C25D13/00

METHOD FOR PRODUCING INSULATED ELECTRIC WIRE

A method for producing an insulated electric wire of the present invention is a method for forming an insulating coating film on a surface of an electric wire by performing baking treatment after forming an insulating layer on the surface of the electric wire by an electrodeposition method using an insulating electrodeposition coating material containing a polymer. Pretreatment of evaporating a solvent in the insulating layer is performed before the baking treatment, and the pretreatment is performed by a near infrared ray heating furnace. In addition, a temperature of the pretreatment is lower than a temperature of the baking treatment.

METHOD FOR PRODUCING INSULATED ELECTRIC WIRE

A method for producing an insulated electric wire of the present invention is a method for forming an insulating coating film on a surface of an electric wire by performing baking treatment after forming an insulating layer on the surface of the electric wire by an electrodeposition method using an insulating electrodeposition coating material containing a polymer. Pretreatment of evaporating a solvent in the insulating layer is performed before the baking treatment, and the pretreatment is performed by a near infrared ray heating furnace. In addition, a temperature of the pretreatment is lower than a temperature of the baking treatment.

Electrodeposition coating method and electrodeposition coating apparatus

An electrodeposition coating method includes a degreasing/cleaning step, a chemical conversion step, and an electrodeposition coating layer formation step. The degreasing/cleaning step includes a degreasing step of ultrasonically vibrating a degreasing solution in which a target object is immersed, using an ultrasonic vibrator. The electrodeposition coating layer formation step includes: a first electrodeposition step; a first rinsing step; a rinse water removal/reduction step of removing or reducing rinse water on a rinse water stagnating surface of the target object; a thermal flow step of allowing the first electrodeposition coating film to thermally flow so that the first electrodeposition coating film formed on a portion of the target object near a first counter electrode has a higher electrical resistance than the first electrodeposition coating film formed on a portion of the target object far from the first counter electrode; and a second electrodeposition step.

Device for impregnation using electrophoresis
11499244 · 2022-11-15 ·

Disclosed is a device for impregnation using electrophoresis, which includes a chassis, a storing unit, a pipeline unit, an injection unit, a bearing tank, a first driver element and a second driver element, wherein the storing unit has several storage tanks storing the materials for impregnation. The pipeline unit has several pipelines connecting the storage tanks and the injection unit. The injection unit has a static mixing tube and an injector, so as to inject said materials for impregnation into the several slide sets located in the bearing tank. The first driver element drives the bearing tank to reciprocate transversely, and the second driver element drives the injection unit to shift up and down. The device can perform impregnation operations automatically, with quick operation and low operational difficulty level, while the prepared gel has high quality stability and yield.

Device for impregnation using electrophoresis
11499244 · 2022-11-15 ·

Disclosed is a device for impregnation using electrophoresis, which includes a chassis, a storing unit, a pipeline unit, an injection unit, a bearing tank, a first driver element and a second driver element, wherein the storing unit has several storage tanks storing the materials for impregnation. The pipeline unit has several pipelines connecting the storage tanks and the injection unit. The injection unit has a static mixing tube and an injector, so as to inject said materials for impregnation into the several slide sets located in the bearing tank. The first driver element drives the bearing tank to reciprocate transversely, and the second driver element drives the injection unit to shift up and down. The device can perform impregnation operations automatically, with quick operation and low operational difficulty level, while the prepared gel has high quality stability and yield.

Coatings for Increasing Near-Infrared Detection Distances

A method for increasing a detection distance of a surface of an object illuminated by near-IR electromagnetic radiation, including: (a) directing near-IR electromagnetic radiation from a near-IR electromagnetic radiation source towards an object at least partially coated with a near-IR reflective coating that increases a near-IR electromagnetic radiation detection distance by at least 15% as measured at a wavelength in a near-IR range as compared to the same object coated with a color matched coating which absorbs more of the same near-IR radiation, where the color matched coating has a ΔE color matched value of 1.5 or less when compared to the near-IR reflective coating; and (b) detecting reflected near-IR electromagnetic radiation reflected from the near-IR reflective coating. A system for detecting proximity of vehicles is also disclosed.

Coatings for Increasing Near-Infrared Detection Distances

A method for increasing a detection distance of a surface of an object illuminated by near-IR electromagnetic radiation, including: (a) directing near-IR electromagnetic radiation from a near-IR electromagnetic radiation source towards an object at least partially coated with a near-IR reflective coating that increases a near-IR electromagnetic radiation detection distance by at least 15% as measured at a wavelength in a near-IR range as compared to the same object coated with a color matched coating which absorbs more of the same near-IR radiation, where the color matched coating has a ΔE color matched value of 1.5 or less when compared to the near-IR reflective coating; and (b) detecting reflected near-IR electromagnetic radiation reflected from the near-IR reflective coating. A system for detecting proximity of vehicles is also disclosed.

Cationic electrodeposition coating composition

A cationic electrodeposition paint composition comprising a cationic base-containing resin (A), a blocked polyisocyanate compound (B), and a modified imidazole (C) having a specific structure, wherein the cationic base-containing resin (A) is a cationic base-containing epoxy resin and/or a cationic base-containing acrylic resin.

Cationic electrodeposition coating composition

A cationic electrodeposition paint composition comprising a cationic base-containing resin (A), a blocked polyisocyanate compound (B), and a modified imidazole (C) having a specific structure, wherein the cationic base-containing resin (A) is a cationic base-containing epoxy resin and/or a cationic base-containing acrylic resin.

Method and device for laser-assisted electrochemical composite deposition using rifling-type hollow rotating electrode

The present invention discloses a method and a device for laser-assisted electrochemical composite deposition using a rifling-type hollow rotating electrode, which relate to the field of micro-composite processing in special processing technologies. A center of a laser beam is allowed to pass through a rifling-type hollow rotating electrode and focus onto a cathode substrate. When the rifling-type hollow rotating electrode is rotated at a constant speed, an electrodeposition solution rotates in the rifling-type hollow rotating electrode and generates a certain centripetal force to improve the precision and localization of deposition. During the process of the present invention, an internal rifling structure of the electrode is rotated at a high speed so that the deposition solution generates a centripetal force. The internal rifling structure and an external helical structure of the rifling-type hollow rotating electrode make the deposition solution move upward to form a “self-circulation” system.