EP4330506A1 - Verglasung mit rfid-transponder - Google Patents
Verglasung mit rfid-transponderInfo
- Publication number
- EP4330506A1 EP4330506A1 EP22722186.8A EP22722186A EP4330506A1 EP 4330506 A1 EP4330506 A1 EP 4330506A1 EP 22722186 A EP22722186 A EP 22722186A EP 4330506 A1 EP4330506 A1 EP 4330506A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- glazing
- frame
- rfid transponder
- antenna
- rfid
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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Classifications
-
- E—FIXED CONSTRUCTIONS
- E06—DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
- E06B—FIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
- E06B3/00—Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
- E06B3/66—Units comprising two or more parallel glass or like panes permanently secured together
-
- E—FIXED CONSTRUCTIONS
- E06—DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
- E06B—FIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
- E06B3/00—Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
- E06B3/04—Wing frames not characterised by the manner of movement
- E06B3/263—Frames with special provision for insulation
- E06B3/26301—Frames with special provision for insulation with prefabricated insulating strips between two metal section members
Definitions
- the invention relates to glazing with a metallic frame and a glazing unit inserted into the frame, preferably an insulating glazing unit, the frame encompassing the edges of the glazing unit and at the same time covering at least one RFID transponder.
- the RFID transponder can be used as an identification element.
- the glazing is intended in particular to form facade glazing, a window, a door or an interior partition with a corresponding structure.
- RFID transponders are used in a variety of ways to identify objects, for example solid or composite solid material panels, as is known, for example, from EP 2 230 626 A1.
- IGU insulating glazing units
- Such insulating glazing units represent mass-produced, dispatched and also independently traded products which should be clearly identifiable on their way to an end product and possibly also during its maintenance and repair.
- the identifying mark should be invisible from both the inside and outside of the finished window, door or curtain wall.
- the marking should be "readable” from a distance of at least 30 cm.
- the marking should be as forgery-proof as possible, i.e. it should not be easily overwritten or copied.
- insulating glazing units with “electronic” identifiers, in particular identifiers that can be read out by radio, so-called RFID transponders.
- RFID transponders Such insulating glazing units are disclosed, for example, in WO 00/36261 A1, WO 2019/219460 A1, WO 2019/219462 A1 or WO 2007/137719 A1.
- RFID transponder can be protected with a password so that it cannot be overwritten or its radio capability destroyed without considerable effort.
- Known insulating glazing units provided with RFID transponders cannot therefore be used without further ado in metal frame constructions. This reduces the potential area of application of the glazing units marked in this way and thus the acceptance of the corresponding marking solutions by manufacturers and users.
- the invention is therefore based on the object of providing improved glazing with a glazing unit and with a frame construction, the frame construction consisting at least to a considerable extent of metal and which also ensures that the above requirements are met in such installation situations. According to a first aspect of the invention, this object is achieved by a glazing having the features of claim 1 . Expedient developments of the inventive concept are the subject matter of the respective dependent claims.
- the invention comprises glazing, in particular facade glazing, a window, a door or an interior partition, comprising: a frame made of a metallic first frame element, a metallic second frame element and a polymeric third frame element connecting the frame elements at least in sections and preferably completely circumferentially and at least an RFID transponder, the RFID transponder having a dipole antenna and a slot antenna, or the RFID transponder having a dipole antenna and a second RFID
- Transponder has a slot antenna, and the frame encompasses the end faces of the glazing unit and at the same time covers the RFID transponder or transponders in the viewing direction through the glazing unit.
- the glazing according to the invention thus has a dipole antenna and at the same time a slot antenna.
- the present invention is based on the following finding of the inventors:
- an RFID transponder for example when embedding a UHF RFID transponder in the sealing compound of an (insulating) glazing unit and then inserting the The glazing unit in a frame containing metal elements shields the RFID signal from the transponder.
- a complex distribution of the E or H field is formed. Only a small part of the transponder signal can "escape" and only a weak signal with a short read distance can reach an RFID reader outside the glazing.
- the signal strength is influenced by many factors, for example the E-field direction of the respective antenna of the RFID transponder, the geometry of the metal elements of the frame and in particular the proximity to metal edges and corners of the frame.
- Both dipole antennas and slot antennas are generally elongated in shape. However, both antenna types differ in terms of their radiation and reception characteristics.
- the E field runs perpendicularly to the direction of extension of the slot antenna, while in the case of a dipole antenna the E field is arranged parallel to the direction of extension of the dipole antenna. This means that the E-field of a slot antenna is orthogonal to the E-field of a dipole antenna. The same applies to the H fields.
- the E-field is radiated in several directions.
- the radiated E-field of the slot antenna in the near-field area is orthogonal to the direction of extension of the frame or spacer.
- the E-field is only slightly absorbed or attenuated.
- the E field of the dipole antenna is well radiated in other directions and only slightly absorbed.
- RFID transponders that work with several E-field or H-field directions therefore have improved reception and emission characteristics, which leads to higher and more reliable reading distances for various complex frame geometries.
- a single RFID transponder has a dipole antenna and a slot antenna.
- the RFID transponder of the glazing according to the invention has RFID electronics which are galvanically connected to the dipole antenna and the slot antenna via an electronic switch connected and / or electromagnetically coupled.
- the electronic switch is preferably designed in such a way that it forwards a signal from the respective antenna with the greater received signal strength to the RFID electronics.
- the RFID transponder of the glazing according to the invention has RFID electronics with two independent connections (e.g. a combined signal input and output per connection), a first connection with the dipole antenna and a second connection with the Slot antenna is electrically connected and / or electromagnetically coupled.
- the RFID transponder (also referred to below as the first RFID transponder) has a dipole antenna and a second RFID transponder has a slot antenna.
- RFID electronics are galvanically connected to the dipole antenna and inside the second RFID transponder, second RFID electronics are galvanically connected and/or electromagnetically coupled to the slotted antenna.
- the direction of extent of the dipole antenna and the direction of extent of the slot antenna are arranged parallel to the direction of extent of the frame, which covers the respective antenna in the direction of vision through the glazing unit.
- the direction of extent of the dipole antenna and the direction of extent of the slot antenna are arranged parallel to one another and preferably one behind the other and in particular in a line (ie in a straight line) one behind the other. This allows a particularly compact design within the frame.
- a distance R between the dipole antenna and the slot de slot antenna is from
- 1 mm to 20 cm preferably from 1 mm to 10 cm and in particular from 2 mm to
- the glazing unit has two large main surfaces (front and back) which are connected by narrow, circumferential end surfaces.
- the corners of the glazing unit are formed by the meeting of two end faces forming an angle. The same applies to the frame encompassing the glazing unit.
- the frame encompasses the end face of the glazing unit, preferably in a U-shape, and at the same time covers the RFID transponder or transponders in the viewing direction through the glass panes.
- the legs of the first and second frame elements are usually designed in such a way that, in the case of insulating glazing, they at least completely cover the outside area and the spacer frame in the direction of vision through the glazing unit.
- the frame encloses all end faces of a glazing unit in the form of a frame, i.e. the frame is arranged completely around the glazing unit and is in particular self-contained.
- the frame is designed directly around each glazing unit.
- the distance A between the end faces of the glazing unit and the inside end faces of the frame is from 0 mm to 50 mm, preferably from 0.5 mm to 50 mm, particularly preferably from 1 mm to 20 mm and in particular from 3 mm to 8mm
- the inside face of the frame is the face inside the frame that is directly opposite the face of the glazing unit.
- the glazing ie in particular the frame and the glazing unit, is advantageously polygonal (ie with three or more corners) and in particular rectangular or square.
- the glazing unit according to the invention advantageously consists of or comprises a single pane, a laminated pane or a fire-resistant glazing unit, in particular with at least one intumescent layer.
- the glazing unit according to the invention consists or contains at least one and preferably exactly one insulating glazing unit, which comprises: at least one spacer, which is shaped all the way around to form a spacer frame and delimits an inner area, a first glass pane, which rests on a pane contact surface of the spacer frame, and a second glass pane, which rests on a second pane contact surface of the spacer frame, and the glass panes protrude beyond the spacer frame and form an outer area which is at least partially, preferably completely, filled with a sealing element.
- At least one RFID transponder is advantageously arranged on the frame in the interior area of the frame.
- the RFID transponder is preferably arranged on an inside surface of the frame, particularly preferably on an inside face of the frame or an inside surface of the first or the second frame element, which is arranged parallel to the large surfaces of the glazing unit.
- the RFID transponder is arranged directly on the inside surface of the frame.
- the RFID transponder is connected to the frame either directly or only by an adhesive layer, preferably an adhesive film or a double-sided adhesive tape.
- At least one RFID transponder is arranged on the glazing unit, preferably on an external (main) surface or on one of the end faces of the glazing unit.
- at least one RFID transponder can be arranged in the outer area of the insulating glazing unit, ie in the area between the glass panes protruding beyond the spacer frame, preferably in the sealing element.
- the inventors have in particular carried out investigations on glazing units embedded in metallic frames using the example of insulating glazing units in which the frame consists of two metal and therefore electrically conductive frame elements which are connected via a polymeric and electrically insulating frame element.
- Such frames made of two metallic frame elements, which are connected by a polymer frame element are particularly advantageous since the polymer frame element significantly reduces heat transfer from the first frame element to the second frame element and thus, for example, from an exterior side to an interior side.
- Elastomer profiles are arranged between the outer sides of the glass panes and the inner sides of the adjacent metal frame elements, which seal the glazing and fix the glass panes.
- At least one (first) RFID transponder with a dipole antenna is formed in the glazing according to the invention.
- Such designs can be arranged particularly well in the elongated and strip-shaped outer area along the spacer and between the glass panes, on the end faces of the glass panes or on the outer surfaces of the glass panes within the frame.
- the dipole antenna contains or consists of at least a first antenna pole and a second antenna pole.
- the antenna poles are preferably arranged one behind the other in a line and are therefore parallel to one another.
- a connection to RFID electronics is generally arranged between the antenna poles.
- the radio wavelengths used in such RFID transponder systems are usually in the UHF range at 865-869 MHz (including European frequencies) or 902-928 MHz (US and other frequency bands).
- the approved frequencies for UHF RFID transponders differ regionally for Asia, Europe and America and are coordinated by the ITU.
- the dipole antenna is arranged on a dielectric carrier element, particularly preferably a polymer carrier element.
- the thickness of the carrier element is adapted to the material and in particular to the dielectric constant of the carrier element and to the geometry of the dipole.
- the dipole antennas together with the electronics per se can be arranged on a dielectric and, for example, polymer carrier layer, which significantly simplifies assembly and prefabrication.
- the (first) RFID transponder or a further, second RFID transponder with slot antenna is formed in the glazing according to the invention.
- Slot antennas also have an elongated shape.
- the E-field typically runs perpendicular to the direction in which the slot antenna extends. This means that the E-field of a slot antenna is orthogonal to the E-field of a dipole antenna. The same applies to the H fields.
- RFID electronics are galvanically connected or electromagnetically coupled to a slot antenna.
- Electromagnetically coupled in the context of the present invention means that two components are coupled by an electromagnetic field, ie are connected both capacitively and inductively and preferably not galvanically. Consequently, electromagnetically coupled means here that the slot antenna and the RFID transponder are coupled by an electromagnetic field, ie are connected both capacitively and inductively and preferably not galvanically.
- Slot antennas are known per se to a person skilled in the art, for example from DE894573.
- the slot antenna according to the invention contains at least one base body made of an electrically conductive material.
- the base body is preferably in the form of a plate or film, particularly preferably with a rectangular base area (length x width).
- the base body has at least one, preferably precisely one, slit-shaped recess, which is called “slit” for short below.
- the slit-shaped recess is essentially rectangular.
- the slot forms an open passage along the thickness direction (that is, the smallest dimension of the body) from the top of the body to its bottom. The slot is completely surrounded by the base body in the area (ie in the other dimensions).
- the base body contains or consists of a self-supporting metal foil, preferably made of aluminum, an aluminum alloy, copper, silver or stainless steel.
- Preferred metal foils have a thickness of 0.02 mm to 0.5 mm and in particular 0.09 mm to 0.3 mm.
- Such base bodies for slot antennas can be easily integrated into the glazing and can also be produced easily and inexpensively.
- the metal foil can also be stabilized by a polymer foil or electrically insulated on one or both sides.
- the slit is preferably a recess only in the metal foil or in metal and polymer foil.
- the base body of the slot antenna contains or consists of a metallized polymer film with a preferred metallization made of aluminum, an aluminum alloy, copper, silver or stainless steel.
- Preferred metal layers have a thickness of 10 ⁇ m to 200 ⁇ m.
- the slot is advantageously a recess only in the metallization.
- Such base bodies can also be easily integrated into the glazing and can also be produced easily and inexpensively.
- the preferred lengths and widths of the slot antenna i.e. the length LG and the width BG of the base body and the length LS and the width BS of the slot, as well as the position of the slot within the base body, depend on the operating frequency of the RFID transponder and the respective installation situation away.
- the length LG of the base body ie the length parallel to the extension direction of the slot antenna, is advantageously from 25 mm to 200 mm, preferably from 40 mm to 170 mm and in particular from 80 mm to 150 mm.
- the width BG of the base body ie the length transverse to the direction of extension of the slot antenna, is advantageously from 10 mm to 80 mm, preferably from 12 mm to 40 mm and in particular from 15 mm to 30 mm.
- the length LS of the slot ie the length parallel to the extension direction of the slot antenna, is advantageously from 20 mm to 180 mm, preferably from 35 mm to 160 mm and in particular from 70 mm to 140 mm.
- the width BS of the slot ie the length transverse to the extension direction of the slot antenna, is from 0.2 mm to 20 mm, preferably from 1 mm to 10 mm and in particular from 2 mm to 5 mm.
- Such designs can be arranged particularly well on the elongated inside surfaces of the frame of the glazing.
- the arrangement of an RFID transponder with a slot antenna on and in particular directly on the polymeric third frame element is particularly preferred.
- the RFID transponder is connected to the polymeric, third frame element either directly or only by an adhesive layer, preferably an adhesive film or a double-sided adhesive tape.
- the slot of the slot antenna is arranged directly on the polymeric third frame element and the base body of the slot antenna is galvanically or electromagnetically coupled to the metallic first frame element and/or the metallic second frame element on one or both sides.
- the coupling leads to an advantageous improvement in the readout ranges of the RFID signal.
- the person skilled in the art will carry out further concrete dimensioning in consideration of the dimensions of the insulating glazing unit on the one hand and of the enclosing frame on the other hand, in particular taking into account the width of the frame.
- the RFID electronics are preferably arranged centrally with respect to the extension direction of the slot or in one of the end regions of the slot or somewhere in between and are galvanically connected to the base body and/or electromagnetically coupled.
- the choice of the position of the RFID electronics can be used to optimize the impedance matching between the RFID electronics and the antenna.
- the radio wavelengths used in such RFID transponder systems with slot antennas are usually in the UHF range at 865-869 MHz (including European frequencies) or 902-928 MHz (US American and other frequency bands) or the SHF at 2.45 GHz and 5.8GHz.
- the approved frequencies for UHF RFID transponders differ regionally for Asia, Europe and America and are coordinated by the ITU.
- the slot antenna according to the invention can be coupled in sections with a metal body, such as a metal spacer or a metal foil or a metalized foil on the spacer.
- a metal body such as a metal spacer or a metal foil or a metalized foil on the spacer.
- Main body between slot and border of the base body in the immediate vicinity or brought into contact with the metal body, with respect to the slot opposite strip of the base body and the slot itself are arranged as far away as possible. So a strip of the base body, for example, on the metallic or metallized
- Spacers can be arranged and the slot and the opposite strip of the base body can be arranged angled at an angle of about 90° on the inner surface of one of the glass panes.
- the slot antenna can be arranged on a dielectric carrier element, particularly preferably a polymer carrier element.
- the thickness of the support element is adapted to the material and in particular to the dielectric constant of the support element and to the geometry of the slot antenna.
- the slot antennas together with the RFID electronics per se can be arranged on a dielectric and, for example, polymer carrier layer, which significantly simplifies assembly and prefabrication.
- the dipole antenna and/or the slot antenna are each arranged on a dielectric support element, preferably a polymeric support element.
- the dipole antenna and the slot antenna are arranged on a common dielectric support element, preferably a polymeric support element. This has the particular advantage that the dipole antenna and slot antenna are held in a predetermined relationship to each other, which facilitates assembly at the point of use.
- a distance D between a center of the dipole antenna or a center of the slot antenna and a most closely adjacent corner of the glazing unit is from 40% to 100% of the vacuum wavelength lambda, preferably from 60% to 100% of the vacuum wavelength Lambda and in particular from 70% to 90% of the vacuum wavelength lambda.
- This advantageous embodiment of the invention includes the idea of taking into account the fundamentally unfavorable radiation and irradiation conditions for radio waves in a metallic frame of a glazing by a special decoupling and coupling of the RFID signal.
- a special decoupling and coupling of the RFID signal Unexpectedly, particularly good results were achieved when the RFID transponder or transponders were arranged in the vicinity of the corners of the glazing unit and thus in the built-in state in the frame in the vicinity of the corners of the frame.
- distances D between the center of the dipole antenna or (in the case of RFID transponders with slot antennas) between the center of the slot antenna and the nearest adjacent corner of the glazing unit in the range of 40% to 100% of the vacuum wavelength lambda, particularly preferably in the range from 60% to 100% of the vacuum wavelength lambda and in particular in the range from 70% to 90% of the vacuum wavelength lambda.
- the nearest adjacent corner here means the nearest corner, ie the corner with the shortest distance to the center of the dipole antenna or to the center of the slot antenna of the RFID transponder.
- the optimal distance range is dependent on the vacuum wavelength lambda of the operating frequency f of the RFID transponder. If the operating frequency f of the RFID transponder is in the UHF range at 866.6 MHz, for example, this corresponds to a lambda vacuum wavelength of 34.6 cm.
- a glazing can have a number of RFID transponders, in particular in the edge or outer areas of the various sides (top, bottom, right, left) of the glazing. This is generally necessary in the case of glazing according to the prior art with only short ranges of the RFID transponders in order to quickly find an RFID signal and to quickly identify the glazing together with the glazing unit arranged therein. As a result of the increase in the range of the RFID transponders according to the invention, exactly one or a few RFID transponders per glazing are usually sufficient.
- the glazing unit has a rectangular shape. Furthermore, it has at least and preferably exactly four RFID transponders.
- An RFID transponder is arranged in the area of one of the four corners of the glazing unit.
- Each RFID transponder is advantageously at a distance D from the nearest corner of the glazing unit. That is, the distance D between the center of the dipole antenna or the center of the slot antenna (i.e. the center of the slot in the spanwise direction) and the nearest adjacent corner of the glazing unit is from 40% to 100% of the vacuum wavelength lambda, preferably from 60% to 100 % and in particular from 70% to 90%.
- the glazing unit has a rectangular shape. Furthermore, the glazing has exactly two RFID transponders. In each case, an RFID transponder is arranged in the area of two diagonally opposite corners with respect to the glazing unit. Each RFID transponder has a distance D according to the invention from the nearest corner of the glazing unit. I.e. the distance D between the center of the dipole antenna or the center of the slot antenna (i.e. the center of the slot in the direction of extension) and the nearest adjacent corner of the glazing unit is from 40% to 100% of the vacuum wavelength lambda, preferably from 60% to 100 % and in particular from 70% to 90%.
- the glazing according to the invention has at least one strip-shaped coupling element which is electromagnetically coupled to the RFID transponder, the coupling element being galvanically or capacitively connected to one of the metal frame elements in at least one coupling area and preferably to one of the metal frame elements in two coupling areas is coupled.
- This further development of the invention includes the idea of arranging a coupling element, which is provided separately from the RFID transponder, on the glazing unit in such a way that, with suitable installation in a glazing unit, it is optimally coupled to the frame and signal transmission from the frame to the antenna of the RFID Transponder or from the antenna of the RFID transponder to the frame and thus to the outside of the glazing.
- the advantage according to the invention through the defined distance D can be further improved as a result.
- the coupling element is electromagnetically coupled to an antenna pole of the dipole antenna or the slot antenna of the RFID transponder.
- Electromagnetically coupled means here that the coupling element and the RFID transponder are coupled by an electromagnetic field, i.e. are connected both capacitively and inductively and preferably not galvanically.
- the RFID transponder is designed as a dipole antenna.
- Sections of the coupling element according to the invention are arranged congruently over the RFID transponder. Congruent in sections means that the coupling element covers the dipole antenna in sections in the orthogonal projection onto the RFID transponder.
- the coupling element partially covers the RFID transponder and in particular an antenna pole of the dipole antenna of the RFID transponder when viewed perpendicularly to the front face of the frame.
- the coupling element is at least as large as the dipole antenna of the RFID transponder.
- the coupling element in the projection protrudes beyond the dipole antenna both on one side along the direction of extent of the dipole antenna and transversely to the direction of extent.
- the extension direction of the dipole antenna is the longitudinal direction of the dipole antenna, i.e. along its antenna poles arranged linearly to one another and in the direction of their straight extension.
- the coupling element contains or consists of a self-supporting metal foil, preferably made of aluminum, an aluminum alloy, copper, silver or stainless steel.
- Preferred metal foils have a thickness of 0.02 mm to 0.5 mm and in particular 0.09 mm to 0.3 mm.
- Such coupling elements can be easily integrated into the glazing and are also easy and inexpensive to produce. It goes without saying that the metal foil can also be stabilized by a polymer foil or electrically insulated on one or both sides.
- the coupling element contains or consists of a metallized polymer film with a preferred metallization made of aluminum, an aluminum alloy, copper, silver or stainless steel.
- Preferred metal layers have a thickness of 10 ⁇ m to 200 ⁇ m.
- the coupling element according to the invention is advantageously arranged between the RFID transponder and at least one section of one of the frame elements.
- the coupling element is arranged directly on the frame elements and is capacitively or galvanically connected to the metallic frame elements.
- an electrical insulation layer is arranged in sections between the coupling element and the metal frame elements, which electrically isolates the coupling element from the metal frame elements. This is advisable in particular if the coupling element does not itself already have an electrically insulating carrier film or casing in order to reduce the thermal coupling between the outside and inside. Such a galvanic isolation is a Short circuit of the coupling element avoided in unwanted areas, which can limit its functionality.
- the insulation layer is, for example, a polymer film or a lacquer film made from an electrically insulating material.
- the coupling element according to the invention is advantageously arranged at least in sections on the inside end face of the frame.
- the coupling element protrudes beyond the inside end face transversely to the
- the direction of extension of the frame here means the direction of the long side of the frame as opposed to the short side of the frame which is merely formed by the depth of the frame orthogonal to the faces of the glazing.
- the coupling element protrudes beyond the inside face of the frame by an overhang U.
- the coupling element is arranged in the area of the overhang on the inside surface of the frame element, which runs parallel to the large surfaces of the glazing.
- the maximum overhang is dependent on the width of the metallic frame element and in particular on the thickness of the elastomer profile, which is 6 mm to 7 mm, for example.
- the overhang U is preferably from 2 mm to 30 mm, particularly preferably from 5 mm to 15 mm and in particular from 7 mm to 10 mm.
- the preferred length L of the coupling element ie the length parallel to the extension direction of the dipole antenna, depends on the operating frequency f of the RFID transponder.
- the coupling element has a length L parallel to the dipole antenna of greater than or equal to 40% of half the vacuum wavelength lambda/2 of the operating frequency f of the dipole antenna, preferably from 40% to 240%, particularly preferably from 60% to 120% and in particular from 70% to 95%.
- the coupling element has a length L parallel to the dipole antenna of 7 cm to 40 cm, preferably 10 cm to 20 cm and in particular 12 cm to 16 cm.
- the coupling element covers only one antenna pole of the dipole antenna and protrudes beyond the antenna pole on the side facing away from the other antenna pole. Covering here means that the coupling element is arranged in front of the respective antenna pole in the direction of view of the RFID transponder and covers it. Or in other words, the coupling element covers the respective antenna pole in the orthogonal projection.
- the coupling element covers only the first antenna pole of the dipole antenna and extends beyond the first antenna pole on the side facing away from the second antenna pole.
- the coupling element covers only the second antenna pole of the dipole antenna and extends beyond the second antenna pole on the side facing away from the first antenna pole.
- one edge of the coupling element is arranged over the center of the dipole antenna and extends over the first or the second antenna pole.
- the coupling element can also have a small offset V between the edge of the coupling element and the center of the dipole antenna, the offset V being measured in the projection of the coupling element onto the dipole antenna.
- the offset V therefore means that the projection of the edge of the coupling element is not arranged exactly in the middle between the antenna poles of the dipole antenna, but deviates from it by an offset V in the direction of extension of one antenna pole or in the direction of extension of the other antenna pole.
- the respective maximum offset is dependent on half the vacuum wavelength lambda/2 of the operating frequency f of the dipole antenna.
- V 0 is optimal. Nevertheless, good results and read ranges could still be achieved for deviations from this.
- the offset V is advantageously from -20% to +20% of half the vacuum wavelength lambda/2 of the operating frequency f of the RFID transponder, preferably from -10% to +10% and in particular from -5% to +5%.
- the offset V at an operating frequency f of the RFID transponder in the UHF range is from -30 mm to +30 mm, preferably from -20 mm to +20 mm and in particular from -10 mm to +10 mm.
- a positive sign here means, for example, that the edge of the
- Coupling element is arranged in the projection on the second antenna pole and the rest of the second antenna pole is completely covered, the first antenna pole, however, is completely uncovered.
- a negative sign means that the edge of the coupling element is arranged on the first antenna pole in the projection and a section of the first antenna pole and the rest of the second antenna pole are completely covered.
- the width of the coupling element advantageously depends on the width of the frame and, if applicable, on the respective one-sided or two-sided projection beyond the inside end face of the frame. Typical widths are from 2 cm to 10 cm and preferably from 3 cm to 5 cm.
- the coupling element according to the invention is coupled galvanically or capacitively to one of the metallic frame elements in at least one coupling region and preferably to one of the metallic frame elements in each case in two coupling regions.
- the coupling element is preferably in direct contact with the metallic frame element and is connected to it, for example, galvanically.
- the coupling element preferably touches the metallic frame element over its entire length.
- the coupling element does not have to be firmly anchored to the metallic frame element. Rather, a loose fit or clamping is sufficient. In particular, a capacitive coupling between the coupling element and the metallic frame element in the coupling area is sufficient.
- the RFID transponder is arranged on the polymeric third frame element and a first strip-shaped coupling element is arranged between the first antenna pole of the dipole antenna and the third frame element, which is capacitively or galvanically coupled to the first frame element and a second strip-shaped one Arranged coupling element between the second antenna pole of the dipole antenna and the third frame element, which is capacitively or galvanically coupled to the second frame element.
- the first coupling element only extends to a section of the first frame element and not to the second frame element. Furthermore, the second coupling element only extends to a portion of the second frame element and not to the first frame element.
- glazing according to the invention does not have to have a coupling element or structural elements that have the same functional effect.
- the glazing according to the invention has no electrically conductive active or passive components and in particular no coupling elements are arranged between the RFID transponder and the frame elements.
- FIG. 1A shows a detailed view (top view) of a section of glazing with an insulating glazing unit according to an embodiment of the invention
- FIG. 1B shows a detailed view (cross-sectional view) of an edge area of the glazing with insulating glazing unit according to FIG.
- Figure 1C shows a detailed view (cross-sectional view) of the glazing in a sectional plane parallel to the face of the insulating glazing unit according to Figure 1A
- Figure 1D shows a further detailed view (cross-sectional view) of an edge area of the glazing with insulating glazing unit according to Figure 1A
- FIG. 1E shows a further detailed view (cross-sectional representation) of the glazing in a sectional plane parallel to the end face of the insulating glazing unit according to FIG. 1A,
- FIG. 1F shows a detailed view (perspective view) of a slot antenna according to the invention.
- FIG. 2A shows a detailed view (cross-sectional representation) of an edge area of a glazing with an insulating glazing unit according to a further embodiment of the invention
- FIG. 2B shows a detailed view (top view) of an inventive RFID transponder
- FIG. 3 shows a detailed view (top view) of an alternative RFID transponder according to the invention.
- Figure 1A shows a detailed view (top view) of a section of a glazing 2 according to the invention with an insulating glazing unit 1.
- the glazing 2 can also have one or more glazing units made of a single pane, a laminated pane or a fire-resistant glazing unit, in particular with an intumescent layer. All the embodiments presented here apply to all types of glazing units in isolation and in combination.
- FIG. 1B shows a detailed view (cross-sectional representation) of an edge region of the glazing 2 with the insulating glazing unit 1 according to FIG. 1A, with FIG. 1A showing the top view looking in the direction of arrow A from FIG. 1B.
- FIG. 1B shows the position of a (first) RFID transponder 9 with a dipole antenna 9.1, which is arranged inside the frame 3 on a metallic, second frame element 3.2.
- FIG. 1C shows a detailed view (cross-sectional view) of the glazing 2 in a sectional plane parallel to the end face 14 of the insulating glazing unit 1 according to FIG. 1B, looking in the direction of arrow B in FIG. 1B.
- FIG. 1D shows a further detailed view (cross-sectional view) of the edge region of the glazing 2 with the insulating glazing unit 1 according to FIG. 1A, with FIG. 1A showing the top view looking in the direction of arrow A from FIG. 1D.
- FIG. 1D shows the position of a second RFID transponder 90 with a slot antenna 90.1, which is arranged inside the frame 3 on a polymeric, third frame element 3.3.
- Figure 1E shows a detailed view (cross-sectional view) of the glazing 2 in a sectional plane parallel to the end face 14 of the insulating glazing unit 1 according to Figure 1D looking in the direction of arrow B in Figure 1D.
- the insulating glazing unit 1 comprises two glass panes 4a and 4b. These are held at a predetermined distance by a spacer 5 placed between the glass panes 4a, 4b near the end face 14 of the insulating glazing unit 1.
- the base body of the spacer 5 consists, for example, of glass fiber reinforced styrene acrylonitrile (SAN).
- FIG. 1A shows a schematic plan view of the insulating glazing unit 1 in a viewing direction that is identified by the arrow A.
- FIG. 1A therefore shows the second glass pane 4b on top.
- a plurality of spacers 5 are guided along the side edges of the glass panes 4a, 4b and form a spacer frame 5'.
- the pane contact surfaces of the spacers 5, i.e. the contact surfaces of the spacers 5 to the glass panes 4a, 4b, are each glued to the glass panes 4a or 4b and thereby mechanically fixed and sealed.
- the adhesive connection consists, for example, of polyisobutylene or butyl rubber.
- the spacer 5 is usually hollow (not shown) and filled with a desiccant (not shown) which binds any moisture that has penetrated into the interior 12 via small openings on the inside (also not shown).
- the desiccant contains, for example, molecular sieves such as natural and/or synthetic zeolites.
- the inner area 12 between the glass panes 4a and 4b is filled, for example, with an inert gas such as argon.
- the glass panes 4a, 4b generally protrude beyond the spacer frame 5' on all sides, so that the outer surface of the spacer 5 and the outer sections of the glass panes 4a, 4b form an outer area 13 form.
- a sealing element (sealing profile) 6 is introduced in this outer area 13 of the insulating glazing unit 1 between the glass sheets 4a and 4b and outside the spacer 5 .
- This is shown here in simplified form in one piece. In practice, it usually comprises two components, one of which seals the contact surface between the spacer 5 and the glass panes 4a, 4b and protects it from the ingress of moisture and external influences from the outside.
- the second component of the sealing element 6 additionally seals and mechanically stabilizes the insulating glazing unit 1 . That
- Sealing element 6 is formed, for example, from an organic polysulfide.
- an insulating film (not shown here) is applied, for example, which reduces the heat transfer through the polymeric spacer 5 into the inner area 12.
- the insulating film can be attached to the polymeric spacer 5 with a polyurethane hot-melt adhesive, for example.
- the insulation film contains, for example, three polymeric layers of polyethylene terephthalate with a thickness of 12 ⁇ m and three metallic layers of aluminum with a thickness of 50 nm. The metallic layers and the polymeric layers are applied alternately, the two outer layers being formed by polymeric layers will.
- the layer sequence consists of a polymeric layer, followed by a metallic layer, followed by an adhesive layer, followed by a polymeric layer, followed by a metallic layer, followed by an adhesive layer, followed by a metallic layer, followed by a polymeric layer .
- the base body of the spacer 5 consists, for example, of glass fiber reinforced styrene-acrylonitrile (SAN).
- SAN glass fiber reinforced styrene-acrylonitrile
- Thermal expansion coefficient can be varied and adjusted. By adapting the coefficient of thermal expansion of the spacer base body and the insulating film, temperature-related stresses between the different materials and flaking of the insulating film can be avoided.
- the spacer body has, for example, a glass fiber content of 35% on. The glass fiber content in the spacer body improves strength and stability at the same time.
- the first glass pane 4a and the second glass pane 4b consist, for example, of soda-lime glass with a thickness of 3 mm and have dimensions of 1000 mm ⁇ 1200 mm, for example. It goes without saying that each insulating glazing unit 1 shown in this and the following exemplary embodiments can also have three or more panes of glass.
- the glazing 2 also includes a U-shaped frame 3, for example.
- the frame 3 consists of a first metallic frame element 3.1, which is connected to a second metallic frame element 3.2 via a polymeric and electrically insulating third frame element 3.3.
- the first and second frame elements 3.1, 3.2 are L-shaped.
- the frame 3 therefore surrounds the end face 14 of the insulating glazing unit 1 in a U-shape.
- the sections of the first and second frame elements running parallel to the large surfaces of the glass panes 4a, 4b are designed in such a way that they connect at least the outer area 13 with the sealing element 6 and the spacer frame 5' completely covered by the insulating glazing unit 1 in the viewing direction (arrow A).
- the frame 3 surrounds all end faces 14 of the insulating glazing 1 and forms a closed border.
- the distance A between the end face 14 of the insulating glazing unit 1 and the inside end face of the frame 3 is approximately 4 mm, for example.
- the insulating glazing unit 1 is arranged on a carrier, not shown here, in particular on a plastic carrier or carrier elements electrically insulated by plastics.
- an elastomer profile 7 is arranged between the metallic frame elements 3.1, 3.2 and the glass panes 4a, 4b, so that the insulating glazing unit 1 is held firmly within the frame 3.
- the elastomer profile 7 has a thickness of 6.5 mm, for example, and fixes the distance between the respective frame elements 3.1, 3.2 and the glass panes 4a, 4b.
- the glazing according to Figures 1A to 1E is an example of a glazing 2 with an RFID transponder 9 with a dipole antenna 9.1 (see Figure 1A to 1C) and an independent second RFID transponder 90 with a slot antenna 90.1 (see Figure 1A , 1D and 1E).
- the RFID transponder 9 with dipole antenna 9.1 is arranged on the second frame element 3.2.
- the RFID transponder 9 with dipole antenna 9.1 is arranged inside the frame 3 and there on the inner surface of the second frame element 3.2, which runs parallel to the large surfaces of the glass panes 4a and 4b.
- the RFID transponder 9 with the dipole antenna 9.1 can also be arranged at other positions within the frame 3, for example on one of the inner front surfaces of the frame elements 3.1, 3.2, 3.3 or on the inner surface of the first frame element 3.1 , which extends parallel to the large surfaces of the glass panes 4a and 4b.
- the arrangement of the RFID transponder 9 on one of the metallic frame elements 3.1, 3.2 is to be preferred due to better signal coupling and decoupling.
- the operating frequency f of the RFID transponder 9 with dipole antenna 9.1 is in the UHF range and for example around 866.6 MHz, which corresponds to a lambda vacuum wavelength of 34.6 cm.
- the example shown is an RFID transponder 9 in which the dipole antenna 9.1 is arranged on a dielectric carrier body 9.2. This is necessary because the second frame element 3.2 is electrically conductive. Without the dielectric carrier body 9.2, the dipole antenna 9.1 would be arranged directly on an electrically conductive surface and would thus be “short-circuited”. The short circuit can be avoided by using an RFID transponder 9 with a dielectric carrier body 9.2 (so-called “on-metal” RFID transponder).
- the glazing 2 has an independent, second RFID transponder 90 with a slot antenna 90.1.
- the second RFID transponder 90 is written, for example, with the same identification code as the first RFID transponder 9.
- the RFID transponder 90 has a slot antenna 90.1, which is arranged on the polymeric, third frame element 3.3.
- the operating frequency of the RFID transponder 90 is in the UHF range and also, for example, at 866.6 MHz. It goes without saying that the RFID transponders 9 and 90 can also have different or slightly different different frequencies f, which are adapted to the individual circumstances of the installation position, so that the RFID transponders 9.90 are optimally fixed with an RFID reader and standardized operating frequency can communicate.
- the example shown is an inventive RFID transponder 9 with a slot antenna 90.1 in which the RFID electronics 90.3 are arranged in the middle of the slot 90.1.1, the base body 90.1.2 of the slot antenna 90.1 is attached to the adjacent areas and is electrically conductively connected to these, for example by two galvanic connections on both sides of the slot 90.1.1 (in FIG. 1 E once at the top and once at the bottom). It goes without saying that the RFID electronics 90.3 can also be arranged at a different location and can be connected to the slot antenna 90.1 via lines, galvanic connections or electromagnetic coupling.
- FIG. 1F shows a perspective representation of the slot antenna 90.1 according to the invention.
- This consists of a metallic base body 90.1.2, for example a rectangular copper foil with a length LG of 140 mm, a width BG of 10 mm and a thickness DG of 0.1 mm.
- the base body 90.1.2 has, for example, a slot 90.1.1 in the middle in the form of a complete recess with a length LS of 120 mm and a width BS of 2 mm.
- the edge area of the base body 90.1.2 around the slot 90.1.1 is therefore approximately 10 mm in each case in the longitudinal direction (LR) and approximately 4 mm in each case in the transverse direction (BR).
- LR longitudinal direction
- BR transverse direction
- these strips 100.1, 100.2 are of the same width and of the same length.
- the base body 90.1.2 can also consist of a comparatively rigid, thin metal plate or of a very thin metal foil or metallization, which is arranged on a carrier element, preferably a dielectric carrier element such as a polymer plate or polymer film.
- the slot antenna 90.1 is arranged, for example, directly on the polymeric, third frame element 3.3. Since the material of the polymeric, third frame element 3.3 is electrically insulating, the slot antenna 90.1 can, for example, be arranged directly on the polymeric, third frame element 3.3, for example glued using a thin adhesive film or double-sided adhesive tape.
- FIG. 2A shows a detailed view (cross-sectional representation) of an edge area of a glazing 2 with an insulating glazing unit 1 according to a further embodiment of the invention.
- FIG. 2A shows a modified construction which largely has the elements and the structure of the glazing 2 with insulating glazing unit 1 according to FIGS. 1A-F.
- the same reference numbers are used as there and the structure is not described again here.
- the RFID transponder 9 is in
- the RFID transponder 9 is here a combined RFID transponder 9, which is arranged on a dielectric carrier element 9.2, the antennas of the RFID transponder 9 being arranged on the side of the dielectric carrier element 9.2 facing away from the spacer frame 5'.
- FIG. 2B shows a schematic plan view of the combined RFID transponder 9 according to FIG. 2A, with a dipole antenna 9.1, a slot antenna 90.1 and common RFID electronics 9.3 are arranged on a surface of a dielectric carrier element 9.2, for example a plastic cuboid.
- the RFID electronics 9.3 has, for example, two connections, one of which is galvanically connected to the dipole antenna 9.1 and one to the slot antenna 90.1 (not shown in detail here).
- the extension direction of the dipole antenna 9.1 is arranged here parallel to the extension direction of the slot antenna 90.1, the extension direction of the dipole antenna 9.1 being arranged in a straight line to the extension direction of the slot 90.1.1 and thus the extension direction of the slot antenna 90.1. Furthermore, the distance R between the dipole antenna 9.1 and the slot 90.1.1 of the slot antenna 90.1 is indicated accordingly.
- a combined RFID transponder 9 can also be arranged at other positions within the frame 3 .
- a glazing 2 can have several RFID transponders 9 .
- FIG. 3 shows a schematic top view of another exemplary embodiment of a combined RFID transponder 9, with a dipole antenna 9.1, a slot antenna 90.1 and common RFID electronics 9.3 being arranged on a surface of a dielectric carrier element 9.2, for example a plastic cuboid. (Electrical connecting lines between the antennas 9.1, 90.1 and the RFID electronics 9.3 are not shown for the sake of clarity.)
- the extension direction of the dipole antenna 9.1 is also arranged parallel to the extension direction of the slot antenna 90.1, the dipole antenna 9.1 being arranged next to the slot 90.1.1 of the slot antenna 90.1 (i.e. orthogonally offset to the extension direction).
Landscapes
- Engineering & Computer Science (AREA)
- Civil Engineering (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP21171423 | 2021-04-30 | ||
| PCT/EP2022/059561 WO2022228872A1 (de) | 2021-04-30 | 2022-04-11 | Verglasung mit rfid-transponder |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4330506A1 true EP4330506A1 (de) | 2024-03-06 |
Family
ID=75746388
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22722186.8A Withdrawn EP4330506A1 (de) | 2021-04-30 | 2022-04-11 | Verglasung mit rfid-transponder |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP4330506A1 (de) |
| WO (1) | WO2022228872A1 (de) |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20230074877A1 (en) * | 2020-02-07 | 2023-03-09 | Saint-Gobain Glass France | Glazing having an rfid transponder |
| US20240170857A1 (en) * | 2022-11-17 | 2024-05-23 | Zebra Technologies Corporation | Multi-Antenna Assembly for Compact Electronic Devices |
Family Cites Families (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE894573C (de) | 1951-08-23 | 1953-10-26 | Lorenz C Ag | Schlitzantenne |
| FR2787135B1 (fr) | 1998-12-14 | 2001-06-08 | Catrame Fr | Multiple vitrage a etiquette electronique |
| GB0610634D0 (en) | 2006-05-30 | 2006-07-05 | Dow Corning | Insulating glass unit |
| EP2230626A1 (de) | 2009-03-15 | 2010-09-22 | Dula-Werke Dustmann & Co. GmbH | Kennzeichnungsverfahren und Verarbeitungsverfahren von Massiv- und Verbundvollmaterialplatten mittels RFID sowie Vorrichtung hierzu |
| WO2016198914A1 (en) * | 2015-06-09 | 2016-12-15 | Assa Abloy Ab | Rifd tag with a tunable antenna |
| CN112088238B (zh) | 2018-05-14 | 2022-08-16 | 法国圣戈班玻璃厂 | 绝缘玻璃化物单元 |
| WO2019219462A1 (de) | 2018-05-14 | 2019-11-21 | Saint-Gobain Glass France | Isolierverglasungseinheit |
| MX2021009100A (es) * | 2019-01-29 | 2021-09-08 | Saint Gobain | Acristalamiento de fachada y unidad de acristalamiento aislante. |
| PL3918172T3 (pl) * | 2019-01-29 | 2023-05-15 | Saint-Gobain Glass France | Jednostka oszklenia izolacyjnego oraz oszklenie |
-
2022
- 2022-04-11 WO PCT/EP2022/059561 patent/WO2022228872A1/de not_active Ceased
- 2022-04-11 EP EP22722186.8A patent/EP4330506A1/de not_active Withdrawn
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| Publication number | Publication date |
|---|---|
| WO2022228872A1 (de) | 2022-11-03 |
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