Patent classifications
C03B27/044
HEATING AND COOLING APPARATUS HAVING MOISTURE REMOVAL FUNCTION FOR TESTING ELECTRICAL CHARACTERISTIC OF SEMICONDUCTOR ELEMENT USING PROBE SYSTEM
The present disclosure relates to a heating and cooling apparatus having a moisture removal function for testing electrical characteristics of a semiconductor element using a probe system, in which the heating and cooling apparatus is configured to be capable of hot and cold measurement of a wafer or a flat panel display product and to be capable of efficiently removing water droplets generated at the time of cooling by adding a vortex tube to a thermo-stream provided in a probe head of the probe system and configuring the vortex tube to be interlocked with a moisture removal device.
HEATING AND COOLING APPARATUS HAVING MOISTURE REMOVAL FUNCTION FOR TESTING ELECTRICAL CHARACTERISTIC OF SEMICONDUCTOR ELEMENT USING PROBE SYSTEM
The present disclosure relates to a heating and cooling apparatus having a moisture removal function for testing electrical characteristics of a semiconductor element using a probe system, in which the heating and cooling apparatus is configured to be capable of hot and cold measurement of a wafer or a flat panel display product and to be capable of efficiently removing water droplets generated at the time of cooling by adding a vortex tube to a thermo-stream provided in a probe head of the probe system and configuring the vortex tube to be interlocked with a moisture removal device.
Manufacture of laminated glazing
A laminated includes two bent glass substrates, a polymer interlayer between the glass substrates, and a notch or orifice cut in an entire thickness of the glazing. The glazing includes a border of compressive edge stresses obtained by general controlled cooling of the substrates in a paired state so that compressive stresses are generated at the border, and a local compression zone, different from the border, and obtained by local controlled cooling of a local area of a main surface of the glazing so that compressive stresses are generated in theid local compression zone. The notch or orifice is located in the local compression zone and made in the substrates in a paired state after forming the local compression zone so that cut contours of the substrates in the notch or orifice have a perfect superposition. The compressive edge stresses of the cut contours are greater than 4 MPa.
BENDING OF GLASS SHEETS COMPRISING LOCALIZED COOLING
A device and a process for manufacturing a bent individual glass sheet including a peripheral compression belt, wherein the process includes the heating thereof to its bending temperature in a furnace, the individual bending thereof, and the general cooling thereof. One zone of the sheet at least partially inside the peripheral compression belt, referred to as locally cooled zone, undergoes, after the heating of the sheet, a local cooling faster than the general cooling, when the sheet is at a temperature of at least 530 C. The cutting of the sheet on the locally cooled zone creates edges having edge compressive stresses.
BENDING OF GLASS SHEETS COMPRISING LOCALIZED COOLING
A device and a process for manufacturing a bent individual glass sheet including a peripheral compression belt, wherein the process includes the heating thereof to its bending temperature in a furnace, the individual bending thereof, and the general cooling thereof. One zone of the sheet at least partially inside the peripheral compression belt, referred to as locally cooled zone, undergoes, after the heating of the sheet, a local cooling faster than the general cooling, when the sheet is at a temperature of at least 530 C. The cutting of the sheet on the locally cooled zone creates edges having edge compressive stresses.
Glass sheet support structure
A support structure for supporting a heated glass sheet in connection with a bending operation includes a frame, a support ring adjustably supported on the frame for supporting a peripheral portion of the glass sheet, and multiple rib assemblies associated with the frame. Each rib assembly includes a laterally extending rib supported on the frame and multiple spaced apart support members connected to the rib and configured such that at least a portion of each support member is adjustable with respect to the rib. Furthermore, each support member is configured to contact a respective inner portion of the glass sheet to support the respective inner portion of the glass sheet until the glass sheet has been sufficiently cooled.
METHOD FOR TEMPERING GLASS SHEETS
A method for heat strengthening or tempering glass sheets of a glass load containing several glass sheets, in which the glass sheets are heated in a furnace to a tempering temperature and the glass load is transferred at a transfer speed (W) away from the furnace into a tempering unit, in which the actual quenching is conducted by blasting cooling air onto both surfaces of the glass sheets. By an initial blasting unit, located between the furnace and the quenching unit and divided into initial blasting zones in the direction transverse to the motion of the glass, is blasted compressed air onto the surface of the leading and trailing edges of a glass sheet, to the direction of which normal it is desired to straighten the end in order to decrease end-edge kink.
METHOD FOR TEMPERING GLASS SHEETS
A method for heat strengthening or tempering glass sheets of a glass load containing several glass sheets, in which the glass sheets are heated in a furnace to a tempering temperature and the glass load is transferred at a transfer speed (W) away from the furnace into a tempering unit, in which the actual quenching is conducted by blasting cooling air onto both surfaces of the glass sheets. By an initial blasting unit, located between the furnace and the quenching unit and divided into initial blasting zones in the direction transverse to the motion of the glass, is blasted compressed air onto the surface of the leading and trailing edges of a glass sheet, to the direction of which normal it is desired to straighten the end in order to decrease end-edge kink.
Thermally strengthened architectural glass and related systems and methods
A strengthened architectural glass or glass-ceramic sheet or article as well as processes and systems for making the strengthened architectural glass or glass-ceramic sheet or article is provided. The process comprises cooling the architectural glass sheet by non-contact thermal conduction for sufficiently long to fix a surface compression and central tension of the sheet. The process results in thermally strengthened architectural glass sheets that may be incorporated into one or more panes in single or multi-pane windows.
Thermally strengthened architectural glass and related systems and methods
A strengthened architectural glass or glass-ceramic sheet or article as well as processes and systems for making the strengthened architectural glass or glass-ceramic sheet or article is provided. The process comprises cooling the architectural glass sheet by non-contact thermal conduction for sufficiently long to fix a surface compression and central tension of the sheet. The process results in thermally strengthened architectural glass sheets that may be incorporated into one or more panes in single or multi-pane windows.