The technical field of the present invention is that of touch-sensitive detection devices that are on board a human-machine interface. These touch-sensitive detection devices are used today in many fields such as home automation, computer hardware and in general for all systems for controlling an item of equipment. The subject of the invention is more particularly the application of such devices to the motor vehicle. In this field, these devices are commonly called human-machine interfaces as being a display and control device for items of vehicle equipment. This type of human-machine interface is found in the interior of the vehicle for controlling the navigation system, the audio or multimedia system or the air conditioning system.
Such an arrangement has many drawbacks. One of the main drawbacks is that the surround 104 forms an extra thickness relative to the upper portion of the sensor 102, which spoils the general appearance of the device. Specifically, for esthetic reasons, it is increasingly desirable that the overall surface of the HMI that can be seen by the user be as smooth and uniform as possible and it is clearly understood that such an extra thickness between the sensor and the housing goes against this smooth and uniform property. This is the consequence of using materials with different expansion properties. Specifically, the sensor 102 consists mainly of glass while the housing is usually made of plastic. Since the coefficients of expansion are different, it is not possible to maintain a constant clearance in all circumstances. This is why the devices of the prior art propose an overlap between the sensor and the surround while leaving an operating clearance which creates the drawbacks mentioned above.
Another drawback of the devices of the prior art lies in the fact that the style effects of the surround bordering the touch-sensitive sensor are not possible because the surround cannot extend too much over the sensor. This is therefore a technical obstacle which prevents said style effects.
The object of the present invention is therefore to solve at least one of the drawbacks described above mainly by reversing the method of attachment of a touch-sensitive detection means, that is to say by separating it from the screen with which it usually interacts. The invention uses a support to which the touch-sensitive detection means is attached in a suspended manner. As the coefficients of expansion of the materials of the touch-sensitive detection means and of the support are similar, there is little or no movement of one relative to the other and the clearance to be observed is transferred to another location of the device where it becomes easier to manage.
Moreover, the support offers the possibility of masking the peripheral imperfections of the touch-sensitive detection means while serving as a flat reference surface for the installation of the decorative portion.
The subject of the invention is therefore a human-machine interface comprising a touch-sensitive detection means and a support designed to be mounted in a housing, said support comprises an upper face oriented toward a user of the human-machine interface and a lower face opposite to the upper face, said support also comprises an opening, which is innovative in that the touch-sensitive detection means is attached to the lower face of said support, advantageously by bonding.
According to a second feature of the invention, the opening is delimited by an edge of the support, the touch-sensitive detection means being attached to said edge.
According to another feature of the invention, the support is a flat and rigid element, in particular a metal plate with a thickness of less than 0.5 mm.
According to another feature of the invention, the edge is peripheral all around the opening.
Advantageously, a film is placed on the upper face of the support so as to cover the opening and the edge.
The film is a film with decorative properties and/or a film with antiscratch properties and/or a film with antireflective properties and/or a film with diffusion properties and/or a film with polarizing properties.
According to another feature of the invention, a filling element is placed between the touch-sensitive detection means and the film, said filling element being installed in line with the opening.
The filling element is a transparent film.
Advantageously, a masking layer is interposed between the upper face of the support and said film.
According to another feature of the invention, the film also covers the housing, in particular its sharp edge.
The touch-sensitive detection means is a resistive or capacitive sensor, said sensor comprises a main plate and a secondary plate, said touch-sensitive detection means being attached to the lower face of the support by said secondary plate.
Alternatively, the touch-sensitive detection means is attached to the lower face of the support by said main plate.
In the human-machine interface according to the invention, a display device is placed on the opposite side of the support relative to the touch-sensitive detection means.
The support is secured to the housing by means of said lower face.
Finally, a haptic feedback means is provided for the purpose of applying a force to the touch-sensitive detection means in reaction to a detection carried out by the touch-sensitive detection means.
A principal advantage according to the invention lies in the removal of any extra thickness thus providing an aspect that is smooth, uniform and even to the interface. The appearance of the latter is thereby markedly improved.
Another advantage is one relating to logistics. Specifically, attaching the touch-sensitive detection means to a support before assembling the human-machine interface makes it possible to form a subassembly that can be manufactured more easily, for example in a location other than the assembly line for the human-machine interface.
It is understood here that the support makes it possible to concentrate all the tricky operations of assembly of the touch-sensitive detection means and of the decorative elements on the surface of the support.
Another advantage of the invention lies in the fact that the support provides a particularly flat surface which makes it easier to attach decorative film for example.
Other features, details and advantages of the invention will emerge more clearly on reading the description given below as an indication with respect to drawings in which:
It should be noted that the figures depict the invention in a detailed manner; said figures may naturally serve to better define the invention if appropriate.
The display device 13 is covered by the touch-sensitive detection means 1, the latter being distinct from the display means 13. An air and water seal is made between the display device 13 and the touch-sensitive detection means, more particularly the face of the display device 19 oriented toward the user and the rear face of the touch-sensitive detection means. This seal is achieved by a seal 20 placed on the periphery of the face 19 of the display device 13 oriented toward the user.
The touch-sensitive detection means 1 consists of a resistive sensor or a capacitive sensor, the invention finding a very particular application with a sensor of the resistive type. Said sensor consists of a main plate 10 and a secondary plate 11. These two plates are made of glass, the secondary plate 11 being thinner than the main plate 10. The secondary plate has the function of deforming under a force exerted by the finger of the user while the main plate is less deformable; its thickness is such that it does not flex under the effect of a pressure applied by the finger of a user. The sensor is thus capable of detecting the position of the finger of the user by virtue of a network of conductors placed between the main plate and the secondary plate, in an arrangement that is for example horizontal and vertical. The touch-sensitive detection means 1 is electrically connected to the electronic circuit board 16 by means of a multiconductor cable 25, the latter being connected to the electronic circuit board via a removable electric connector 26.
The touch-sensitive detection means 1 therefore has a sensitive face 21 oriented toward the user and a rear face 22 turned toward the display device 13. The touch-sensitive detection means 1 is attached to a support 2 which takes the form of a flat and rigid element with a thickness of between 0.20 and 0.50 mm. This element is a thin metal plate made for example of stainless steel. “Rigid” means that the thickness of this plate is such that it does not flex under the effect of the force exerted by the finger of a user in normal conditions of use of the human-machine interface. It is understood here that the support 2 is distinct from the housing 3 which surrounds the human-machine interface according to the invention.
The support 2 comprises two large faces called the upper face 4 and the lower face 5. The upper face 4 is that which faces the user and which is accessible to the touch of the latter. The lower face 5 is a face that is substantially parallel to the sensitive face 21 of the touch-sensitive detection means 1, the lower face 5 being turned toward the touch-sensitive detection means 1. In general, the upper face 4 is that which faces the interior of the vehicle while the lower face 5 is that which is oriented toward the inside of the instrument panel.
The housing 3 comprises a shoulder 23 that receives the support 2. This shoulder 23 delimits a cavity of which the length and width correspond substantially to the length and width of the support 2.
The touch-sensitive detection means 1 is attached to the inner face 5 of the support 2. This involves any means that can be used to secure two parts. Advantageously, a bead or drops of adhesive 24 make the mechanical connection between the sensitive face 21 of the touch-sensitive detection means and the lower face 5 of the support. Alternatively, the drops of adhesive may be replaced or supplemented by an adhesive strip. This arrangement makes it possible to obtain a touch-sensitive detection means assembled in “suspended” fashion in the human-machine interface.
The support 2 has an opening 6 delimited by an edge 7. When the opening 6 is made in the central portion of the support 2, the edge 7 peripherally surrounds the opening 6. This edge 7 covers the peripheral outer edge of the touch-sensitive detection means. The space created by the opening 6 in the touch-sensitive detection means 1 is filled by a filling element 9 the objective of which is to define in combination with the edge 7 and the upper face 4 of the support a flat and smooth surface. The filling element is a transparent and flexible film manufactured from a polycarbonate or polyethylene terephthalate (PET) strip.
A film 8 is placed on the upper face 4 of the support 2 so as to cover the opening 6 and the edge 7. This film extends over the whole surface of the support 2, and so it is understood that the dimensions of the film 8 and the dimensions of the support 2 are similar or even identical. Since this film covers the opening 6, it rests on the filling element 9 thus forming a surface that is totally smooth and uniform to the touch for the user. In this variant of the invention, the depth of the shoulder 23 is equal to the total of the
The film 8 is a transparent film which may have a single property or a combination of properties. A first property is associated with the decorative character of this facing film. Specifically, it is then easy to define a particular shape that can be seen by the user. The film 8 may also comprise antiscratch properties so as to prevent the appearance of any scratch marks on the surface of the human-machine machine. The film may also have an antireflective and diffusing property, the latter giving a matt appearance to the human-machine interface and preventing the mirror effects that are annoying for the user. The antireflective property prevents the incident light from rebounding from the surface. It involves a thin-layer treatment. The film may also have diffusion properties obtained by a slight lubrication which breaks up the incident light, reflecting it in all directions. Finally, the film 8 may have polarizing properties, that is properties that are capable of barring the light reflected by the glass plates of the touch-sensitive detection means in a given direction.
The touch-sensitive detection means 1 is bonded to the lower face 5 of the support 2, the latter being secured to the housing 3 in line with the shoulder 23 by an adhesive strip 32, notably a strip of adhesive or other attachment means. This makes it possible to ensure the positioning of the support 2 in the shoulder 23 of the housing 3 and thus keep the peripheral clearance 33 uniform and even between the film 8, the support 2 and the external edge 30 of the housing.
The filling element 9 comes in line with the opening 6 in order to fill the latter. The thickness of this filling element is in this instance equal to the total of the thickness of the drop of adhesive 24 and the thickness of the support 2.
A masking layer 12 is preferably applied to the film 8 or to the upper face 4 of the support 2. It, will be noted that this masking layer is opaque and overflows from the edge 7 to the filling element 9. This masking layer 12 has the function of hiding the technical and peripheral portions of the touch-sensitive detection means 1, in particular the drops of adhesive 24. Finally, this layer is screen printed onto the film 8 before it is applied to the support 2.
Number | Date | Country | Kind |
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1001317 | Mar 2010 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2011/000188 | 3/30/2011 | WO | 00 | 9/12/2012 |