G01R27/2641

SHEET ELECTRICAL RESISTANCE MEASURING DEVICE

A sheet electrical resistance measuring device includes: a housing having a gap for receiving a sheet therein; a sheet pulling member that is disposed in the housing and pulls the sheet inserted into the gap; a stopper that is disposed in the housing and causes the sheet pulling member to stop pulling the sheet; and a pair of electrodes that is disposed in the housing and measures electrical resistance of the sheet which is stopped and brought into contact with the pair of electrodes.

SHEET ELECTRIC RESISTANCE MEASURING INSTRUMENT

A sheet electric resistance measuring instrument includes first and second housings that are paired with each other and that sandwich a sheet from both sides of the sheet, a pair of electrodes that are provided on the first housing and that measure an electric resistance of the sheet sandwiched between the pair of electrodes and the second housing, and a contact member that is disposed between the pair of electrodes on the first housing and that is brought into contact with the sheet.

Tuning of narrowband near-field probes
11585840 · 2023-02-21 · ·

An apparatus includes a near-field probe having loops or coils of electrically-conductive material, where the near-field probe is configured to generate a magnetic field. The apparatus also includes a power amplifier configured to drive the near-field probe. The apparatus further includes a shunt capacitance coupled in parallel across the loops or coils of the near-field probe. The shunt capacitance and an inductance of the loops or coils of the near-field probe form part of a resistive-inductive-capacitive (RLC) network. The RLC network is configured to transform a smaller resistance of the near-field probe into a larger resistance. In some cases, the apparatus may include multiple near-field probes coupled in series, and the power amplifier may be configured to drive the multiple near-field probes. For each near-field probe, the apparatus may include a shunt capacitance coupled in parallel across the loops or coils of the near-field probe.

Supply tube assembly for monitoring a directed stream measuring the liquid of an agricultural product application rate through a supply tube

A supply tube assembly for measuring a liquid agricultural product application rate. An upstream portion of a supply tube has an upstream portion outlet end. A downstream portion has a downstream portion inlet end. The sensor body assembly includes a sensor body, a first sensing plate, and a second sensing plate. The sensor body has a sensor inlet end positioned to receive an inlet flow of the liquid agricultural product from the upstream portion and a sensor outlet end positioned to receive an outlet flow of the liquid agricultural product. The sensor body is an enclosure having a cross sectional area larger than the cross sectional area of the upstream portion of the supply tube and the downstream portion of the supply tube. Electronic components are configured to measure the liquid agricultural product application rate between the first sensing plate and the second sensing plate.

SUPPLY TUBE ASSEMBLY FOR MONITORING A DIRECTED STREAM MEASURING THE LIQUID OF AN AGRICULTURAL PRODUCT APPLICATION RATE THROUGH A SUPPLY TUBE

A supply tube assembly for measuring a liquid agricultural product application rate. An upstream portion of a supply tube has an upstream portion outlet end. A downstream portion has a downstream portion inlet end. The sensor body assembly includes a sensor body, a first sensing plate, and a second sensing plate. The sensor body has a sensor inlet end positioned to receive an inlet flow of the liquid agricultural product from the upstream portion and a sensor outlet end positioned to receive an outlet flow of the liquid agricultural product. The sensor body is an enclosure having a cross sectional area larger than the cross sectional area of the upstream portion of the supply tube and the downstream portion of the supply tube. Electronic components are configured to measure the liquid agricultural product application rate between the first sensing plate and the second sensing plate.

Apparatus for measuring wideband dielectric measurements of objects using a bistatic antenna
11320558 · 2022-05-03 · ·

A device implementing antennas transmitting and receiving electromagnetic waves for measuring the bulk dielectric properties of a material under test having over a pre-defined surface area. The sample of the material under test might be cylindrical in shape. The device includes a spacer of known dielectric properties and geometries, placed between the material under test and the transmitting and receiving antennas, as well as at least one plate of a material having known electromagnetic properties placed below the material under test.

Flow sensor apparatus for monitoring a directed stream of an agricultural product

A flow sensor apparatus for monitoring a directed stream of an agricultural product from an application port of a supply tube. The directed stream has a target directed portion and an off-target portion. A sensor housing includes a conical flow receiving element and a sensor body. The receiving element has an inlet orifice at a first end and a receiving element outlet at a second end. The first end is smaller than the second end. The sensor body has a sensor inlet end positioned to receive a target directed portion of the directed stream from the receiving element outlet of the conical flow receiving element wherein an off-target portion of the directed stream is not sensed. The sensor housing and sensor element are positioned external to the application port and thus positioned to provide measurement, targeting, and timing of the agricultural product.

Specific conductivity measurement method, recording medium recording specific conductivity calculation program, and specific conductivity measurement system

A specific conductivity measurement method includes: performing first measurement to obtain a resonance frequency f.sub.1 that is outputted to a measuring device when the first and second dielectric flat plates each have a thickness t.sub.1, and an unloaded Q.sub.u1 that corresponds to the resonance frequency f.sub.1; performing second measurement to obtain a resonance frequency f.sub.2 that is outputted to the measuring device when the first and second dielectric flat plates each have a thickness t.sub.2 that is different from the thickness t.sub.1, and an unloaded Q.sub.u2 that corresponds to the resonance frequency f.sub.2; and calculating a specific conductivity σ.sub.r of the copper foil and the first and second conductor flat plates based on an arithmetic equation that includes the resonance frequency the unloaded Q.sub.u1, the resonance frequency f.sub.2, and the unloaded Q.sub.u2.

TUNING OF NARROWBAND NEAR-FIELD PROBES
20220065911 · 2022-03-03 ·

An apparatus includes a near-field probe having loops or coils of electrically-conductive material, where the near-field probe is configured to generate a magnetic field. The apparatus also includes a power amplifier configured to drive the near-field probe. The apparatus further includes a shunt capacitance coupled in parallel across the loops or coils of the near-field probe. The shunt capacitance and an inductance of the loops or coils of the near-field probe form part of a resistive-inductive-capacitive (RLC) network. The RLC network is configured to transform a smaller resistance of the near-field probe into a larger resistance. In some cases, the apparatus may include multiple near-field probes coupled in series, and the power amplifier may be configured to drive the multiple near-field probes. For each near-field probe, the apparatus may include a shunt capacitance coupled in parallel across the loops or coils of the near-field probe.

Near-field electrostatic communications system
11099222 · 2021-08-24 ·

A near-field capacitive data communication system that uses a variable capacitive device such as a PIN diode to change the capacitance of a conductive plate in response to either a high or low data signal. A detector attached to a second conductive plate that is in proximity to the first conductive plate measures the capacitance of the first conductive plate and outputs a corresponding data signal. The technique is wireless, since the two conductive plates are not in electrical contact with one-another, but rather share their static electric fields. A microcontroller can act as a detector by baselining the capacitance of the first conductive plate when its capacitance is in the low capacitance state. The technique is ideal for communication between a pair of toys that can be brought in close proximity to one-another. Since no radio frequencies are used, no special testing or governmental electromagnetic compatibility rules apply.