The present invention generally concerns surface acoustic wave (SAW) devices utilized for sensing physical parameters, such as pressure and/or temperature, as may be associated with a tire or wheel environment. More particularly, an improved interface between respective pressure-sensing diaphragm and internal sensor components of such SAW devices is provided.
The incorporation of electronic devices with pneumatic tire structures yields many practical advantages. Tire electronics may include sensors and other components for obtaining information regarding various physical parameters of a tire, such as temperature, pressure, number of tire revolutions, vehicle speed, etc. Such performance information may become useful in tire monitoring and warning systems, and may even potentially be employed with feedback systems to regulate proper tire pressure levels.
One particular type of condition-responsive device that has been utilized to determine various parameters related to a tire or wheel assembly is an acoustic wave device, such as a surface acoustic wave (SAW) device. Such SAW devices may include at least one resonator element made up of interdigital electrodes deposited on a piezoelectric substrate. When an electrical input signal is applied to a SAW device, selected electrodes cause the SAW to act as a transducer, thus converting the input signal to a mechanical wave in the substrate. Other structures in the SAW reflect the mechanical wave and generate an electrical output signal. In this way, the SAW acts like an electromechanical resonator. A change in the output signal from a SAW device, such as a change in frequency, phase and/or amplitude of the output signal, corresponds to changing characteristics in the propagation path of the SAW device. In some SAW device embodiments, monitored device frequency and any changes thereto provide sufficient information to determine parameters such as temperature, and strain to which a SAW device is subjected.
In accordance with a known particular SAW device embodiment, a piezoelectric substrate is provided with one or more resonator elements positioned thereon. A casing assembly for packaging the SAW device includes respective base and lid portions. The lid portion is configured for operation as a pressure-sensing diaphragm and is provided with a dimple that aligns precisely with a given surface area on the piezoelectric substrate.
Proper mechanical alignment of the diaphragm dimple to its given surface area on the piezoelectric substrate can sometimes be difficult to ensure due to the nature of positioning a relatively small dimple point to a precise location on the substrate. Additional uncertainty may arise when aligning such portions of a SAW device due to potential unpredictability in the performance of the casing assembly during assembly and welding. As such, an improved interface between the respective pressure sensing diaphragm and piezoelectric substrate portions of a SAW device is desired.
While various implementations of acoustic wave devices such as SAW sensors have been developed, no design has emerged that generally encompasses all the desired characteristics as hereafter presented in accordance with the subject technology.
In view of the recognized features encountered in the prior art and addressed by the present subject matter, an improved surface acoustic wave (SAW) device utilized for sensing various physical parameters has been developed. Such a SAW device is provided with an improved interface between respective pressure-sensing diaphragm and internal sensor components of the device.
In accordance with one exemplary embodiment of the present invention, an improved sensor assembly includes a substrate with one or more resonator elements provided thereon. The substrate preferably consists of a piezoelectric material, such as quartz, and the resonator elements may be surface acoustic wave (SAW) resonators. A projection is also provided on the substrate in a predetermined location for force application with a portion of a casing assembly that is configured to encase the substrate and components provided thereon.
In other more particular exemplary embodiments of the present invention, the casing assembly comprises first and second casing components. A first casing component corresponds to a rigid base portion for supporting the substrate. A second casing component corresponds to a lid portion that is secured to the base portion and that is provided with a recessed surface area or indention at a location for interfacing with the projection provided on the substrate. The lid portion is configured to flex upon subjection to certain amounts of pressure, whereby the recessed surface area and projection come into physical contact. This physical contact affects the strain of selected resonator elements on the substrate, resulting in a change to their electrical output signals, thus yielding an indication of change in pressure or strain. The electrical output of other resonator elements may provide an indication of different physical parameters such as temperature.
Still further embodiments of the present invention involve integration of the above sensor assembly embodiments with a pneumatic tire structure and/or wheel assembly to yield a tire assembly with the ability to monitor and measure physical parameters such as temperature or pressure. Antennas are preferably coupled to such sensor assemblies to facilitate the communication of remote signals to and from the resonator elements.
An advantage of certain embodiments of the present invention is that mechanical alignment is facilitated at the interface formed by the surface indentation of the casing assembly and the projection on the substrate because the alignment now does not need to be as precise during assembly of the casing portions of the sensor assembly. Thus, a SAW sensor with improved ease of assembly is afforded.
A further advantage of certain embodiments of the present invention is that modification of the sensing diaphragm embodied by the lid portion of the casing assembly is permitted to have a lower spring constant, thus reducing the contribution of hysteresis and nonlinearity from the diaphragm and allowing the piezoelectric substrate to operate closer to its inherent capability for linearity and stability.
Additional objects and advantages of the present subject matter are set forth in, or will be apparent to, those of ordinary skill in the art from the detailed description herein. Also, it should be further appreciated that modifications and variations to the specifically illustrated, referred and discussed features and steps hereof may be practiced in various embodiments and uses of the invention without departing from the spirit and scope of the subject matter. Variations may include, but are not limited to, substitution of equivalent means, features, or steps for those illustrated, referenced, or discussed, and the functional, operational, or positional reversal of various parts, features, steps, or the like.
Still further, it is to be understood that different embodiments, as well as different presently preferred embodiments, of the present subject matter may include various combinations or configurations of presently disclosed features, steps, or elements, or their equivalents (including combinations of features, parts, or steps or configurations thereof not expressly shown in the figures or stated in the detailed description of such figures). Additional embodiments of the present subject matter, not necessarily expressed in this summarized section, may include and incorporate various combinations of aspects of features, components, or steps referenced in the summarized objectives above, and/or other features, components, or steps as otherwise discussed in this application. Those of ordinary skill in the art will better appreciate the features and aspects of such embodiments, and others, upon review of the remainder of the specification.
A full and enabling disclosure of the present subject matter, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
Repeat use of reference characters throughout the present specification and appended drawings is intended to represent same or analogous features or elements of the invention.
As discussed in the Summary of the Invention section, the present subject matter is particularly concerned with surface acoustic wave (SAW) devices utilized for sensing physical parameters, such as pressure and/or temperature, as may be associated with a tire or wheel environment. More particularly, an improved interface between respective pressure-sensing diaphragm and internal sensor components of such SAW devices is provided.
Referring now to particular aspects of the drawings,
Referring now to
Proper mechanical alignment of the diaphragm dimple 20 to its given surface area 22 on the piezoelectric substrate 12 can sometimes be difficult to ensure due to the nature of positioning a relatively small dimple point to a precise location on the substrate. Additional uncertainty may arise when aligning such portions of a SAW device 10 due to potential unpredictability in the performance of the casing assembly 16, 18 during assembly and welding. As such, the present invention generally provides for an improved interface between the pressure sensing diaphragm portion 18 and piezoelectric substrate portion 12 of a SAW device, such as will now be presented with respect to
Some features of the exemplary SAW device illustrated in
Referring now to
In contrast to the exemplary prior art SAW device embodiment 10 of
Referring to the SAW device embodiment 28 of
As previously mentioned, the SAW sensor assembly of the present invention, an example of which has been presented with respect to
In order to wirelessly communicate with a remote transceiver location, SAW device 28 may also include an antenna. When SAW device 28 is configured as a single port device with two or more physical connection points to the single port, an antenna may be connected to such input port of SAW device 28 to facilitate the transmission of output signals therefrom. For instance, two antenna wires 38a and 38b may be provided in combination to serve as a dipole antenna for the condition-responsive device. Antenna wires 38a and 38b may have respective straight or curved configurations and lengths that are designed for optimal signal propagation. It should be appreciated that other antenna configurations, such as monopole antennas, loop antennas, helical antennas, or others as within the purview of one of ordinary skill in the art, is within the spirit and scope of the present invention.
While the present subject matter has been described in detail with respect to specific embodiments thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, the scope of the present disclosure is by way of example rather than by way of limitation, and the subject disclosure does not preclude inclusion of such modifications, variations and/or additions to the present subject matter as would be readily apparent to one of ordinary skill in the art.