Tyre sensor device with flexible printed circuit board
10369852 ยท 2019-08-06
Assignee
Inventors
- Marco Sabatini (Milan, IT)
- Alberto BOTTA' (LES CHARBONNIERES, CH)
- Gaetan Boulard (Les Charbonnieres, CH)
Cpc classification
B60C23/0461
PERFORMING OPERATIONS; TRANSPORTING
H05K1/148
ELECTRICITY
B60C23/041
PERFORMING OPERATIONS; TRANSPORTING
H05K1/189
ELECTRICITY
H05K2201/042
ELECTRICITY
H05K5/0026
ELECTRICITY
B60C23/0447
PERFORMING OPERATIONS; TRANSPORTING
B60C23/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C23/20
PERFORMING OPERATIONS; TRANSPORTING
H05K1/18
ELECTRICITY
Abstract
A tyre sensor device including a connecting element for connecting the tyre sensor device to a vehicle tyre, and a tyre sensor device electronics assembly housed in the connecting element, wherein the tyre sensor device electronics assembly comprises a flexible printed circuit board being foldable and including at least two printed circuit board portions each having two surfaces, the at least two printed circuit board portions being suitable for the placement, on at least one surface thereof, of electronic components of the tyre sensor device, wherein the electronic components include at least one sensor for sensing at least one tyre parameter, the printed circuit board being folded so that the tyre sensor device electronics assembly can be inserted in the connecting element with the at least two printed circuit board portions being essentially planar.
Claims
1. A tyre sensor device comprising a connecting element for connecting the tyre sensor device to a vehicle tyre, and a tyre sensor device electronics assembly housed in the connecting element, wherein the tyre sensor device electronics assembly comprises a flexible printed circuit board being foldable and comprising at least two printed circuit board portions each having two surfaces, the at least two printed circuit board portions being suitable for the placement, on at least one surface thereof, of electronic components of the tyre sensor device, wherein said electronic components comprise at least one sensor for sensing at least one tyre parameter, said printed circuit board being folded so that the tyre sensor device electronics assembly is insertable in the connecting element with the at least two printed circuit board portions being essentially planar.
2. The tyre sensor device according to claim 1, wherein said printed circuit board is folded such that the at least two essentially planar printed circuit board portions lie on stacked planes.
3. The tyre sensor device according to claim 1, wherein the connecting element comprises a rubber housing adapted to be attached to an inner liner of the tyre.
4. The tyre sensor device according to claim 3, wherein said rubber housing has a seat for receiving a container having a cavity for accommodating the tyre sensor device electronics assembly.
5. The tyre sensor device according to claim 4, comprising a housing adapted to contain the folded printed circuit board, said housing being accommodated in said container.
6. The tyre sensor device according to claim 5, wherein said housing comprises a first housing part and a second housing part joinable to each other, and a cap that closes from above the housing.
7. The tyre sensor device according to claim 1, wherein the flexible PCB is foldable to a generic S or Z shape and, when folded, comprises three essentially planar portions suitable for the placement, on at least one surface thereof, of electronic components of the tyre sensor device.
8. The tyre sensor device of claim 1, wherein the flexible PCB comprises two joining portions for joining the three essentially planar portions, said joining portions ensuring flexural mechanical connection between the essentially planar portions and electrical connection among the electronic components placed on the essentially planar portions.
9. The tyre sensor device of claim 8, wherein the flexible PCB has three conductive layers for signals and one conductive layer for a ground potential in the three essentially planar portions, and one conductive layer for the signals and one conductive layer for the ground potential in the joining portions.
10. The tyre sensor device of claim 1, comprising a transmitting antenna, comprising an end portion of the flexible PCB, joined to the one of the essentially flat portions by an antenna joining portion.
11. The tyre sensor device of claim 1, comprising contact terminals for interfacing the tyre sensor electronics assembly to an external terminal.
12. A vehicle tyre comprising an inner liner, and the tyre sensor device according to claim 1 connected to said inner liner through said connecting element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features and advantages of the present invention will be made evident by the following description of some exemplary and non-limitative embodiments thereof, to be read in conjunction with the attached drawings, wherein:
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
(14) Making reference to the drawings, in
(15) The base container 215 is attached to the connecting part 210. The connecting part 210 has a circular collar 217 rising from a circular base of the connecting part 210, the circular collar 217 being hollow for receiving and accommodating therein at least a portion of the base container 215.
(16) The base container 215 is generically cylindrical and hollow so as to define therein a cavity within which the tyre sensor device components are accommodated. As visible in
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(18) The connecting part 210 has a generically circular base flange 305 having a first diameter, and, on an opposite side with respect to a base flange side 405 that in use abuts the tyre inner liner, the connecting part 210 restricts and rises (preferably, in a rounded and smooth manner) to form the circular collar 217 which is hollow to form a generically cylindrical seat 310 for receiving the base container 215.
(19) The base container 215 has a portion that is received within the seat 310 of the connecting part 210. The portion of the base container 215 that is received within the seat 310 preferably has, e.g. two, projecting ribs 410, for example circumferential, for making the attachment of the base container 215 to the connecting part 210 firmer. The portion of the base container 215 that protrudes from the seat 310 has two diametrically opposite, arc-shaped projecting walls 315.
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(21) The electronics assembly 230 comprises a flexible Printed Circuit Board (PCB) 510, with electronic components mounted thereon. In
(22) Hereinafter, the electronics assembly 230 is described referring jointly to
(23) The electronics assembly 230 comprises a transmitting antenna 1105 (e.g. a transmitting antenna adapted for Ultra Wide Band (UWB) transmission) for transmitting (uplink channel) to a receiver (not shown), e.g. a coordinator device for coordinating two or more tyre sensor devices installed on two or more tyres of a vehicle.
(24) An antenna for a downlink channel may optionally be provided, i.e. for receiving from the coordinator device. For example, the receiving antenna can be a Low Frequency (LF) antenna 1110; as an alternative, the transmitting antenna 1105 might be exploited also as a receiving antenna.
(25) The transmitting antenna is fed by a signal acquisition, processing and transmission unit 1115, e.g. an ASIC (Application Specific Integrated Circuit).
(26) The receiving antenna 1110 feeds a receiver unit 1120 (e.g. an LF receiver unit), that in turn feeds the signal acquisition, processing and transmission unit 1115.
(27) The receiver 1120 and the signal acquisition, processing and transmission unit 1115 are interfaced with one or more tyre sensor units 1125, adapted to sense at least one tyre parameter, comprising for example a temperature sensor, and/or an accelerometer sensor, and/or a pressure sensor, and with memory units 1130.
(28) A power supply unit 1135 supplies power to the various units of the electronics assembly 230. The power is supplied either by the battery 225, or by an external power source 1140. The power from the external power source 1140 is for example received through contact terminals 605 in the form of pillars that, when the flexible PCB 510 is flexed and housed in the housing 235, extends vertically. The contact terminals 605 may also be also used for interfacing the electronics assembly 230 with an external equipmentnot showne.g. for programming/re-programming the sensor.
(29) The electronics assembly 230 can typically comprise further components, like resistors, capacitors, diodes, transistors, mounted to the flexible PCB 510. Such components are not described in detail since their provision and arrangement is routinary work for the average designer of electronics systems.
(30) The flexible PCB 510, as visible in
(31) The housing 235 for the electronics assembly 230 comprises two parts 610 and 615 that are joinable to each other and which encase and support the flexible PCB 510, and a cap 245 that closes from above the housing 235. In particular, the part 610 (closer part) of the housing 235 is shaped so to have an arc-shaped shoulder that is used as a support for the end portion 735 of the flexible PCB 510, forming the transmitting antenna 1105. When joined to each other, the two parts 610 and 615 of the housing 235 form a solid and compact assembly which can be inserted within the base container 215, possibly after having been protected by the cap 245.
(32) Under the end portion 735 a magnetic shield is preferably provided, for shielding the transmitting antenna 1105 from the remaining electronics.
(33) The flexible PCB 510 is for example realized to have four layers in the main portions (three conductive layers for the signals and one conductive layer for the ground), and two layers (one conductive layer for the signals and one conductive layer for the ground) in the joining portions.
(34) In particular, the flexible PCB 510 may be an assembly of multiple layers composed of: polymide and adhesive for the non conductive layers; copper for the internal conductive layers; copper, nickel and gold for the external conductive layers.
(35) Preferably, a solder mask is used to protect the PCB on the external layer.
(36) The flexible PCB 510, with the electronic components mounted thereto, is folded, for example to an S or Z shape as mentioned in the foregoing, with the main PCB portions 705, 710, 715 (where the electronic components are mounted) which remain essentially planar when the flexible PCB 510 is folded, lying in three parallel planes. The capability to be folded is made possible by the flexibility of the joining PCB portions 720, 725, as well as by the flexible material making the PCB 510.
(37) By providing a flexible PCB 510 that is foldable to an S or Z shape, up to six essentially flat PCB surface portions are made available for the placement of electronic components (the three main PCB portions 705, 710, 715, each having two sides). In other embodiments of the present invention, the flexible PCB 510 is folded to, e.g., a C shape (in which case, four essentially flat PCB surface portions are made available for the placement of electronic components), or to other, more complex shapes, making available more than six essentially flat PCB surface portions for the placement of electronic components.
(38) When folded, the flexible PCB 510 is encased in the closer 235.
(39) Some steps of an exemplary assembly procedure of the sensor node 100 are depicted in
(40) As shown in
(41) Then, the end portion 735 of the flexible PCB 510 that forms the transmitting antenna 1105 is then bent to take an arc shape (
(42) The flexible PCB 510 is then removed from the mounting tool 1205.
(43) The flexible PCB 510 is bent, as in
(44) Finally, the bent PCB is inserted into the housing 235 closed by the cap 245 (
(45) Thanks to the present invention, a small but complex sensor device can be built: For example, the sensor device can include more than 100 SMD (Surface Mount Device) components plus 2 plastic tube, 4 contact pins and 2 battery contacts, all embedded in a housing 235 having a diameter lower than 2 cm and a thickness of about 1-1.5 cm.