Vehicle imaging device

A conductive element connected to the housing and pin forms a closed loop with the printed circuit board to mitigate electromagnetic interference in vehicle imaging devices, enhancing electromagnetic compatibility and manufacturing ease.

JP7810516B2Active Publication Date: 2026-02-03FICOSA ADAS S L U
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Patent Information

Application Number
JP2020205441
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-11
Filing Date
2020-12-11
Publication Date
2026-02-03
Estimated Expiration
2040-12-11

AI Technical Summary

Technical Problem

Existing imaging devices for vehicles suffer from electromagnetic interference due to the generation of magnetic and electric fields by conductor loops in printed circuit boards, leading to undesirable electromagnetic effects.

Method used

Incorporation of a conductive element in electrical connection with the housing and a pin including a ground connection, forming a closed loop with the printed circuit board, to minimize electromagnetic interference.

Benefits of technology

The solution effectively reduces electromagnetic effects by acting as a Faraday shield, improving electromagnetic compatibility and ease of manufacturing and installation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To improve defects of a vehicle image device caused by electromagnetic interferences between elements of the vehicle image device.SOLUTION: The vehicle image device includes: an image sensor 15; a lens 1; a print circuit board 3; a pin including a ground connection, the pin being electrically connected to the print circuit board 3; housings 7 and 8 electrically connected to the print circuit board 3, the housings 7 and 8 having an internal void 12 which at least partially surrounds the print circuit board 3, the image sensor 15, and the pin including the ground connection; and a conductive element electrically connected to the pin including the ground connection, the conductive element being also connected to the housings 7 and 8 so that a closed electric loop is formed among the print circuit board 3, the pin including the ground connection, the conductive element, the housings 7 and 8, and the print circuit board 3.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION The present invention relates to an imaging device for a vehicle, in particular for a motor vehicle, the object of which is to ameliorate the drawbacks resulting from electromagnetic interference between the elements of the device. [Background technology]

[0002] BACKGROUND OF THE INVENTION Known imaging devices, for example camera devices for vehicles, include the following elements: A housing that includes an internal cavity for enclosing several elements of an imaging device. Typically, a camera housing includes a first portion (or front housing) and a second portion (or back housing), both portions having electrical contact therebetween. A lens typically located partially outside the front housing, and an image sensor located within the housing in communication with the lens. A printed circuit board (PCB) located within the housing and connected to the image sensor. a pin including a ground connection and in electrical contact with the printed circuit board, the pin configured to transmit data from the printed circuit board to an external location of the imaging device (e.g., a connector in a vehicle); Optionally, multiple pins or a single pin may be located on or received by an adapter. Optionally, a connector connected to the PCB is adapted to receive pins of the adapter and guide the pins towards the printed circuit board.

[0003] It is traditionally known that every electric charge generates an electric field around it. When a charge is in motion, it also generates a magnetic field, so magnetic and magnetic fields coexist near a current conductor. If the circulating current is continuous, both fields are static, i.e., their strength does not change over time.

[0004] Printed circuit boards (PCBs) contain conductor loops that are self-inductive. This generates a magnetic field that inherently accompanies current flow. Specifically, this magnetic field appears when a step voltage change is applied to the input terminals of the loop. Initially, the loop generates a voltage proportional to the change in magnetic flux. This prevents the current from immediately following the voltage step. This can be explained by Faraday's law. The duration of this transient voltage depends on the area of ​​the loop. Induction can be used to slow down current changes, but it is also known to cause undesirable electromagnetic fields.

[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to overcome the above-mentioned problems of the prior art and to reduce or eliminate electromagnetic waves in imaging devices. Summary of the Invention

[0006] (Summary of the Invention) The vehicle imaging device for capturing images of the present invention includes: An image sensor configured to capture an image. A lens in communication with the image sensor and configured to direct the light beam to the image sensor. a printed circuit board associated with the image sensor for receiving data from said image sensor; A pin that contains a ground connection and is electrically connected to the printed circuit board. A housing electrically connected to the printed circuit board, the housing having an interior cavity enclosing at least the printed circuit board, the image sensor, and a portion of the pins including the ground connection. A conductive element disposed in electrical connection with the pin including the ground connection, the conductive element being in electrical contact with the housing such that a closed electrical loop is formed among the printed circuit board, the pin including the ground connection, the conductive element, the housing, and the printed circuit board.

[0007] The invention therefore provides a conductive element arranged in electrical connection with the pin including a ground connection, the conductive element further comprising a conductive connection in contact with the housing, said electrical connection between the conductive element and the housing can be, for example, an electric wire or a metal sheet of suitable shape.

[0008] The connection of the conductive element to the housing may be performed by connecting the conductive element to an internal cavity of the housing or to another part of the housing, for example, the rear of the back housing.

[0009] Therefore, an object of the above technical features is to provide an element that electrically connects the housing and the pin, including the ground connection, to minimize undesirable electromagnetic effects.

[0010] In one embodiment, the imaging device may have multiple pins, some of which are configured to transmit data and at least one of which is configured to be connected to ground. In another alternative, the pin may include, for example, a first longitudinal portion of the pin configured to transmit data and a second longitudinal portion of the pin configured to be connected to ground. Both longitudinal portions may, for example, be concentric circles.

[0011] The pin or pins may have their ends in contact with the printed circuit board, or alternatively, the pin or pins are attached to the printed circuit board and their ends leave the housing.

[0012] According to the above, the conductive element is in electrical contact with the pin and is, for example, made of a conductive material (for example, metal, steel, or aluminum).

[0013] As previously mentioned, electromagnetic effects are reduced when the circuit loop is closed by:

[0014] a printed circuit board in electrical contact with the pin, including the ground connection, in electrical contact with a conductive element that is in electrical contact with the housing; the housing in electrical contact with the printed circuit board;

[0015] The present invention provides an element or component that is easy to manufacture and install that reduces the electromagnetic effects of vehicle imaging devices. The present invention further accomplishes this through the inclusion of a few simple components. [Brief explanation of the drawings]

[0016] DESCRIPTION OF THE DRAWINGS To complete the description and to provide a better understanding of the invention, the drawings are provided, which form an integral part of the description and show preferred embodiments of the invention. The drawings consist of the following figures:

[0017] [Figure 1] FIG. 1 shows a longitudinal section of an imaging device known in the prior art having first and second printed circuit boards. [Figure 2] FIG. 2 shows a longitudinal cross section of an imaging device according to one embodiment of the present invention. [Figure 3] FIG. 3 shows a perspective view of an embodiment of an adapter and conductive elements. [Figure 4A] The fourth diagram in FIGS. 4A-4C shows a perspective view of an embodiment of the adapter corresponding to FIG. 3 and a different embodiment of the conductive element. [Figure 4B] The fourth diagram in FIGS. 4A-4C shows a perspective view of an embodiment of the adapter corresponding to FIG. 3 and a different embodiment of the conductive element. [Figure 4C] The fourth diagram in FIGS. 4A-4C shows a perspective view of an embodiment of the adapter corresponding to FIG. 3 and a different embodiment of the conductive element. [Figure 5] FIG. 5 shows a plan view of the adapter of FIG. 3 in the first embodiment. [Figure 6] FIG. 6 shows a plan view of the adapter of FIG. 3 in a second embodiment. [Figure 7]FIG. 7 is a longitudinal cross-sectional view of one embodiment of an imaging device showing an embodiment of a conductive element. [Figure 8] FIG. 8 is a perspective view of an embodiment of a connector with multiple orifices for receiving and guiding pins for contacting a printed circuit board. DETAILED DESCRIPTION OF THE INVENTION

[0018] (Detailed Description of the Invention) 1 shows an imaging device, specifically a camera module, as known in the prior art, comprising a housing (7, 8) including a first portion (7) or front housing and a second portion (8) or back housing, both of which are in electrical contact and joined by, for example, welding or fasteners (e.g., screws).

[0019] The housing (7, 8) must be electrically conductive or contain conductive lines / surfaces.

[0020] Preferably, the two parts (7, 8) of the housing are made of metal, in particular aluminum. In another alternative, both parts (7, 8) are made of a composite material, for example containing carbon fibers and metal particles. Another alternative is to have a plastic housing (7, 8) that contains a conductive box (e.g., metal or a conductive shield) in its internal cavity (12).

[0021] The housings (7, 8) have an internal cavity (12) that houses several components. Figure 1 shows a lens (1) partially positioned in the front housing (7). The lens (1) can guide / direct / project light from the outside onto an image sensor (15).

[0022] The prior art shown in Figure 1 includes two printed circuit boards (3, 4) arranged such that there is a gap between the first PCB (3) and the second PCB (4) that prevents current from flowing between them. The second printed circuit board (4) is connected to the first printed circuit board (3), and an image sensor (15) is disposed on the second printed circuit board PCB (4).

[0023] According to the state of the art, shown in Figure 1, an image sensor (15) is mounted on a second printed circuit board, PCB (4). The image sensor (15) is the element of an electronic camera that detects and captures the information that constitutes an image. This is achieved by converting the attenuation of light waves (electromagnetic radiation) into electrical signals. It is a chip made up of millions of light-sensitive components (photodiodes or phototransistors) that, when exposed to light, are able to capture the projected waves of the lens (1) that constitute the image. The image sensor (15) is aligned with the lens (1).

[0024] The first printed circuit board PCB (3) may include an electronic control unit (ECU), and in particular, the ECU is an image signal processor (ISP). The ISP can receive electrical signals corresponding to images generated by the image sensor (15). The first printed circuit board PCB (3) can process the captured images. Preferably, the first printed circuit board PCB (3) is parallel to the second printed circuit board PCB (4).

[0025] As can be seen in Figure 1, the surface of the first printed circuit board PCB (3) opposite the second PCB (4) is in contact with pins (21, 21.1) that transmit information on the first printed circuit board PCB (3).

[0026] The housing (7, 8) includes an opening (40) configured for the passage of at least a pin (21.1) comprising a ground connection from the cavity (12) of the housing (7, 8), and in the illustrated embodiment also a data pin (21).

[0027] Figure 2 shows that the imaging device includes a number of pins (21, 21.1) for transmitting data, the ends of which are in contact with the printed circuit board (3). The function of these pins (21, 21.1) is to transmit data to and from the printed circuit board PCB (3), which then exits the housing (7, 8).

[0028] In particular, the eight pins (21, 21.1) contained in the imaging device shown can be adapted to: (i) Power supply (current) (ii) Data transmission (image transfer) (iii) Connection to vehicle CAN-BUS or Ethernet (registered trademark), etc.

[0029] In the embodiment shown, seven pins (21) are for transmitting data and one pin (21.1) is a ground pin.

[0030] The conductive element 30 is electrically connected to pins 21.1, including the ground connection or ground pin 21.1. The conductive element 30 is not connected to the data pins 21. Furthermore, to prevent contact between the data pins 21 and the conductive element 30, the data pins 21 may include insulating means, such as a rubber ring, surrounding the data pins 21.

[0031] As previously mentioned, Figures 2 and 3 show eight pins (21.1) that are preferably made of a conductive material, more preferably aluminum, copper, or brass.

[0032] The embodiment shown also includes a connector (5) associated with the printed circuit board (3). The connector (5) is in electrical contact with the pins (21.1) that include a ground connection. The connector (5) further includes a plurality of orifices for receiving and guiding the pins (21, 21.1) for contacting the printed circuit board (3).

[0033] Due to existing tolerances, it is difficult to bring the pins 21, 21.1 into contact with the PCB 3. The connector 5 located on the PCB 3 serves as a guide for the pins 21, 21.1, as it is intended to receive the pins 21, 21.1 and ensure their electrical contact with the PCB 3. The connector 5 may have, for example, 0.4 mm of lateral movement in each direction to accept five pins 21, 21.1 and ensure their electrical contact with the PCB 3.

[0034] The connector (5) may further comprise elastic conductive elements with two ends, one in contact with the orifice of the connector (5) and the other in contact with the track of the PCB (3), which on the one hand ensure the electrical contact between the pins (21, 21.1) and the PCB (3) and, on the other hand, are elastic and deformable, allowing a movement of 0.4 mm in each direction upon deformation.

[0035] In the embodiment of Figure 2, the imaging device also shows an adapter (20). The adapter (20) comprises at least a pin (21.1) that includes a ground connection and, in the embodiment shown, a data pin (21). The adapter (20) is configured to fit into the opening (40) of the housing (7, 8).

[0036] The outer surface of the back housing 8 is in contact with the adapter 20, a portion of which is surrounded by the internal cavity of the back housing 8. In particular, the adapter 20 has a number of pins 21, 21.1 that are received by a number of orifices in the connector 5.

[0037] The conductive element (30) may be part of the adapter (20) or may be attached to the adapter (20) such that the conductive element (30) is received within the adapter (20).

[0038] 3 shows an embodiment of the conductive element 30. The conductive element 30 includes a protrusion 9 that is positioned so that it can contact the interior cavity 12 of the housing 7, 8.

[0039] The protrusion (9) and the conductive element (30) may be separate or may be a single component.

[0040] The slope, length and generally shape of the projections (9) allow contact at any part of the housing (7, 8), for example any surface (13, 14) of the internal cavity (12), as long as it is conductive.

[0041] In the embodiment shown in Figure 3, two opposing protrusions (9) are shown, said protrusions (9) comprising a rounded shape.

[0042] Preferably, the projections (9) are flexible and configured to bend to adapt their position to contact the housings (7, 8). More preferably, the projections (9) are elastic springs configured to undergo elastic deformation, the direction of deformation being clearly perpendicular to the longitudinal axis of the camera (the optical axis of the camera), i.e., to the pins (21, 21.1).

[0043] In one embodiment, the conductive element comprises two diametrically opposed protrusions (9). The protrusions (9) are flexible, i.e. adapted to be deformed or bent without breaking and to bend to change their position to contact the housings (1, 2). This means that their resilience acts as a biasing means adapted to accommodate different manufacturing tolerances.

[0044] In one embodiment, the conductive element (30) is positioned to at least partially cover or partially span the opening (40) in the housing (7, 8).

[0045] The conductive element (30) may be a planar or curved surface element arranged to at least partially cover the opening (40). Surface element means in the description a two-dimensional element that is flat or curved. In one embodiment, the surface element may be a plate (31). More specifically, the conductive element is not an electric wire, since a wire is understood as a one-dimensional element.

[0046] The conductive element (30) may have a shape that corresponds to the shape of the opening (40) so that it spans the opening (40).

[0047] One advantage of the conductive element (30) partially covering the opening (40) is that it improves electromagnetic compatibility, as the conductive element (30) acts like a Faraday shield, blocking electromagnetic fields. According to one example, the surface element, e.g., plate (31), may have an area that is 30% or more than 30% of the area of ​​the opening (40) in the housing (7, 8). According to another example, the surface element may have an area that is at least 50% of the area of ​​the opening (40) in the housing (7, 8).

[0048] 3 shows the adapter 20 and the conductive element 30. The conductive element 30 is attached to the adapter 20. In particular, the conductive element 30 is disposed within the adapter 20.

[0049] In the embodiment shown, the conductive element (30) comprises a conductive plate (31) arranged perpendicular to the longitudinal axis of the imaging device, i.e., perpendicular to the pin (21.1) and / or pins (21, 21.1) that comprise the ground connection. It also comprises a sidewall (32) extending substantially perpendicular to said plate (31), and protrusions (9) extending outward from said sidewall (32). In addition, the protrusions (9) are located in two different, opposite positions on the base (31).

[0050] One advantage of the conductive element (30) including the plate (31) is that it improves electromagnetic compatibility, as the plate (31) acts like a Faraday shield that blocks electromagnetic fields.

[0051] The adapter (20) has a surface (22) that is substantially perpendicular to the longitudinal axis of the vehicle imaging device, i.e., substantially perpendicular to the pin (21.1) and / or pins (21, 21.1) that include the ground connection, and a side wall (23) that extends substantially perpendicular to said surface (22).

[0052] Furthermore, the conductive plate (31) extends until the side wall (22) of the adapter (20) substantially covers the surface (22), so that the plate (31) fits inside the adapter (20), i.e., its size and shape are substantially equal to the surface (22) of the adapter (20).

[0053] As mentioned previously, one advantage of the above configuration is that it improves electromagnetic compatibility, as the plate (31) acts like a Faraday shield, blocking electromagnetic fields. Additionally, unwanted external forces are absorbed by the side walls (23) of the adapter (20) rather than by the pins (21.1).

[0054] According to the embodiment of Figure 3, the side wall (23) of the adapter (20) comprises an opening (24) through which the protrusion (9) is adapted to pass so as to contact the inner surface of the housing (7, 8).

[0055] Figure 4A, 4B, and 4C show another embodiment in which the adapter (20) does not have openings (24) on the side walls (23). Therefore, the projections (9) do not extend through the openings (24) to contact the housings (7, 8). According to the embodiment shown, the conductive elements (30) extend over the side walls (23) of the adapter (20) and beyond the free ends of the side walls (23) of the adapter (20). The projections (9) are disposed between the housings (7, 8) and the outer surface of the side walls (22) of the adapter (20).

[0056] Figures 5 and 6 disclose two embodiments of the electrical connection between the conductive element (30) and the pin (21.1) that includes the ground connection.

[0057] An electrical connection is required between the projection (9) and, for example, the ground pin (21.1), either via a wire (not shown) or the aforementioned plate (31) shown in Figures 5 and 6.

[0058] The plate (31) is a conductive surface, which in one embodiment is a flat surface, and in the embodiment shown, the plate (31) comprises a number of orifices (34, 35) from which the pins (21, 21.1) emerge.

[0059] FIG. 5 shows an embodiment of the connection between the plate (31) of the conductive element (30) and the ground pin (21.1).

[0060] The plate (31) of the conductive element (30) contains an orifice (34) through which the ground pin (21.1) emerges, the orifice (34) being in electrical contact with the ground pin (21.1).

[0061] In Figures 5 and 6, the adapter (20) includes multiple pins (21, 21.1). In the embodiment shown in Figure 5, the plate (31) of the conductive element (30) includes multiple orifices (34, 35), one for each pin (21, 21.1). The orifice (34) of the ground pin (21.1) is in electrical contact with the pin (21.1), while the remaining orifices (35) are not in contact with the pin (21). Additionally, the plate (31) may include isolation elements disposed at the orifices (35) to prevent contact between the plate (31) and the data transmission pin (21).

[0062] In another embodiment shown in Figure 6, the plate (31) is provided with an orifice (36) through which the remainder of the pin (21) different from the ground pin (21.1) emerges. The advantage of this embodiment is that the device is suitable for several types of cameras, regardless of the camera supplier.

[0063] 7 is a cross-sectional view showing the contact between the projection (9) and the back housing (8). In particular, the back housing (8) has an opening (40) through which the adapter (20) passes. The projection (9) contacts, in particular, the side wall (41) of the opening (40). This has the advantage that when the adapter (20) is introduced through the opening (40), the projection (9) easily contacts the housings (7, 8). Furthermore, the adapter (20) shown is connected to the connector (5).

[0064] The printed circuit boards (3, 4) and the housings (7, 8) are in electrical contact, for example, inter alia, by the following means: - conductive adhesive, or - a gasket made of conductive material, or - Metallic or conductive screws that pass through the PCB (3, 4) and contact the housing (7, 8).

[0065] If the embodiment includes a single PCB (3), the contact will be between said PCB (3) and, for example, the front housing (7), and therefore the conductive adhesive or screws will be placed on said PCB (3). In an embodiment including two PCBs (3, 4), the contact will often be between a second PCB (4) and the front housing (7), and therefore the conductive adhesive or screws will be placed on said second PCB (4) so ​​that it contacts said front housing (7).

[0066] Additionally, the edges of the PCB (3) are coated with a conductive material such as copper.

[0067] In the embodiment with two PCBs (3, 4), both PCBs (3, 4) are connected to each other via a board-to-board device or flex.

[0068] The first printed circuit board (3) and the second printed circuit board (4) operate at different intensities and voltages. In one example, they operate at approximately 5 V. In one example, the distance between the two printed circuit boards PCB (3, 4) is between 1 mm and 10 mm, more specifically between 3 mm and 6 mm, more specifically 3.5 mm. These potential differences generate undesirable electromagnetic flux.

[0069] According to one embodiment of the camera device, the electromagnetic field varies between 50 GHz and 1500 GHz.

Claims

1. an image sensor (15) configured to capture an image; a lens (1) in communication with the image sensor (15) and configured to direct light rays to the image sensor (15); a printed circuit board (3) associated with said image sensor (15); a pin (21.1) including a ground connection and electrically connected to said printed circuit board (3); a housing (7, 8) having an internal cavity (12) surrounding at least the printed circuit board (3), the image sensor (15) and a portion of the pin (21.1) including a ground connection, the housing (7, 8) being electrically connected to the printed circuit board (3); a conductive element (30) arranged in electrical connection with the pin (21.1) including the ground connection, the conductive element (30) being in electrical contact with the housing (7, 8) such that a closed electrical loop is formed between the printed circuit board (3), the pin (21.1) including the ground connection, the conductive element (30), the housing (7, 8) and the printed circuit board (3); an adapter (20) having at least a plurality of pins (21) with said pin (21.1) including a ground connection; Equipped with The conductive element (30) is part of or attached to the adapter (20) so that the conductive element (30) is received within the adapter (20); The conductive element (30) further comprises a conductive connection contacting the housing (7, 8), The conductive element (30) comprises a plate (31) containing a plurality of orifices (34, 35); The plate (31) is provided with a plurality of orifices (34, 35) through which the pin (21.1) and a group of pins (21, 21.1) consisting of the plurality of pins (21) emerge.

2. 2. The vehicle imaging device according to claim 1, wherein the housing (7, 8) includes an opening (40) configured for the passage of at least the pin (21.1) including a ground connection from the cavity (12) of the housing (7, 8), and the conductive element (30) is a planar or curved surface element arranged to at least partially cover the opening (40).

3. 2. The vehicle imaging device according to claim 1, wherein the adapter (20) comprises a surface (22) substantially perpendicular to the pin (21.1) including a ground connection, and a sidewall (23) extending substantially perpendicular to the surface (22).

4. The conductive element (30) the conductive plate (31) arranged perpendicular to the pin (21.1) containing the ground connection; a side wall (32) extending substantially perpendicular to said plate (31); a projection (9) extending outward from the side wall (32) positioned to contact the internal cavity (12) of the housing (7, 8); 4. The vehicle imaging device according to claim 1, further comprising:

5. 5. A vehicle imaging device according to claim 3 or claim 4 depending on claim 3, wherein the conductive plate (31) extends to the side wall (23) of the adapter (20) and substantially covers the surface (22).

6. 5. A vehicle imaging device according to claim 4 dependent on claim 3, wherein the adapter (20) has an opening (24) in the side wall (23) corresponding to the protrusion (9) so that the protrusion (9) passes through the opening (24) to contact the housing (7, 8).

7. 7. A vehicle imaging device according to any one of claims 4 to 6, wherein the protrusion (9) is flexible and configured to be bent to adapt its position to contact the housing (7, 8).

8. 8. Vehicle imaging device according to any one of claims 4 to 7, wherein the protrusion (9) is configured to be bent in a direction perpendicular to the longitudinal direction of the pin (21.1) containing the ground connection.

9. 5. A vehicle imaging device according to claim 3 or claim 4 dependent on claim 3, wherein the protrusion (9) is configured to contact the housing (7, 8) beyond the free end of the side wall (23) of the adapter (20).

10. 10. Vehicle imaging device according to any one of claims 4 to 9, wherein the plate (31) of the conductive element (30) comprises an orifice (34) through which the pin (21.1) containing the ground connection emerges, the orifice (34) being in electrical contact with the pin (21.1) containing the ground connection.

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