Patent classifications
G01R33/028
Magnetic sensor using multiple gradiometers for angle detection
An example device includes a first gradiometer that includes a first set of sensing elements aligned along a first axis, a second gradiometer that includes a second set of sensing elements aligned along a second axis, and a controller. The first set of sensing elements and the second set of sensing elements may be configured to sense a set of magnetic field components that are perpendicular to the rotational axis, wherein the first axis is in a first plane and the second axis is in a second plane, and the first plane and the second plane may be perpendicular to a rotational axis of a rotatable object. The controller may obtain, via the first gradiometer and the second gradiometer, the set of components of the magnetic field. The controller may then determine, based on obtaining the set of components of the magnetic field, the angular position of the rotatable object.
MEASURING DEVICE FOR WEAK AND SLOWLY CHANGING MAGNETIC FIELDS, IN PARTICULAR FOR BIOMAGNETIC FIELDS
A magnetic field measuring device having a cantilevered, mechanically vibratable, rectangular substrate strip, at least one flat side of the substrate strip being coated with a magnetostrictive material system, further having drive means designed for the temporally periodic exertion of a force component directed perpendicular to the flat sides of the substrate strip on at least one part of a flat side of the substrate strip with a predetermined excitation frequency and having a detection device for detecting an electrical signal generated by the vibration of the substrate strip, wherein a. the substrate strip is formed from a material with a modulus of elasticity greater than 5 GPa and b. the excitation frequency is set up as a function of the dimensions of the substrate strip in such a way that the substrate strip oscillates in mechanical resonance and forms a U-mode, and c. the detection device has an induction coil which surrounds the substrate strip in a contactless manner and has a coil axis aligned along the substrate strip.
CURRENT MEASUREMENT DEVICE, CURRENT MEASUREMENT METHOD, AND NON-TRANSITORY COMPUTER READABLE STORAGE MEDIUM
A current measurement device (1 and 2) is for measuring a current (I) flowing through measurement target conductors (MC1 and MC2), and the current measurement device includes: a plurality of triaxial magnetic sensors (11, 12, and 13) disposed so that a magnetic sensing direction and a relative position have a prescribed relationship; a noise remover (25a) configured to remove noise components included in detection results of the plurality of triaxial magnetic sensors; a sign adder (25b) configured to add a sign to the detection results from which the noise components have been removed, based on sign information of each of the detection results of the plurality of triaxial magnetic sensors obtained at a specific point in time; and a current calculator (25c and 25d) configured to calculate a current flowing through the measurement target conductors by using the detection results to which the sign has been added by the sign adder.
Directed emitter/sensor for electromagnetic tracking in augmented reality systems
An electromagnetic tracking system includes a hand held controller including an electromagnetic emitter configured to generate an electromagnetic field characterized by an electromagnetic field pattern and a first electromagnetic reflector positioned adjacent the electromagnetic emitter and configured to form a modified electromagnetic field pattern. The electromagnetic tracking system also includes a head mounted augmented reality display including an electromagnetic sensor configured to sense the electromagnetic field and a second electromagnetic reflector adjacent to sensor configured to optimally sense electromagnetic field pattern in a region of interest.
Systems, methods and apparatuses for guidance and alignment in electric vehicles wireless inductive charging systems
An apparatus for determining a relative position of a wireless power transmitter from a wireless power receiver is provided. The apparatus comprises a plurality of sense coils, each configured to generate a respective signal under influence of an alternating magnetic field comprising a plurality of wave pulses, each wave pulse occurring in a respective time slot of a plurality of time slots. The apparatus further comprises a processor configured to determine the relative position of the wireless power transmitter from the wireless power receiver based on the respective signal from each of the plurality of sense coils.
Systems, methods and apparatuses for guidance and alignment in electric vehicles wireless inductive charging systems
An apparatus for determining a relative position of a wireless power transmitter from a wireless power receiver is provided. The apparatus comprises a plurality of sense coils, each configured to generate a respective signal under influence of an alternating magnetic field comprising a plurality of wave pulses, each wave pulse occurring in a respective time slot of a plurality of time slots. The apparatus further comprises a processor configured to determine the relative position of the wireless power transmitter from the wireless power receiver based on the respective signal from each of the plurality of sense coils.
Semiconductor Component, System and Method for Checking A Soldered Joint
In an embodiment a semiconductor component includes a laterally extending contact area laterally interrupted in such a way that material of the contact area laterally delimits at least one recess, the contact area configured to be at a potential, wherein at least one first recess is formed laterally as a circular ring around a lateral center point of the contact area, and wherein at least one second recess extends laterally in a straight line through the lateral center point of the contact area so that the contact area is divided by a corresponding recess into two halves which are not connected by material of the contact area.
MAGNETIC FIELD DISTORTION DETECTION AND CORRECTION IN A MAGNETIC LOCALIZATION SYSTEM
Aspects of the present disclosure are directed to systems and apparatuses for detecting and correcting for magnetic field distortions within a magnetic field used for medical magnetic localization systems. In one example embodiment, a system is disclosed including a magnetic field generator and a magnetic detection sensor. The magnetic field generator generates the magnetic field for localization of a catheter within the patient. The magnetic detection sensor includes a plurality of sensor coils positioned at fixed distances and orientations relative to one another. Each of the sensor coils sense the magnetic field within a sensing region aligned with a longitudinal axis of the sensor coil, and outputs an electrical signal indicative of the sensed magnetic field. The plurality of sensing coils form two substantially contiguous sensing regions, a first continuous sensing region above the magnetic detection sensor, and a second continuous sensing region below the magnetic detection sensor.
METHOD FOR MAPPING NFC FIELD STRENGTH AND LOCATION ON MOBILE DEVICES
Various embodiments are directed to a method and system for mapping or visualizing the magnetic fields and their associated field strengths of an object, such as a mobile computing device. An example source of the magnetic fields may be a near-field communication (NFC) reader configured in the object. A computer vision system or device may track a visual marker arranged near or on a magnetic field strength detector in order to associate, match, or map the magnetic field strength measurement readings of the detector at different positions or locations on the object. The computer vision system may generate and display a heat map of the object based on at least the magnetic field strength measurements and their relative positions.
ELECTROMAGNET CONTROL DEVICE AND ELECTROMAGNET SYSTEM
A target value of magnetic flux density and magnetic flux density actually obtained are made to coincide precisely with each other. An electromagnet control device comprises a current value determining unit for determining, based on a magnetic flux density instruction value, a value of current that is made to flow through a coil. The current value determining unit is constructed to execute a second process for determining, based on a second function, a value of the current, if the magnetic flux density is to be decreased from that in a first magnetization state, and a fourth process for expanding or reducing the second function by use of a first scaling ratio for transforming it to a fourth function, and determining, based on the fourth function obtained after above transformation, a value of the current, if the magnetic flux density is to be decreased from that in a third magnetization state.