Directional coupler sensor
A directional coupler sensor is provided for measuring the moisture content of a substrate, such as hair. The sensor incorporates a high frequency directional coupler having a pair of generally parallel plates defining a coupling gap therebetween. A high frequency signal generator generates an electromagnetic field across the gap with the substrate placed across the coupling gap. The coupled power relates to the moisture content of the substrate. A pressure sensor is provided to ensure that the desired compactness of the substrate across the coupling gap is achieved to obtain accurate, reliable and consistent results.
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This application claims the benefit of U.S. Provisional Application No. 60/387,474, filed Jun. 10, 2002.
FIELD OF THE INVENTIONThe present invention relates generally to measurement sensors and, more particularly, to a sensor for measuring a property of a substrate, such as the internal and external moisture content of biological systems such as hair.
BACKGROUND OF THE INVENTIONHuman hair is made up of a complex protein called alpha-keratin. Protein molecules of the hair are arranged in organized patterns and are held together by weak bonds, such as hydrogen, saline and hydrophobic bonds, and stronger ionic bonds and sulphur bridges. These bonds lend stiffness or rigidity to the hair and enable styling of the hair with waves and curls as these bonds are broken and then re-established in different orientations through the styling process. As is known, styling of hair may be accomplished by breaking the bonds by adding energy to the hair, such as by heat with a curling iron or blow dryer, or by getting the hair wet or damp. When the hair is wet or damp and the hydrogen bonds are broken, the hair becomes elastic and can be stretched and given a particular form since the position of the keratin chains has been altered. As the hair dries, the bonds reform in different places, maintaining the hair in its new shape. Blow-drying or setting assists in controlling the styling process so that, once dry, the hair will retain the form it has been given.
Hair is hydroscopic and permeable so it will absorb water from the environment. Under normal conditions, water accounts for about 12% to 15% of the composition of hair. Normal hair can absorb more than 30% of its own weight in water. If the hair is damaged, this percentage can approach 45%, however damaged hair has less ability to retain water within the hair fibers which gives hair its healthy appearance. As more water is absorbed within the hair fiber due to humidity or prior damage, the hydrogen bonds may loosen so that the hair has a decreased ability to maintain its set.
During styling, if the hair is too wet, it will not hold its shape and water must be removed before styling will be effective. Conversely, when the hair is too dry, the hydrogen bonds will have already been formed and poor styling will result since the keratin chains cannot be repositioned and set. It has previously been determined that optimum styling results may be achieved when the moisture of hair is in the range of approximately 30-40% by weight. It is thus desirable to be able to tell when to begin styling (i.e., when moisture in the hair is in a range of 30-40%) to obtain the optimum styling results.
Likewise, it is also important to know when to stop styling hair which has been wetted to break the hydrogen bonds. If the hair is too dry, it will not be flexible and potential damage of the hair may result when styling is continued. It has been determined that the process of drying hair exhibits two stages which are relevant to styling. In a primary drying stage, water is evaporated from the outside of the hair fibers and no styling benefit is achieved. In a secondary drying stage, water from inside the hair fibers is diffused to the environment. It is during this transition to the secondary drying stage when optimum styling of hair may be achieved. A moisture level of about 30% is a balance between providing enough water to disrupt the hydrogen bonds to allow the hair to shape and not enough water that must be removed for the hydrogen bonds to be reformed.
Moisture sensing devices have been developed in the past to determine the moisture level in hair, and have relied on various techniques including resistance and capacitance measurements to obtain the desired indication. However, these methods only work well for a known cross sectional quantity and density of the hair being measured. As the hair density or compactness is varied, these measurement techniques fail. Additionally, these techniques rely primarily on the moisture content outside of the hair fiber for the measurement, and do not have the ability to accurately measure moisture content within hair fibers as well.
Thus, there is a need for a sensing device which can accurately and reliably determine the moisture content of a substrate, such as hair, including moisture both inside and outside of the hair fiber.
SUMMARY OF THE INVENTIONThe present invention overcomes the foregoing and other shortcomings and drawbacks of moisture sensors and methods of determining moisture content heretofore known. While the invention will be described in connection with certain embodiments, it will be understood that the invention is not limited to these embodiments. On the contrary, the invention includes all alternatives, modifications and equivalents as may be included within the spirit and scope of the present invention.
In accordance with the principles of the present invention a directional coupler sensor is provided for measuring the moisture content of a substrate, such as hair. As the moisture content of a substrate increases, so does its effective relative electrical impedance. The sensor of the present invention is designed to measure the relative impedance of a substrate, and from that measurement, the moisture content of the substrate can be determined.
The sensor of the present invention incorporates a high frequency directional coupler having a pair of generally parallel strips that define a coupling gap therebetween. A high frequency signal generator is electrically coupled to one of the strips and generates an electromagnetic field across the coupling gap to couple power to the other strip with the substrate placed across, i.e., generally normal to the longitudinal axis of, the coupling gap. The signal generator is preferably operable to generate signals in the VHF to UHF frequency ranges, although other frequency ranges are possible as well. The VHF frequency range is between about 30 MHz and 300 MHz, and the UHF frequency range is between about 300 MHz and about 3 GHz. The signal generator generates a coupled power signal in the coupled strip that has an amplitude related to the impedance, and therefore the moisture content of the substrate placed across the coupling gap.
In accordance with another aspect of the present invention, a pressure sensor is provided to ensure a proper packing pressure of the substrate placed across the coupling gap. The pressure sensor incorporates a film transducer in one embodiment that generates an output voltage signal that varies with the packing pressure applied to the substrate placed across the coupling gap. The measurement of the moisture content of the substrate is triggered upon the crossing of a pre-set pressure threshold. This ensures that the desired compactness of the substrate placed across the coupling gap is achieved to obtain accurate, reliable and consistent results. Alternatively, the packing consistency can be achieved by a mechanical system as well. The features and objectives of the present invention will become more readily apparent from the following Detailed Description taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGSThe accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with a general description of the invention given above, and the detailed description given below, serve to explain the invention.
Referring now to the Figures, and to
For example, in the measurement of the moisture content of a substrate, the sensor 10 of the present invention operates under the principle that as the moisture content of a substrate increases, so does its effective relative electrical impedance. As will be described in greater detail below, the sensor 10 is designed to measure the relative impedance of a substrate, and from that measurement, the moisture content of the substrate can be determined. The moisture content value may be presented on a visual display, indicated through a user-perceptible audible tone and/or used as a control signal to control a function of a device.
As shown in FIGS. 1, 2A-2E, 3 and 3A, the sensor 10 incorporates a high frequency directional coupler 12 having a pair of generally parallel strips 14a and 14b that define a coupling gap 16 therebetween. In one embodiment of the present invention, the parallel strips 14a, 14b are supported on an FR4 printed circuit board 18 (
A high frequency signal generator 22 is electrically coupled to strip 14a and is operable to generate an electromagnetic field across the coupling gap 16 that couples power to strip 14b with the substrate placed across, i.e., generally normal to the longitudinal axis of, the coupling gap 16 in a packed manner as will be described in detail below. The signal generator 22 generates a coupled power signal in the coupled strip 14b that has an amplitude related to the impedance, and therefore the moisture content, of the substrate placed across the coupling gap 16. The signal generator 22 is phase locked to a crystal reference 24 (
In accordance with one aspect of the present invention, the sensor 10 utilizes the reverse power coupling variation of the high frequency directional coupler 12 to measure the change in the impedance of the material placed across the coupling gap 16. As the substrate is packed across the coupling gap 16, the directional coupler 12 becomes mismatched, and this mismatch causes a monotonic increase in the reverse power coupling of the directional coupler 12 as the impedance across the gap 16 is increased as the result of increased moisture content of the material. The amplitude of the reversed power in the reflected power leg 28 (
Further referring to
Referring now to
As shown in
In accordance with another aspect of the present invention, as shown in
With reference to
Referring now to
The sensor 10 of the present invention provides a consumer friendly self-assessment tool that permits a consumer to periodically measure the general health of the consumer's hair. Based on these measurements, the consumer is able to take corrective actions as necessary which tend to improve the health of the consumer's hair. These actions may include changing hair care products, changing hair styling techniques, or both, so that the general health of the consumer's hair can be consistently monitored and improved. The sensor 10 also provides a useful monitoring tool to hair stylists and hair technicians as well.
In accordance with another aspect of the present invention, as shown in
The directional coupler sensor 10 of the present invention is well suited to measure the moisture content, health or other condition of hair since it possesses sensitivity to variations in impedance in close proximity, such as about 0.1 in., to the surfaces of the strips 14a and 14b. The height of this effective measurement probing depth from the surfaces of the strips 14a, 14b is a function of the electromagnetic field that couples the strips 14a and 14b. The height of the measurement probing depth may be changed for a particular application by changing the height of the PCB 18, the dielectric constant of the PCB 18, the dimensions of the strips 14a, 14b, the coupling gap distance “s”, and/or the power supplied by the signal generator 22. By varying any or all of these parameters, the height of the coupling field can be altered to thereby change the effective measurement probing depth.
It is contemplated that sensor 10 may comprise multiple directional couplers 12 electrically coupled to at least one signal generator 22 to measure the respective moisture content of multiple substrates in accordance with the principles described in detail above. It is further contemplated that at least two of the multiple directional couplers 12 may have different effective measurement probing depths by varying one or more of the parameters described in detail above.
All documents cited in the Detailed Description of the Invention are, in relevant part, incorporated herein by reference; the citation of any document is not to be construed as an admission that it is prior art with respect to the present invention.
While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.
Claims
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9. A sensor for measuring health of hair, comprising:
- a directional coupler having a pair of generally parallel first and second strips defining a coupling gap therebetween; and
- a high frequency signal generator electrically coupled to said first strip and operable to couple power to said second strip with the hair placed across said coupling gap to thereby generate a coupled power signal in said second strip having an amplitude related to health of the hair.
10. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to moisture content of the hair.
11. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to smoothness of the hair.
12. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to shine of said hair.
13. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to absence of frigility of the hair.
14. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to absence of fissuring of the hair.
15. The sensor of claim 9 wherein the amplitude of said coupled power signal is related to absence of cuticular breakdown of the hair.
16. The sensor of claim 9 further comprising a hair clamping device supporting said directional coupler and said high frequency signal generator, said clamping device being operable to apply a packing pressure to the hair across said coupling gap.
17. The sensor of claim 16 further comprising a pressure sensor supported by said hair clamping device and operable to generate a signal related to the packing pressure applied by said hair clamping device to the hair.
18. The sensor of claim 17 wherein said hair clamping device comprises a pair of pivoted jaws each terminating at a remote end thereof in a handle, wherein said directional coupler is supported by one of said jaws and said pressure sensor is supported by said other jaw in juxtaposition to said directional coupler.
19. The sensor of claim 9 wherein said high frequency signal generator is operable to generate a forward power signal in said first strip and a reverse power signal in said second strip.
20. The sensor of claim 19 further comprising a mixer circuit electrically coupled to said first and second strips and operable to receive said forward power signal from said first strip and said reverse power signal from said second strip to thereby generate an output voltage signal having a value related to health of the hair.
21. A hair care appliance for use in grooming hair, comprising:
- an elongated body portion terminating in a handle;
- at least one hair styling member supported by said elongated body portion and operable to engage the hair to effect the grooming thereof;
- a directional coupler supported adjacent said hair styling member and having a pair of generally parallel first and second strips defining a coupling gap therebetween; and
- a high frequency signal generator electrically coupled to said first strip and operable to couple power to said second strip with the hair placed across said coupling gap to thereby generate a coupled power signal in said second strip having an amplitude related to health of the hair.
22. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to moisture content of the hair.
23. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to smoothness of the hair.
24. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to shine of said hair.
25. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to absence of frigility of the hair.
26. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to absence of fissuring of the hair.
27. The sensor of claim 21 wherein the amplitude of said coupled power signal is related to absence of cuticular breakdown of the hair.
28. The sensor of claim 21 further comprising a hair clamping device associated with said elongated body portion and supporting said directional coupler, said clamping device being operable to apply a packing pressure to the hair across said coupling gap.
29. The sensor of claim 28 further comprising a pressure sensor supported by said hair clamping device and operable to generate a signal related to the packing pressure applied by said hair clamping device to the hair.
30. The sensor of claim 29 wherein said hair clamping device comprises a fixed base member supporting said directional coupler and a movable clamp member supporting said pressure sensor in juxtaposition to said directional coupler.
31. The sensor of claim 21 wherein said high frequency signal generator is operable to generate a forward power signal in said first strip and a reverse power signal in said second strip.
32. The sensor of claim 31 further comprising a mixer circuit electrically coupled to said first and second strips and operable to receive said forward power signal from said first strip and said reverse power signal from said second strip to thereby generate an output voltage signal having a value related to health of the hair.
33. A method for measuring moisture content of a substrate, comprising:
- generating an electromagnetic field through the substrate;
- measuring the reactance of the substrate in response to the electromagnetic field; and
- determining the moisture content of the substrate from the measured reactance.
34. The method of claim 33 wherein the electromagnetic field is generated by a high frequency signal source electrically coupled to a directional coupler having a pair of generally parallel first and second strips defining a coupling gap therebetween.
35. The method of claim 34 wherein the substrate is placed across the coupling gap.
36. The method of claim 34 wherein the high frequency signal source operates in the RF frequency range.
37. The method of claim 34 wherein the high frequency signal source operates in the microwave frequency range.
Type: Application
Filed: Jan 7, 2005
Publication Date: Jun 9, 2005
Applicant:
Inventors: Faiz Sherman (West Chester, OH), Vladimir Gartstein (Cincinnati, OH), Kendal Kerr (Okeana, OH), Herman Meyer (Cincinnati, OH), Jim McCurdy (Liberty Township, OH)
Application Number: 11/031,443