This application is a U.S. national phase application filed under 35 U.S.C. §371 of International Application PCT/EP2007/055511, filed on Jun. 5, 2007, designating the United States, which claims priority from DE 10 2006 031 207.4, filed Jul. 3, 2006, which are hereby incorporated herein by reference in their entirety.
The invention relates to a sensor system for a steering wheel and to a steering wheel.
In vehicle engineering there is a constant need to improve the active and passive safety of a motor vehicle. In order to improve both the active and passive safety it is necessary for travel data of the motor vehicle to be acquired and further processed quickly and reliably. This is the only way that safety-related devices for active safety (for example ABS systems) or for passive safety (for example airbags) can be actuated.
These systems can operate reliably only if relevant data is acquired efficiently by means of sensors. For example, in the event of an impact an impulse is applied to the motor vehicle in a very short time.
The present invention is based on the object of providing a device with which it is possible to react, in particular, to impact events quickly and efficiently.
The object is achieved by virtue of the fact that at least one sensor means for sensing the effect of an acceleration is arranged in and/or on a steering wheel rim.
It is particularly advantageous if the steering wheel rim has at least one electrical outer conductor and at least one electrical inner conductor for forming a coaxial arrangement. As a result, module-integral components can be used within the scope of the sensor means.
In addition it is advantageous if the sensor means senses the field effect, the force effect and/or the resulting deformation of part of the steering wheel relative to the at least one outer conductor and/or to the at least one inner conductor. These variables can be sensed satisfactorily and constitute a measure of the acceleration or its effect. An effect is, for example, an oscillation which propagates in the steering wheel as far as the steering wheel rim.
A simple design is obtained if the sensor means senses the distance between two parts of the steering wheel rim.
An advantageous measurement principle is obtained if the at least one sensor means has a capacitive and/or an inductive sensor unit or is coupled to a capacitive and/or inductive sensor unit. In conjunction with a coaxial arrangement it is advantageous if the capacitive and/or inductive sensor unit is coupled to parts of the steering wheel, in particular the at least one outer conductor and at least one inner conductor with different masses, rigidity and/or densities so that a signal for sensing the acceleration can be generated from the deformation of the parts.
An advantageous embodiment of the sensor system has a transmitting means, in particular at least one antenna loop for emitting a coaxial wave, a TE wave, a TM wave, a TEM wave and/or a wave, and a sensor means for detecting a reflection of the coaxial wave, of the TE wave, of the TM wave, of the TEM wave and/or of the wave. It is particularly advantageous here if at least two conductor loops are arranged in the steering wheel rim. If four conductor loops are advantageously arranged symmetrically in the steering wheel rim, in particular each in a quadrant, direction sensing is possible in a particularly efficient way. It is also advantageous if at least one antenna loop and/or at least one conductor loop can be used for direction-indicating detection of a force effect.
Furthermore it is advantageous if the receiver means senses a change in a property of the coaxial wave, in particular a field line change and/or attenuation as a function of a relative movement of parts of the steering wheel. The receiver means advantageously senses the reflection factor.
A particularly simple design is obtained if the skeleton of the steering wheel rim is embodied at least partially as an inner conductor. A further advantageous embodiment is that a steering wheel heating device is embodied in the steering wheel rim, at least partially as an outer conductor.
The change in signals in the interior of the steering wheel rim can be influenced by arranging at least one dielectric element in the steering wheel rim. It is particularly advantageous if the dielectric element is arranged as a foamed material jacket and/or liquid container in the steering wheel rim.
The steering wheel rim is advantageously electrically insulated with respect to the steering wheel plate.
According to the invention, the influence of an acceleration can be sensed, and in this context it is advantageous if a triggering means for an airbag fires the airbag as a function of a triggering signal which is generated by the sensor means.
So that the sensor means does not respond when customary accelerations occur in the motor vehicle, it is advantageous that the triggering signal is not output by the sensor means until the effect of the acceleration exceeds a predetermined value.
The object is also achieved by means of a steering wheel having a sensor system according to the invention.
The invention is explained in more detail below with reference to the figures of the drawings and using a plurality of exemplary embodiments. In said drawings:
In the event of an impact a negative acceleration acts via a force effect to bring about different deformations of the bodywork of the motor vehicle and parts of the motor vehicle. The acceleration and its force effect depend here on the mass of the respective part of the motor vehicle, i.e. when there is an identical force effect, relatively lightweight parts of the motor vehicle are accelerated less than relatively heavy parts of the motor vehicle. The acceleration can also be manifest in the form of an oscillation.
In the text which follows, different embodiments of a sensor system according to the invention are presented, in each of which embodiments a sensor means 1, with which the acceleration B acting on the vehicle can be sensed quickly and efficiently, is provided.
In this context, in the first three embodiments the sensor means 1 is coupled to a coaxial arrangement having an outer conductor 1A and an inner conductor 1B. The input signals 4 of the sensor means 1 are generated by means of electrical interactions between the outer conductor 1A and the inner conductor 1B, with the interactions resulting from the acceleration effects acting on the steering wheel or parts thereof.
The first group of embodiments relates to changes in the capacitance C and/or the inductance L in the steering wheel rim 10 which are converted into output signals 5 by the sensor means 1. The output signals 5 are used to address other parts of the motor vehicle or trigger them. An output signal 5 can therefore be used to trigger an airbag (not illustrated) in the steering wheel if a predetermined value for the acceleration B is reached).
In addition, the sensor means 1 has an inductive sensor unit 2 and/or a capacitive sensor unit 3.
The changes in the capacitance and/or the inductances are brought about by changes in the distances between parts of the steering wheel rim 10, specifically the outer conductor 1A and the inner conductor 1B. The changes in distance can be attributed to different accelerations (for example force effects) within the steering wheel rim 10.
The foamed layer 30 is surrounded by two shielding means in this embodiment. A heating web 1B on the circumference of the steering wheel rim 10 forms the outer conductor 1B of the coaxial arrangement. In addition, but not absolutely necessarily, a further shielding layer 31 is arranged inside the outer conductor 1A. Basically, a plurality of heating webs can also be used.
On the outside, the steering wheel rim is surrounded by a sheath 32 which can be composed of wood, leather or plastic.
The coaxial arrangement with an inner conductor 1B and outer conductor 1A is to be conceived of in a first approximation as a coaxial cable whose capacitance C is given by
Here l is the length of the coaxial arrangement (for example the length of the steering wheel rim 10, rI is the radius of the inner conductor 1B and rA is the radius of the outer conductor 1A. In the embodiment according to
As a result of an acceleration B which acts on the steering wheel rim 10, the geometric relationships in the steering wheel rim 10 change. As a result of a compression of the dielectric element 30, i.e. the foamed layer, the distance between the inner conductor 1B and the outer conductor 1A changes, which can be measured as a change in capacitance according to the above equation. If the distance between the outer conductor 1A and the inner conductor 1B decreases (given a constant diameter of the inner conductor 1B), the capacitance drops.
In a second embodiment according to
However, the dielectric element 30 is divided into two layers 30A, 30B here. The foamed component in the first layer 30A has here a different density or a different compression module from the foamed component in the second layer 30B. A difference in the compression module indicates the degree to which the foam can be compressed under loading.
The two embodiments according to
Alternatively or additionally it is also possible to apply an inductive measurement method. The acceleration or force effect on the steering wheel rim and its parts also brings about a change in the inductance L.
In the case of a coaxial cable arrangement, which can be approximately assumed, the inductance is given as
If the distance rA between the outer conductor 1A and inner conductor 1B decreases, the inductance drops.
The embodiments according to
A third embodiment of the sensor system according to the invention is also based on a coaxial arrangement, but the effect of an acceleration is determined in a different way.
Here, the same coaxial basis configuration as that described in
In the text which follows, the basic principles of this embodiment are presented in relation to a steering wheel rim, with reference being made to
The electrical field lines of the coaxial wave (TEM wave) in which no field strength components occur in the direction of the line axis (perpendicular to the plane of the drawing in
In contrast, the field lines divide the cross section into n strips 41 of equal capacitance and in
The line capacitance per cm line length, referred to as capacitance per unit length C′, can then be determined by a parallel connection of the in n=16 equal capacitances CS, that is to say from the sum
As a numerical value equation in pF/cm:
The inductance of the line per centimeter line length, referred to as the inductance per unit length L′, can also be obtained from the field form. For a homogeneous dielectric with permeability μr the following applies:
or in numbers (nH/cm)
The characteristic impedance Z (in Ohms) is the quotient of the voltage and current of the progressive coaxial wave measured at any point on a loss-free high-frequency line. It is real for loss-free lines and therefore:
In the above equation, rn signifies the number of dielectrics or permeabilities.
Since the characteristic impedance therefore constitutes a constant value for the total coaxial value for the total line path, it can also be given as a function of the internal diameter D of the outer diameter 1A and of the external diameter of the inner conductor 1B:
where ∈r is the relative dielectric constant of the dielectric between the inner conductor 1A, and outer conductor 1B.
The determining characteristic variable for a coaxial connection is therefore the characteristic impedance Z.
From the above relationship for the characteristic impedance Z it becomes clear that a change in the diameter has an influence on the characteristic impedance Z which can be detected. This is described in more detail below. If, for example, the diameter D is smaller, the characteristic impedance Z also drops.
Attenuation and Skin Effect
The sum of the following loss components produces the attenuation of electromagnetic waves on the coaxial line:
α1 resistive attenuation of the inner conductor 1B
αA resistive attenuation of the outer conductor 1A
αG leakage attenuation
For the attenuation α the following applies generally α=αR+αG. Here, αL=αi+αa the absolute value of what is referred to as the longitudinal attenuation.
The resistive attenuation values are decisively influenced by the skin effect which is effective at high frequencies.
For the calculation of the loss values it is necessary that the currents only flow in a uniformly distributed fashion in what is referred to as an equivalent conductive layer thickness. In the case of nonmagnetic materials—where μr=1—the conduction layer thickness s is obtained as a numerical value equation (cm; Hz):
The correction factor k1 is dependent on the conductor material used and is, for example, standardized for silver k1=1.0 and for gold k1=1.17. In addition, the specific surface resistivity Q′ is defined as the resistance of a piece of the surface of the thickness s with the length 1 cm and the width 1 cm. Therefore, for μr=1 and with the conductivity N(s/M) the following applies
It is apparent from this that the resistance losses αR of the inner conductor αi and of the outer conductor αa are essentially dependent on √{square root over (f)}, and on the conductivity and thickness of the conductive layer which act in an inversely proportional fashion.
Given the same conductor materials, for αR=αi+αa the following applies
In the case of conductors with rough surfaces, the current paths are longer and the equivalent resistances and losses are greater than in the case of conductors with smooth surfaces. Contact points should therefore have short current paths.
The effect of the dielectric losses in the conductance per unit length G′ is generally described by means of the expression
αG=πf√{square root over (L′C′ tan δ∈)}
The conductance losses grow proportionally with f if δ∈ is approximately independent of the frequency.
Reflection Factor
As a determining value for the quality of a coaxial connection, the reflection factor r which is related to the nominal value of the characteristic impedance ZL is defined as:
with Z as the measured characteristic impedance at the respective location of the line and ZL is the characteristic impedance on the line (nominal value).
Likewise, the reflection factor can be determined by acquiring the voltage distribution along a measuring line:
Measuring methods for this are defined by DIN 47275 part 3. In this context, the variables of the ripple factor
and adaptation factor
are defined. The smaller the reflection factor at a frequency the better the coaxial connection system.
Further embodiments make use of these relationships by sensing changes in the field lines or changes in the attenuation of the coaxial wave as a function of the effect of the acceleration.
In the steering wheel rim 10, the dielectric 30, 30A, 30B influences the propagation of the coaxial wave.
A third embodiment which utilizes these effects is illustrated in
In a third embodiment according to
In the event of an impact, the filled cavities 33 in the steering wheel rim experience a force effect owing to the acceleration. The dielectric properties in the steering wheel rim 10 therefore change, which in turn leads to a detectable change in the wave propagation; signals are changed or delayed.
These changes in the signals can additionally or alternatively be used for the signals which result from deformations owing to the capacitive or inductive signals.
These changes in the signals can also additionally be used for the changes in the characteristic resistance due to changes in the geometry.
All the illustrated embodiments have in common the fact that it is possible to define a threshold value below which the sensor system does not output a crash signal. Therefore, the steering wheel can be deformed through normal loading when driving, in which case the deformation variable and/or the deformation speed are clearly differentiated from those in impact events.
The invention is not restricted in its embodiment to the preferred exemplary embodiments specified above. Instead, a number of variants are conceivable which also make use of the sensor system according to the invention in embodiments which are basically of a different nature.
Number | Date | Country | Kind |
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10 2006 031 207 | Jul 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2007/055511 | 6/5/2007 | WO | 00 | 12/22/2008 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2008/003558 | 1/10/2008 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
6293361 | Mueller | Sep 2001 | B1 |
7044021 | Lorenz | May 2006 | B2 |
7602278 | Prost-Fin et al. | Oct 2009 | B2 |
7710279 | Fields | May 2010 | B1 |
20030111278 | Hauer et al. | Jun 2003 | A1 |
20040025624 | Kreuzer | Feb 2004 | A1 |
20040267422 | Bossler et al. | Dec 2004 | A1 |
20060022442 | Rubboli | Feb 2006 | A1 |
20100030429 | Kuramori | Feb 2010 | A1 |
Number | Date | Country |
---|---|---|
42 42 230 | Jun 1994 | DE |
198 02 249 | Sep 1999 | DE |
100 48 956 | May 2002 | DE |
202 12 398 | Jan 2003 | DE |
203 09 603 | Oct 2003 | DE |
203 09 877 | Dec 2003 | DE |
10 2004 062 040 | Jul 2006 | DE |
20 2006 005 593 | Oct 2006 | DE |
0 930 192 | Jul 1999 | EP |
1 319 571 | Jun 2003 | EP |
1 491 409 | Dec 2004 | EP |
1 621 442 | Feb 2006 | EP |
1 842 761 | Oct 2007 | EP |
2006069746 | Jul 2006 | WO |
Number | Date | Country | |
---|---|---|---|
20090199676 A1 | Aug 2009 | US |