Sensor device and device for checking the operational condition of a harness of a safety seat
10239487 ยท 2019-03-26
Assignee
Inventors
- Laurent Bailliard (Paris, FR)
- Louis Develay (Male, FR)
- Edouard Dupont-Madinier (Neuilly sur Seine, FR)
- Patrick Herbault (La Garenne Colombes, FR)
Cpc classification
B60R2022/485
PERFORMING OPERATIONS; TRANSPORTING
B60N2/002
PERFORMING OPERATIONS; TRANSPORTING
B60N2/2816
PERFORMING OPERATIONS; TRANSPORTING
B60N2/2812
PERFORMING OPERATIONS; TRANSPORTING
B60R21/01544
PERFORMING OPERATIONS; TRANSPORTING
B60R22/48
PERFORMING OPERATIONS; TRANSPORTING
B60N2/267
PERFORMING OPERATIONS; TRANSPORTING
B60N2002/2815
PERFORMING OPERATIONS; TRANSPORTING
B60R22/12
PERFORMING OPERATIONS; TRANSPORTING
B60N2/274
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0024
PERFORMING OPERATIONS; TRANSPORTING
G01L5/102
PHYSICS
B60N2/271
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60N2/28
PERFORMING OPERATIONS; TRANSPORTING
B60R21/015
PERFORMING OPERATIONS; TRANSPORTING
B60R22/48
PERFORMING OPERATIONS; TRANSPORTING
B60R22/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for controlling the correct operating state of a restraining harness, intended for a safety seat, including at least one retaining strap that is under tension when the harness is in the state of restraining the occupant, the device being intended to be disposed in a predefined area of the latter, the device including: at least one sensor device including an elongate flexible element that is suitable for being positioned on the strap, and in particular rigidly connected thereto in the predefined area, and that is provided with a measuring system to measure, in the predefined area, at least a level of bending and/or tilting of the strap, a device to collect values linked to the level of bending and/or tilting, and internal or external device configured to analyze the values and of communicating with a receiver for receiving information on the operating state of the retaining harness.
Claims
1. A device for checking that a securing harness, for a safety seat, including at least one retaining strap subjected to tension when the harness is in the state of holding an occupant, is in a correct operational condition, wherein said device is configured to be installed in a determined area of the strap, the device comprising: at least one sensor device including an elongated, flexible element which is positionable on said strap in said determined area, which has measuring means able to measure, in said determined area, at least one level of flexion and/or inclination of said strap, means able to obtain values relating to the level of flexion and/or inclination, internal or external means able to analyse the values and to communicate to receiver means data concerning the operational condition of said securing harness.
2. The checking device according to claim 1, wherein the retaining strap is a shoulder strap.
3. The checking device according to claim 2, wherein said determined area is close to a location where it is intended for the strap to be pressing against the shoulder of the occupant.
4. The checking device according to claim 1, wherein the sensor device is associated with an electronic circuit, and the elongated, flexible element is attached to it, both of these elements being contained in a flexible, elastic envelope so as to form a module which can be immobilised relative to the strap.
5. The checking device according to claim 4, wherein one end of the device includes means able to attach it, to a headrest of the child seat.
6. The checking device according to claim 4, wherein the flexible envelope has elasticity such that, when the flexible envelope is under no stress, the flexible envelope has an unbent shape.
7. The checking device according to claim 6, wherein the elasticity of the flexible envelope is communicated to it, at least partly, by an additional spring element.
8. The checking device according to claim 7, wherein the additional spring element consists of at least one snap ring made of synthetic fibre.
9. The checking device according to claim 1, further comprising electronic management means containing a program to control the various sensors.
10. The checking device according to claim 1, further comprising means for remote communication with receiver means.
11. The checking device according to claim 1, further comprising one or more sensors configured to output data based on the physical characteristics of the occupant.
12. A sensor device configured to implement a checking device for checking that a securing harness, for a safety seat, including at least one retaining strap subjected to tension when the harness is in the state of holding an occupant, is in a correct operational condition, said checking device configured to be installed in a determined area of the strap, the checking device comprising said sensor device, means able to obtain values relating to a level of flexion and/or inclination of the strap, and internal or external means able to analyse the values and to communicate to receiver means data concerning the operational condition of said securing harness, the sensor device comprising an elongated, flexible element which is positionable on said strap in said determined area, which has measuring means able to measure, in said determined area, said level of flexion and/or inclination of said strap.
13. The sensor device according to claim 12, wherein the sensor device is integrated in the retaining strap.
14. The sensor device according to claim 12, wherein said measuring means include at least one inclination sensor.
15. The sensor device according to claim 14, wherein the at least one inclination sensor consists of an accelerometer.
16. The sensor device according to claim 12, wherein the sensor device includes two inclinometers installed roughly at respective ends of the elongated, flexible element, wherein a difference between the two values delivered by the two inclinometers gives a value of the level of flexion of the strap.
17. The sensor device according to claim 16, wherein at least one other inclinometer is installed between the two inclinometers.
18. The sensor device according to claim 12, wherein the elongated, flexible element includes, at one end, a target in which one area becomes separated from a reference area when it is subjected to flexion, and wherein measuring means are installed to measure the distance between the target and said reference area.
19. The sensor device according to claim 18, wherein the flexible element is formed from an elongated sheath, an upper wall and lower wall of which are kept apart by separating elements, with the target installed in a portion of the sheath distant from the strap.
20. The sensor device according to claim 18, wherein the measuring means include a laser diode device.
21. The sensor device according to claim 19, further comprising two electrodes installed on the target and in the reference area which constitute a capacitance with the air which separates them as a dielectric, and also means for measuring the value of the capacitance.
22. The sensor device according to claim 12, wherein the flexible, elongated element is covered with a coating, such that its electrical resistance varies when it is bent.
23. The sensor device according to claim 22, wherein the elongated, flexible element is covered with a coating containing embedded conducting particles which, when it is appreciably rectilinear, give it a given resistance and, when it is curved, a resistance of another value.
24. The sensor device according to claim 22, further comprising means to measure the value of said resistance.
25. The sensor device according to claim 12, wherein the elongated, flexible element includes at least one capacitive sensor.
26. A safety seat comprising a checking device according to claim 1.
Description
(1) Ways of executing the present invention will be described below, as non-restrictive examples, with reference to the appended illustration, in which:
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(22) The other respective ends of these two straps 7 and 9 traverse apertures 12a, 12b located in the upper portion of the shell, and then join one another on the reverse side of it in a connection device 13, to which a traction belt 15 is attached which traverses the shell and then emerges from it through blocking means 17.
(23) In the present embodiment strap 7 has, in its upper portion, i.e. in an area close to aperture 12a through which it traverses backrest 1b, a case 18, made of a flexible, deformable material, which contains electronic measuring means and also a sensor device 19 according to the invention.
(24) Case 18 can be attached to strap 7 by all means, and in particular by stapling, clipping, bonding, trapping, etc. It can also be incorporated, in particular during manufacture, in the strap. Case 18 can preferentially be attached to an envelope surrounding the strap, where this envelope is held in place by a link close to the upper portion of the seat or of headrest 30 of the seat, as represented in
(25) As represented in
(26) Sensor device 19 which, inside case 18, extends electronic circuit 20, includes flexible tongue 23 which supports two accelerometers 24a and 24b, which include, in a known manner, an inclinometer function which will be used in the present case. The two accelerometers are preferentially installed roughly at the ends of flexible tongue 23, and are connected to microcontroller 26 by a wired link 27. As represented in
(27) In a simplified embodiment of the present invention either an inclinometer or a sensor device may simply be used. It will be understood that the accuracy of the data available to the user will then of course be lower, but it may prove of interest for simple, low-cost embodiments.
(28) As represented in
(29) A sensor device 19 using measuring means different from those described above could of course be used. Thus, in a second implementation of the present invention, which is represented in
(30) The sensor device has means enabling the existing distance between a target 33, positioned at its end close to electronic circuit 20, and a fixed portion of the latter, called the reference area, to be measured, as represented in
(31) This being so, it will be understood that when a flexion force F1 is exerted on strap 7 sensor device 19, lower face 29a of which is securely connected to the latter, is deformed, as represented in
(32) As represented in
(33) Additionally, electronic circuit 20 contains communication means 40, in particular of the Bluetooth type, which can transmit to external receivers, in particular such as devices of the smartphone type, or receivers incorporated in the vehicle, and in particular to its dashboard, the parameters collected or data output from the analysis of these parameters, which are managed by microcontroller 26. These receiver devices may to this end have a specific application able to manage the data transmitted by communication means 40.
(34) Another type of sensor device could also be used, for example one such as that represented in
(35) As above, an electronic circuit 20, in particular of the type described above, is combined with a flexible, elastic strip 44, for example made of a compound of polyamide, polyether, polyester, isocyanate, etc. However, this strip 44 is sufficiently rigid that, when not subject to any stress, it can regain its rectilinear shape, as represented in
(36) As described above, the assembly consisting of electronic circuit 20 and of sensor device 19 could also be installed in a receiver unit, not represented in the illustration, consisting of a flexible, deformable and elastic material.
(37) Strip 44 is given, over its entire length, a coating 46 made of a specific polymer ink in which conducting particles are embedded which give it, when it is appreciably rectilinear, as represented in
(38) This measurement could be made by any other means and, in particular, as represented in
(39) According to the invention, case 18 as described above, which is made from a flexible, deformable material, must also have an elasticity such that when it is not subject to any stress it returns to a position called its initial position, which is preferentially close to an appreciably rectilinear position, as represented in
(40) An example of the operation of the invention will now be described. In
(41) For its part, gyroscope 22 can detect any movement applied to seat 1, in particular when the user places a child 2 in it, and can transmit to microcontroller 26 the value of a jolt parameter g.
(42) The same applies to accelerometer 25 of electronic circuit 20, which detects any jolt applied to the seat relative to the vehicle, and any movement of it in space, and which can transmit to microcontroller 26 the value of acceleration parameter a.
(43) In practical terms, and although in the present mode of implementation of the invention it is considered that the inclinometer consists of a device distinct from the accelerometer, the latter can also be used to supply inclination parameter i, as explained below.
(44) For each condition detected during a period of operation which may be, in particular, of the order of 10 seconds, microcontroller 26 establishes a table of values of the various sensors. Thus, in the idle condition, i.e. before a child has been put into seat 1, we shall for example have the following values:
(45) Gyroscope 22: g=0
(46) Accelerometer 25: a=0
(47) Inclinometer 28: i=0
(48) Sensor device 19: f=0
(49) These various values are grouped by microcontroller 26 in a matrix the value of which will be represented by: [gaif], and it is communicated, via Bluetooth communication means 40, to the application contained in a receiver of the user which decodes it using an appropriate application, in particular a specific application in the case of a smartphone 56, and deduces from it that there is no child in the seat. Such a process can also of course be undertaken by microcontroller 26 itself.
(50) When a child 2 is placed in seat 1, as represented in
(51) Gyroscope 22: g=1
(52) Accelerometer 25: a=0
(53) Inclinometer 28: i0
(54) Sensor device 19: f0
(55) The matrix of values thus becomes [1000] and is obtained by microcontroller 26 and then communicated by the latter to the receiver, which deduces from it that a child has indeed been put into seat 1 and that, since neither inclinometer 28 nor sensor device 19 have changed their values significantly, strap 7 has continued to be applied on the seat, and that consequently child 2 is not yet strapped in. The application then displays on the smartphone a message similar to Child in the seat.
(56) After this, as represented in
(57) Gyroscope 22: g=1
(58) Accelerometer 25: a=0
(59) Inclinometer 28: i=1
(60) Sensor device 19: f=0
(61) The matrix of values then becomes equal to [1010] and is obtained by microcontroller 26 and communicated by it to the application. In this case the application observes, firstly, that an inclination has been detected, which means that this is higher than it should be if strap 7 were tight. The application also observes that a flexion has not been detected (f=0), implying that the strap has not been tightened. The application can consequently display, if desired, a message similar to: Child not strapped in.
(62) When, as represented in
(63) Gyroscope 22: g=1
(64) Accelerometer 25: a=0
(65) Inclinometer 28: i=1
(66) Sensor device 19: f=1
(67) The matrix of values becomes equal to [1011] and is obtained by microcontroller 26 and communicated by it to the receiver. The latter's application observes that, apart from the acceleration parameter, which is still at 0 (meaning that the vehicle is stationary), all other parameters are at 1, meaning that the child is correctly strapped in. The application will consequently display a message similar to Child correctly strapped in.
(68) In a simplified embodiment of the invention one could also dispense with the redundancy of the inclination and flexion parameters and, to do so, use only one inclinometer or only one sensor device 19 to determine whether the child is correctly strapped in.
(69) When the vehicle starts its movement is detected by accelerometer 25 and the acceleration parameter changes to 1. The sensors' parameters then adopt the following values:
(70) Gyroscope 22: g=1
(71) Accelerometer 25: a=1
(72) Inclinometer 28: i=1
(73) Sensor device 19: f=1
(74) The matrix of values becomes equal to [1111] and is obtained by microcontroller 26 and communicated by it to the receiver. The latter's application can thus deduce that the vehicle is moving, and that the child is correctly strapped in.
(75) Thus, while acceleration parameter a=1, the device knows that the vehicle is moving and if, during this period, or journey period, the child becomes detached, strap 7 will then be in a position close to the one represented in
(76) Gyroscope 22: g=1
(77) Accelerometer 25: a=1
(78) Inclinometer 28: i=0
(79) Sensor device 19: f=0
(80) The matrix of values then becomes equal to [1100] and is obtained by microcontroller 26 and communicated to the receiver, which deduces that the vehicle is moving but that strap 7 has returned to its initial position, which implies that the child is detached. The application then sends an urgent alert to the user's receiver, which can be both acoustic and visual, similar to Warning: child unstrapped.
(81) If only the tightening buckle of the harness becomes detached, sensor device 19 would then, due to its inherent stiffness, regain an uncurved shape, and the flexion parameter would adopt value f=0. The values of the parameters then become:
(82) Gyroscope 22: g=1
(83) Accelerometer 25: a=1
(84) Inclinometer 28: i=1
(85) Sensor device 19: f=0
(86) The matrix of values becomes equal to [1110] and is obtained by microcontroller 26 and communicated to the receiver, which deduces from it that the vehicle is moving, that strap 7 has indeed remained on the shoulder of the child, but that buckle 5 is unbuckled. The application then sends a message similar to Warning: child unstrapped.
(87) In an interesting manner, the checking device according to the invention can include means enabling the parameters of different child seat models to be recorded, in particular in microcontroller 26, and in particular value i0 of inclinometer 28 and value f0 of sensor device 19 corresponding to the situation represented in
(88) In various variant embodiments of the present invention the reliability of the checking device can be improved by using several sensor devices in a single seat, these sensors being of the same type or of different types.
(89) Thus, as represented in
(90) The checking device according to the invention can also include means enabling account to be taken automatically of the influence of the physical build of the child, and in particular their size, when they are in position in the seat, and when the retaining strap has been passed over their shoulder, as represented in
(91) The device can determine this situation, and therefore record the parameters of the various sensors, and these values can be used as references to detect a new situation. Firstly, the angle of inclination of the strap relative to horizontal is known by means of an inclinometer 24a located at one end of flexible case 18 of the device, and the value of this angle will vary according to the real or induced physical build of the child in the seat. Secondly, the curvature of this strap in the area of the child's shoulder and chest will be known by the value of the angle measured by sensor device 19. These values compared to the reference values stored in a matrix called an adaptive matrix enable the exact way the child is strapped in to be deduced, using appropriate algorithms.
(92) More specifically, and as represented in
(93) Below we shall consider angle A formed by rear portion 7a of strap 7 with a reference direction, which is given by sensor 24a, and angle B formed by front portion 7b of the latter, with the same reference direction, which is provided by sensor 24b. For a child of maximum size, i.e. the maximum size authorised by the legislation, and for a headrest 30 adjusted to maximum height, as represented in
(94) Conversely, for a small child, and for a headrest 30 adjusted to the minimum height, as represented in
(95) Under these circumstances it is observed that rear portion 7a of strap 7 is indicative of the height adjustment of headrest 30, and that its front portion 7b is indicative of the child being correctly strapped in. According to the invention, between the two accelerometers 24a and 24b, as included in the embodiment illustrated in
(96) The checking device according to the invention may also include means which, once the child is correctly strapped into the seat, as represented in
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(98) Microcontroller 26 includes means to put the electronic unit which it controls into sleep mode when inclinometer 28 and sensor device 19 are not being used. When the user puts a child 2 in the seat gyroscope 22 is activated, and it transmits information to a counting loop which measures the amount of data which the gyroscope is sending to it over a given time, for example two seconds. Such an arrangement enables a filtering system to be created, enabling spurious detections to be eliminated. If this number of data elements is greater than a predefined value, for example 10 in the example represented in
(99) This matrix is sent by microcontroller 26 via Bluetooth communication means 40 to a receiving application loaded, for example, in a smartphone 56.
(100) The other sensors, i.e. accelerometer 25, inclinometer 28 and sensor device 19, include, as represented in
(101) Similar reasoning applies for inclinometer parameter i supplied by inclinometer 28 and for parameter f supplied by sensor device 19.
(102) We shall consider below, as examples, the main situations which may occur during a process starting from the situation of a seat at rest until, once again, the seat returns to its rest state after the vehicle has accomplished a journey with the child.
(103) TABLE-US-00001 Matrix of Situation parameters Message Seat at rest: 0000 Child in the seat: 1000 Child in the seat Strap passed over the 1010 Child not strapped in shoulder: Harness tightened: 1011 Child correctly strapped in Vehicle moving and strap 1110 ALERT: CHILD UNSTRAPPED unbuckled: Vehicle stopped, child 1000 Child detached detached Child has left the seat 0000
(104) According to the invention, the remote receiver may, in addition to smartphone 56 mentioned above, consist of an object in the user's possession, and could for example consist of a key fob belonging to them.
(105) In a simplified embodiment of the invention, microcontroller 26 will not be in communication with a remote receiver such as a smartphone, but will be able to transmit by itself the data for the user's attention, in particular by acoustic means. These warnings may consist of sounds of different kinds generated by one or more buzzers, or of voice messages emitted by a voice synthesiser associated with microcontroller 26.
(106) In a variant of the present invention, a vibrator may be added to the device which, in an educational and preventative aim, will firstly alert the child, reminding them that they must not unstrap themselves when they are installed in their seat and when the vehicle is moving.
(107) A presence sensor, for example a capacitive sensor, and in particular a sensor using the variation of capacitance of a loop which detects when a body having mass is brought within proximity of it, can be added to the device, to introduce redundancy into the sensors, such that the device meets the motor vehicle standard which requires that a defective sensor enables the system to continue to operate without danger. To this end, and as represented in
(108) In a variant, and as represented in
(109) According to the invention the application controlling microcontroller 26 may include a self-test program which will be run each time the car seat is used, in particular after a prolonged stop.
(110) In a variant of the present invention the inclinometer will consist of the accelerometer itself, which will thus be able to provide, firstly, the actual acceleration of the vehicle, in three axes xx, yy, zz, and also the inclination of case 18 containing electronic circuit 20 and sensor device 19. This being so, the flow chart relating to accelerometer 25 and to inclinometer 28 is replaced by the one represented in
(111) Of course, and as mentioned above, the signal processing means may include electronic elements able to transmit the alarm signal remotely, for example via a Bluetooth link 40 to smartphone 56 of the user, by means of a dedicated application of this smartphone. The means for processing the signal could also transmit the alarm signal to an object belonging to the user, in particular by means of a link of the radio frequency type. They could also transmit the alarm signal to receiver elements which are securely attached to the motor vehicle's dashboard.
(112) The present invention is particularly interesting in that the present checking device can be installed on any seat, whatever its type or trademark, with no requirement, unlike the devices of the prior state of the art, to accomplish any technical adaptation whatsoever on the seat.
(113) This being the case, manufacturers of child seats can thus install the checking device on the various models of their range of existing seats without modification, and users can also use the checking device on various seats owned by them, without modification.
(114) The system according to the invention proves to be particularly easy to install, since to use it one need merely attach it to the upper portion of one of the straps, i.e. in an area close to that area where the said strap passes through the back of the seat.
(115) Although the checking device according to the present invention proves to be particularly interesting when checking the satisfactory operational and tension condition of a child's car seat harness, it could also be used in other fields where it is necessary to hold an occupant in a seat under correct safety conditions.
(116) Such a seat could, of course, be a seat intended for an adult, and could consist not only of a car seat, but also of a seat of the type used in other means of locomotion, and in particular in the aviation field.
(117) The strap holding an occupant in a seat could also be something other than a shoulder strap, and could in particular be a lap belt.