Claims
- 1. A transducer system for a stringed musical instrument adapted to be positioned under the instrument saddle for coupling vibratory action from the instrument strings via the saddle to said transducer system, said transducer system comprising;
- a first electrically conductive member,
- a piezoelectric transducer comprising a polyvinylidene fluoride co-polymer, the transducer having one and another side, said first electrically conductive member positioned at the one side of said transducer and receiving the one side of the transducer in electrically coupling contact therewith,
- a second electrically conductive member positioned at the other side of said transducer, said electrically conductive members and transducer positioned to form an elongated unitary structure that includes said piezoelectric transducer disposed between the first electrically conductive member and the second electrically conductive member,
- conductive shield means disposed about said unitary structure,
- means providing electrical contact between the shield means and one of said first and second electrically conductive members, and electrical lead means connected to said first and second electrically conductive members.
- 2. The transducer system of claim 1 wherein the polyvinylidene fluoride co-polymer has a degree of crystallinity greater than about 70 percent.
- 3. The transducer system of claim 2 wherein the piezoelectric transducer comprises a plurality of transducers, each adapted to be aligned with an instrument string and spacedly disposed so as to be in alignment with respective strings.
- 4. The transducer system of claim 3 further comprising conductive adhesive means for securing either the one side or the other side of the piezoelectric transducer to the first electrically conductive member or the second electrically conductive member, respectively, said transducer being bonded so as to stress the crystal and thus increase voltage therefrom, at least a major portion of said transducer being bonded to provide the crystal stressing.
- 5. The transducer system of claims 3 or 4 wherein said second electrically conductive member includes a conductive strip positioned at the other side of said transducer and a resilient and electrically conductive layer disposed between said piezoelectric transducer and conductive strip.
- 6. The transducer system of claim 1 wherein said first electrically conductive member is of elongated and substantially flat form having a width comparable to the transducer cross dimension and said electrically conductive member is likewise elongated and substantially flat providing continuous coupling across all transducers.
- 7. A transducer system of claim 6 wherein said means providing electrical contact between the shield means and one of said first and second electrically conductive members comprises a conductive adhesive.
- 8. A transducer system of claim 7 wherein said means providing electrical contact provides contact between the shield means and said first electrically conductive member.
- 9. A transducer system of claim 8, wherein said first electrically conductive member comprises a ground plane.
- 10. A transducer system of claim 9 wherein said ground plane is of elongated and substantially flat form having a width comparable to the transducer diameter and said electrically conductive member is likewise elongated and substantially flat providing continuous coupling across all transducers.
- 11. A transducer system of claim 10 wherein said means providing electrical contact provides contact between the shield means and said second electrically conductive member.
- 12. A transducer system of claim 11 wherein said second electrically conductive member includes an electrically conductive strip positioned at the other side of said transducers and a resilient and electrically conductive layer disposed between said piezoelectric transducers and conductive strip.
- 13. A transducer system of claim 12 wherein said conductive shield means comprises a heat shrink tubing having an associated conductive layer disposed thereover.
- 14. A transducer system of claim 13 wherein said heat shrink tubing has means defining a hole therein with conductive means at the hole providing said electrical contact between the shield and one of said first and second electrically conductive members.
- 15. A transducer system for a stringed musical instrument adapted to be positioned under the instrument saddle for coupling vibratory action from the instrument strings via the saddle to said transducer system, said transducer system comprising:
- a first electrically conductive member,
- a piezoelectric transducer comprising a polyvinylidene fluoride co-polymer of elongated and substantially flat form, said transducer having one and another side, the transducer adapted to be aligned with a plurality of instrument strings, said first electrically conductive member positioned at the one side of said transducer and receiving the one side of the transducer in electrical coupling contact therewith,
- a second electrically conductive member positioned at the other side of said transducer, said first and second members and transducer positioned to form an elongated unitary structure that includes the elongated piezoelectric transducer disposed between the first electrically conductive member and the second electrically conductive member,
- conductive shield means disposed about said unitary structure,
- means providing electrical contact between the shield means and one of said first and second electrically conductive members, an electrical lead means connected to said first and second electrically conductive members.
- 16. The transducer system of claim 15 wherein the polyvinylidene fluoride co-polymer has a degree of crystallinity greater than about 70 percent.
- 17. The transducer system of claim 16 wherein said first electrically conductive member is of elongated and substantially flat form having a width comparable to the transducer cross dimension and said electrically conductive member is likewise elongated and substantially flat providing continuous coupling across the transducer.
- 18. The transducer system of claim 17 wherein the elongated and substantially flat transducer includes a laminate comprising a plurality of elongated and substantially flat transducers, the laminate aligned with said first and second electrically conductive members.
- 19. The transducer system of claim 18 wherein said second electrically conductive member includes a conductive strip positioned at the other side of said transducer and a resilient and electrically conductive layer disposed between said piezoelectric transducer and conductive strip.
- 20. The transducer system of claim 19 further comprising conductive adhesive means for securing either the one side of the other side of the piezoelectric transducer to the first electrically conductive member of the second electrically conductive member, respectively, said transducer being bonded so as to stress the crystal and thus increase voltage therefrom, at least a major portion of said transducer being bonded to provide the crystal stressing.
- 21. A stringed instrument transducer that is adapted to be positioned adjacent the instrument strings to receive acoustic vibratory signals therefrom and comprising a first electrically conductive member, a second electrically conductive member, a plurality of piezoelectric crystals disposed between the first and second conductive members so as to provide an elongated unitary structure and with each of the plurality of crystals disposed so as to be in alignment with a respective string when installed in the musical instrument, said piezoelectric crystals comprising a polyvinylidene fluoride co-polymer having a degree of crystallinity greater than about 70 percent, a conductive shield means disposed about said unitary structure, said conductive shield means comprising a base dielectric layer adapted to be wrapped about the unitary structure and having vapor deposited thereon a metallic layer, and electrical leads connecting to the first and second electrically conductive members, respectively.
- 22. The stringed instrument transducer of claim 21 wherein said piezoelectric crystal has a thickness of between about 50 microns and about 1000 microns.
- 23. The transducer of claim 22 wherein the piezoelectric crystal has a thickness of about 500 microns.
- 24. The transducer of claim 21 wherein said base dielectric layer is a plastic layer and the metal layer is selected from at least one of copper and aluminum.
- 25. A stringed instrument transducer that is adapted to be positioned adjacent the instrument strings to receive acoustic vibratory signals therefrom and comprising a first electrically conductive member, a second electrically conductive member, a single piezoelectric crystal disposed between the first and second conductive members so as to provide an elongated unitary structure with the crystal disposed so as to be in alignment with a plurality of strings when installed in the musical instrument, said piezoelectric crystal comprising a elongated polyvinylidene fluoride co-polymer having a degree of crystallinity greater than about 70 percent, a conductive shield means disposed about said unitary structure, said conductive shield means comprising a base dielectric layer adapted to be wrapped about the unitary structure and having vapor deposited thereon a metallic layer, and electrical leads connecting to the first and second electrically conductive members, respectively.
- 26. The stringed musical instrument transducer of claim 25 wherein said piezoelectric crystal has a thickness of between about 50 microns and about 1000 microns.
- 27. The transducer of claim 26 wherein said piezoelectric crystal has a thickness of about 500 microns.
- 28. The transducer of claim 27 wherein said base dielectric layer is a plastic layer and the metal layer is selected from at least one of copper and aluminum.
- 29. A stringed instrument transducer that is adapted to be positioned adjacent the instrument strings to receive acoustic vibratory signals therefrom and comprising a first electrically conductive member, a second electrically conductive member, a laminate formed of a plurality of piezoelectric crystals disposed between the first and second conductive members so as to provide an elongated and unitary structure, the laminate of piezoelectric crystals disposed so as to be in alignment with a plurality of the instrument strings when installed in the musical instrument, said laminate of piezoelectric crystals comprising a polyvinylidene fluoride co-polymer having a degree of crystallinity greater than about 70 percent, a conductive shield means disposed about said unitary structure, said conductive shield means comprising a base dielectric layer adapted to be wrapped about the unitary structure and having vapor deposited thereon a metallic layer, and electrical leads connecting to the first and second electrically conductive members, respectively.
- 30. The stringed instrument transducer of claim 29 wherein the laminated piezoelectric crystals have a total thickness of about 50 to about 1000 microns.
- 31. The stringed instrument transducer of claim 30 wherein the laminated piezoelectric crystals have a total thickness of about 500 microns.
- 32. The transducer of claim 31 wherein said base dielectric layer is a plastic layer and the metal layer is selected from at least one of copper and aluminum.
- 33. The transducer of claim 29, wherein each of said plurality of piezoelectric crystals is about equal in thickness.
- 34. A transducer system for a stringed musical instrument constructed and arranged to be positioned under a saddle of said instrument for coupling vibratory action from instrument strings via the saddle to said transducer system, said transducer system comprising;
- an elongated and substantially flat first electrically conductive member,
- a piezoelectric transducer comprising a polyvinylidene fluoride co-polymer of defined width, the transducer having one and another side, said first electrically conductive member positioned on said one side of said transducer and having a width comparable to the width of the piezoelectric transducer, said first electrically conductive member receiving the one side of the transducer in electrically coupling contact therewith,
- a second electrically conductive member positioned at said other side of said transducer, said second electrically conductive member including an electrically conductive strip positioned at the other side of said transducer and a resilient and electrically conductive carbon fiber layer disposed between said piezoelectric transducer and said conductive strip,
- conductive adhesive means for securing either the one side or the other side of the piezoelectric transducer to the first electrically conductive member or the second electrically conductive member, respectively, the transducer being bonded so as to stress the polyvinylidene fluoride copolymer and thus increase voltage therefrom, at least a major portion of said transducer being bonded to provide the stressing,
- conductive shield means disposed about said unitary structure comprising a base dielectric layer adapted to be wrapped about the unitary structure and having vapor deposited thereon a metallic layer,
- means providing electrical contact between the shield means and one of said first and second electrically conductive members, and electrical lead means connected to said first and second electrically conductive members.
- 35. The transducer system of claim 34, wherein the piezoelectric transducer comprises a plurality of transducers, each adapted to be aligned with an instrument string and spacedly disposed so as to be in alignment with respective strings.
- 36. The transducer system of claim 34, wherein the piezoelectric transducer is an elongated and substantially flat form, the transducer adapted to be in alignment with a plurality of instrument strings.
- 37. The transducer system of claim 36, wherein the elongated and substantially flat transducer is a laminate comprising a plurality of elongated and substantially flat transducers, the laminate aligned with said first and second electrically conductive members.
RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 07/552,984, filed Jul. 16, 1990, U.S. Pat. No. 5,029,375 which is a continuation in part of Ser. No. 07/251,570, filed Sept. 30, 1988, issued as U.S. Pat. No. 4,944,209 (Jul. 31, 1990), which is a continuation-in-part of Ser. No. 06/876,238, filed Jun. 19, 1986, issued as U.S. Pat. No. 4,774,867 (Oct. 4, 1988), which in turn is a continuation-in-part of Ser. No. 06/856,189, filed Apr. 28, 1986, abandoned. The contents of all the above-identified applications are hereby expressly incorporated herein by reference.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4278000 |
Saito et al. |
Jul 1981 |
|
Continuation in Parts (4)
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Number |
Date |
Country |
Parent |
552984 |
Jul 1990 |
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Parent |
251570 |
Sep 1988 |
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Parent |
876238 |
Jun 1986 |
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Parent |
856189 |
Apr 1986 |
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