Abstract:
A unidirectional conductive joint assembly includes a unidirectional conductive device, wherein a conductive sheet is electrically connected to a conductive end of the unidirectional conductive device, another conductive sheet is electrically connected to another conductive end of the unidirectional conductive device, insulating films are laminated on two sides of each conductive sheet, and each conductive sheet is sandwiched between two insulating films; and the two conductive ends of the unidirectional conductive device are insulated and sealed in an insulating package, portions of the conductive sheets on the sides of the insulating films close to the unidirectional conductive device are first conductive portions, the first conductive portions and film sides of the insulating films close to the first conductive portions are all insulated and sealed in the insulating package, and the conductive sheets and the insulating films are all partially located outside the insulating package.
Abstract:
The disclosure relates to a laminated glass and a head-up display system. The laminated glass includes a first transparent substrate, a second transparent substrate, and an adhesive film. The laminated glass has a light-transmitting region and a light-blocking region surrounding at least part of a periphery of the light-transmitting region. The adhesive film is disposed between the first transparent substrate and the first transparent substrate and configured to adhere the first transparent substrate and the second transparent substrate. The light-transmitting region has a visible light transmittance greater than or equal to 70%. The light-blocking region has a visible light transmittance less than or equal to 5%. The light-blocking region has a first region located below the light-transmitting region, and the first region has one or more first function display regions for displaying of image.
Abstract:
A vehicle window assembly and a vehicle are provided. The vehicle window assembly includes a vehicle window glass and a light-guiding assembly. The vehicle window glass includes a first transparent plate, an intermediate layer, and a second transparent plate, and the second transparent plate defines a through-hole. The light-guiding assembly includes a light-guiding member and a fixing member. The light-guiding member is at least partially disposed in the through-hole, and a light-outputting surface of the light-guiding member is disposed facing towards an inner sidewall of the through-hole. The fixing member is disposed on a surface of the second transparent plate facing away from the first transparent plate, and the fixing member and the second transparent plate define an accommodating space configured to accommodate a light source. A light-emitting surface of the light source is disposed facing towards a light-inputting surface of the light-guiding member.
Abstract:
A vehicle window assembly and a vehicle are provided. The vehicle window assembly includes a vehicle window glass, at least two sensors, and a heating component. The vehicle window glass has a functional region. At least two signal transmission windows are defined at intervals in the functional region. The at least two sensors are mounted at an inner side of the vehicle window glass. Positions of the at least two sensors are in a one-to-one correspondence with positions of the at least two signal transmission windows. The heating component includes at least one linear heating element. At least one signal transmission window of the at least two signal transmission windows is extended through by the at least one linear heating element multiple times. At least another signal transmission window of the at least two signal transmission windows is not extended through by the at least one linear heating element.
Abstract:
A display window and a vehicle are provided. The display window includes window glass and at least one projection device. The at least one projection device is configured to generate at least one beam of projection light, and correspondingly project the at least one beam of projection light onto at least one projection region of the window glass to correspondingly form at least one projection image. At least 90% of each of the at least one beam of projection light is S-polarized light. The at least one beam of projection light includes first projection light. The at least one projection region includes a first projection region. The first projection region has a first reflectivity of at least 25% for the first projection light projected at the first angle of incidence.
Abstract:
A dimming member includes a first electrode, a second electrode, and a dimming film. The dimming film includes a first substrate, a first conductive layer, a dimming layer, a second conductive layer, and a second substrate that are stacked in sequence. The dimming layer, the first conductive layer, and the second conductive layer cooperatively define an accommodating space. The first electrode and the second electrode are disposed in the accommodating space. The first electrode is attached to the first conductive layer at one side of the first conductive layer away from the first substrate and is electrically connected to the first conductive layer. The second electrode is attached to the second conductive layer at one side of the second conductive layer away from the second substrate and is electrically connected to the second conductive layer.
Abstract:
A head up display glass and a head up display system are provided. The head up display glass includes an outer glass sheet, an inner glass sheet, an intermediate layer, a transparent conducting coating, and an enhanced reflection coating. The outer glass sheet has a first surface and a second surface opposite the first surface. The inner glass sheet has a third surface and a fourth surface opposite the third surface. The second surface faces the third surface. The intermediate layer is disposed between the second surface and the third surface. The transparent conducting coating is disposed on the second surface or the third surface. The enhanced reflection coating is disposed on the fourth surface. The transparent conducting coating has a reflectivity for P-polarized light not less than 6%. The enhanced reflection coating has a reflectivity for P-polarized light not less than 10%.
Abstract:
A laminated glass mounted with a camera is provided. The laminated glass includes an external glass panel, an internal glass panel, and an intermediate bonding layer. A bracket is fixed to a fourth surface of the laminated glass. The camera is mounted on the bracket. An opaque resin layer is further disposed between the fourth surface and the bracket. The opaque resin layer has a visible light transmittance less than or equal to 3%. For each of the first surface, the second surface, the third surface, and the fourth surface of the laminated glass, no dark ceramic ink layer is disposed in a region which surrounds each optical transmitting window and has a periphery at least 10 mm away from a periphery of said each optical transmitting window.
Abstract:
A device and method for bending vehicle glass are provided in the disclosure. The device for bending vehicle glass includes a concave solid lower mold, at least one blowing pipe, and multiple extraction pipes. The concave solid lower mold includes a base and a top plate covered on the base. The base and the top plate cooperatively define an accommodating space. Multiple first partitions are arranged in the accommodating space to divide the accommodating space into multiple subspaces. The top plate has a carrying surface that is concave and away from the base. The top plate has multiple through holes that are in communication with the accommodating space and arranged at intervals. Each of the multiple subspaces corresponds to at least one of the multiple through holes.
Abstract:
Coating liquid used for forming an ultraviolet absorption coating on a surface of an object such as glass and the like, ultraviolet absorption glass arranged with the ultraviolet absorption coating formed by the coating liquid, and a method for preparing the ultraviolet absorption glass. The coating liquid used for forming the ultraviolet absorption coating, the ultraviolet absorption glass and the method for forming the ultraviolet absorption glass, by storing and releasing electrons excited by ultraviolet lights in an ultraviolet absorber, reduce the excited electrons that are gradually accumulated during a process in which the ultraviolet absorber absorbs the ultraviolet lights, thus protecting the ultraviolet absorber and a silicon dioxide matrix, preventing the ultraviolet absorption glass from discoloring or devitrifying, ensuring weather resistance of the ultraviolet absorption coating and ensuring color consistency of the ultraviolet absorption glass.