICE
The present disclosure provides a movable electric device. The movable electric device includes a movable device body and a contact detection electrode. The movable device body has an electric drive means. The contact detection electrode is mounted on the movable device body. When the contact detection electrode _contacts diffusible dirt, a resistance, capacitance or impedance of the contact detection electrode varies.
Electrical device provided with a moisture sensor
An electrical device including: voltage carrying components, a solid insulation system configured to electrically insulate the voltage carrying components, and a moisture sensor configured to detect moisture in the solid insulation system, wherein the moisture sensor includes: a capacitor having: a first electrode, a second electrode, and a dielectric material arranged between the first electrode and the second electrode, wherein the solid insulation system forms the dielectric material, the capacitance of the capacitor providing an indication of a moisture level in the dielectric material.
NANOSTRUCTURE ARRAY BASED SENSORS FOR ELECTROCHEMICAL SENSING, CAPACITIVE SENSING AND FIELD-EMISSION SENSING
The present invention relates to utilizing individually addressable nanostructure arrays as nano electrodes for multianalyte electrochemical sensing via utilizing various electrochemical spectroscopy, capacitive and field emission techniques. In certain aspects, the invention provides devices and arrangements comprising at least two individually addressable nanostructures in an array on a substrate, and uses thereof. In other certain aspects, the invention features systems comprising the device and a chip holder, and further comprising hardware and software.
CAPACITIVE BIOSENSOR AND FABRICATING METHOD THEREOF
A capacitive biosensor is provided. The capacitive biosensor includes: a transistor, an interconnect structure on the transistor, and a passivation layer on the interconnect structure. The interconnect structure includes a first metal structure on the transistor, a second metal structure on the first metal structure, and a third metal structure on the second metal structure. The third metal structure includes a first conductive layer, a second conductive layer, and a third conductive layer that are sequentially stacked. The passivation has an opening exposing a portion of the third metal structure. The capacitive biosensor further includes a sensing region on the interconnect structure. The sensing region includes a first sensing electrode and a second sensing electrode. The first sensing electrode is formed of the third conductive layer, and the second sensing electrode is disposed on the passivation layer.