Embodiments of the present invention provide robust capacitive grip sensors that may be used in a variety of applications, including single-handed and double-handed grips, such as but not limited to barbells. Apparatus as disclosed herein and efficiently measure the presence of a human grip without requiring deformation of a gripped surface area.
1. A grip sensor useable on an elongated substrate having first and second ends, the grip sensor comprising:
an inner electrically non-conductive layer disposed on the substrate;
a plurality of first strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the first end of the substrate;
a plurality of second strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the second end of the substrate;
an outer electrically non-conductive layer disposed on the inner electrically non-conductive layer with the plurality of first strands of electrically conductive material and the plurality of second strands of electrically conductive material being located between the inner electrically non-conductive layer and the outer electrically non-conductive layer, wherein the outer electrically non-conductive layer is discontinuous with a plurality of open cells being defined therein;
a plurality of first processors, each associated with one of the first plurality of strands of electrically conductive material, the plurality of first processors each configured to detect capacitance in the respective first strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output; and,
a plurality of second processors, each associated with one of the second strands of electrically conductive material, the plurality of second processors each configured to detect capacitance in the respective second strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output.
2. A grip sensor as in claim 1 , wherein the inner electrically non-conductive layer is formed of ceramic material.
3. A grip sensor as in claim 1 , wherein the plurality of first processors is included in a processor hub.
4. A grip sensor as in claim 3 , wherein the processor hub includes a battery.
5. A grip sensor as in claim 3 , wherein the processor hub is electrically coupled to a source of power.
6. A grip sensor as in claim 2 , wherein the outer electrically non-conductive layer is formed of ceramic material.
7. A grip sensor as in claim 1 , wherein the outer electrically non-conductive layer is continuous between the plurality of first strands of electronically conductive material and the plurality of second strands of electronically conductive material.
8. A grip sensor as in claim 1 , wherein the substrate is a barbell bar.
9. A grip sensor as in claim 1 , wherein the outer electrically non-conductive layer includes a first portion disposed on the plurality of first strands of electrically conductive material, and a second portion, spaced from the first portion, disposed on the plurality of second strands of electrically conductive material.
10. A grip sensor as in claim 1 , wherein the plurality of first strands of electrically conductive material are spaced circumferentially about the substrate.
11. A grip sensor as in claim 10 , wherein the plurality of first strands of electrically conductive material are spaced equally about the substrate.
12. A grip sensor as in claim 10 , wherein the plurality of first strands of electrically conductive material are generally parallel.
13. A grip sensor as in claim 1 , wherein the binary output of the plurality of first processors is configured to represent the presence or absence of contact with a hand of a user.
14. A grip sensor as in claim 1 , wherein the thickness of the inner electrically non-conductive layer is in the range of 0.5-3.0 mm.
15. A grip sensor as in claim 1 , wherein the thickness of the outer electrically non-conductive layer is in the range of 0.5-3.0 mm.
16. A barbell bar comprising:
an elongated substrate having first and second ends;
an inner electrically non-conductive layer disposed on the substrate;
a plurality of first strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the first end of the substrate;
a plurality of second strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the second end of the substrate;
an outer electrically non-conductive layer disposed on the inner electrically non-conductive layer with the plurality of first strands of electrically conductive material and the plurality of second strands of electrically conductive material being located between the inner electrically non-conductive layer and the outer electrically non-conductive layer, wherein the outer electrically non-conductive layer is discontinuous with a plurality of open cells being defined therein;
a plurality of first processors, each associated with one of the first strands of electrically conductive material, the plurality of first processors each configured to detect capacitance in the respective first strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output; and,
a plurality of second processors, each associated with one of the second strands of electrically conductive material, the plurality of second processors each configured to detect capacitance in the respective second strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output.
17. A barbell bar as in claim 16 , wherein the plurality of first processors is included in a processor hub.
18. A barbell bar as in claim 17 , wherein the processor hub includes a battery.
19. A barbell bar as in claim 17 , wherein the processor hub is electrically coupled to a source of power.
20. A barbell bar as in claim 16 , wherein the inner electrically non-conductive layer is formed of ceramic material.
21. A barbell bar as in claim 20 , wherein the outer electrically non-conductive layer is formed of ceramic material.
22. A barbell bar as in claim 16 , wherein the outer electrically non-conductive layer is continuous between the plurality of first strands of electronically conductive material and the plurality of second strands of electronically conductive material.
23. A barbell bar as in claim 16 , wherein the outer electrically non-conductive layer includes a first portion disposed on the plurality of first strands of electrically conductive material, and a second portion, spaced from the first portion, disposed on the plurality of second strands of electrically conductive material.
24. A barbell bar as in claim 16 , wherein the plurality of first strands of electrically conductive material are spaced circumferentially about the substrate.
25. A barbell bar as in claim 24 , wherein the plurality of first strands of electrically conductive material are generally parallel.
26. A barbell bar as in claim 16 , wherein the binary output of the plurality of first processors is configured to represent the presence or absence of contact with a hand of a user. A grip sensor as in claim 11 , wherein the open cells are circular or polygonal.
27. A grip sensor as in claim 1 , wherein the open cells are circular or polygonal.
28. A grip sensor as in claim 1 , wherein the open cells are evenly spaced.
29. A barbell bar as in claim 16 , wherein the open cells are circular or polygonal.
30. A barbell bar as in claim 16 , wherein the open cells are evenly spaced.
31. A grip sensor useable on an elongated substrate having first and second ends, the grip sensor comprising:
an inner electrically non-conductive layer disposed on the substrate;
a plurality of first strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the first end of the substrate;
a plurality of second strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the second end of the substrate;
an outer electrically non-conductive layer disposed on the inner electrically non-conductive layer with the plurality of first strands of electrically conductive material and the plurality of second strands of electrically conductive material being located between the inner electrically non-conductive layer and the outer electrically non-conductive layer;
a plurality of first processors, each associated with one of the first strands of electrically conductive material, the plurality of first processors each configured to detect capacitance in the respective first strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output; and,
a plurality of second processors, each associated with one of the second strands of electrically conductive material, the plurality of second processors each configured to detect capacitance in the respective second strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output;
wherein the inner electrically non-conductive layer is discontinuous having a first portion adjacent to the first end of the substrate, upon which the plurality of first strands of electrically conductive material is disposed, and a second portion, spaced from the first portion, adjacent to the second end of the substrate, upon which the plurality of second strands of electrically conductive material is disposed.
32. A grip sensor as in claim 31 , wherein the plurality of first processors is included in a processor hub.
33. A grip sensor as in claim 32 , wherein the processor hub includes a battery.
34. A grip sensor as in claim 32 , wherein the processor hub is electrically coupled to a source of power.
35. A grip sensor as in claim 31 , wherein the inner electrically non-conductive layer is formed of ceramic material.
36. A grip sensor as in claim 35 , wherein the outer electrically non-conductive layer is formed of ceramic material.
37. A grip sensor as in claim 31 , wherein the outer electrically non-conductive layer is continuous between the plurality of first strands of electronically conductive material and the plurality of second strands of electronically conductive material.
38. A grip sensor as in claim 31 , wherein the outer electrically non-conductive layer is discontinuous with a plurality of open cells being defined therein.
39. A grip sensor as in claim 38 , wherein the open cells are circular or polygonal.
40. A grip sensor as in claim 38 , wherein the open cells are evenly spaced.
41. A grip sensor as in claim 31 , wherein the substrate is a barbell bar.
42. A grip sensor as in claim 31 , wherein the outer electrically non-conductive layer includes a first portion disposed on the plurality of first strands of electrically conductive material, and a second portion, spaced from the first portion, disposed on the plurality of second strands of electrically conductive material.
43. A grip sensor as in claim 31 , wherein the plurality of first strands of electrically conductive material are spaced circumferentially about the substrate.
44. A grip sensor as in claim 43 , wherein the plurality of first strands of electrically conductive material are spaced equally about the substrate.
45. A grip sensor as in claim 43 , wherein the plurality of first strands of electrically conductive material are generally parallel.
46. A grip sensor as in claim 31 , wherein the binary output of the plurality of first processors is configured to represent the presence or absence of contact with a hand of a user.
47. A grip sensor as in claim 31 , wherein the thickness of the inner electrically non-conductive layer is in the range of 0.5-3.0 mm.
48. A grip sensor as in claim 31 , wherein the thickness of the outer electrically non-conductive layer is in the range of 0.5-3.0 mm.
49. A barbell bar comprising:
an elongated substrate having first and second ends;
an inner electrically non-conductive layer disposed on the substrate;
a plurality of first strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the first end of the substrate;
a plurality of second strands of electrically conductive material disposed, so as to be spaced apart, on the inner electrically non-conductive layer adjacent to the second end of the substrate;
an outer electrically non-conductive layer disposed on the inner electrically non-conductive layer with the plurality of first strands of electrically conductive material and the plurality of second strands of electrically conductive material being located between the inner electrically non-conductive layer and the outer electrically non-conductive layer;
a plurality of first processors, each associated with one of the first strands of electrically conductive material, the plurality of first processors each configured to detect capacitance in the respective first strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output; and,
a plurality of second processors, each associated with one of the second strands of electrically conductive material, the plurality of second processors each configured to detect capacitance in the respective second strand of electrically conductive material and compare the detected capacitance against a predetermined threshold to determine an above or below state of capacitance, representable in binary output;
wherein the inner electrically non-conductive layer is discontinuous having a first portion adjacent to the first end of the substrate, upon which the plurality of first strands of electrically conductive material is disposed, and a second portion, spaced from the first portion, adjacent to the second end of the substrate, upon which the plurality of second strands of electrically conductive material is disposed.
50. A barbell bar as in claim 49 , wherein the plurality of first processors is included in a processor hub.
51. A barbell bar as in claim 50 , wherein the processor hub includes a battery.
52. A barbell bar as in claim 50 , wherein the processor hub is electrically coupled to a source of power.
53. A barbell bar as in claim 49 , wherein the inner electrically non-conductive layer is formed of ceramic material.
54. A barbell bar as in claim 53 , wherein the outer electrically non-conductive layer is formed of ceramic material.
55. A barbell bar as in claim 49 , wherein the outer electrically non-conductive layer is continuous between the plurality of first strands of electronically conductive material and the plurality of second strands of electronically conductive material.
56. A barbell bar as in claim 49 , wherein the outer electrically non-conductive layer is discontinuous with a plurality of open cells being defined therein.
57. A barbell bar as in claim 56 , wherein the open cells are circular or polygonal.
58. A barbell bar as in claim 56 , wherein the open cells are evenly spaced.
59. A barbell bar as in claim 49 , wherein the outer electrically non-conductive layer includes a first portion disposed on the plurality of first strands of electrically conductive material, and a second portion, spaced from the first portion, disposed on the plurality of second strands of electrically conductive material.
60. A barbell bar as in claim 49 , wherein the plurality of first strands of electrically conductive material are spaced circumferentially about the substrate.
61. A barbell bar as in claim 60 , wherein the plurality of first strands of electrically conductive material are spaced equally about the substrate.
62. A barbell bar as in claim 60 , wherein the plurality of first strands of electrically conductive material are generally parallel.
63. A barbell bar as in claim 49 , wherein the binary output of the plurality of first processors is configured to represent the presence or absence of contact with a hand of a user.
64. A barbell bar as in claim 49 , wherein the thickness of the inner electrically non-conductive layer is in the range of 0.5-3.0 mm.
65. A barbell bar as in claim 49 , wherein the thickness of the outer electrically non-conductive layer is in the range of 0.5-3.0 mm.
66. A barbell bar as in claim 24 , wherein the plurality of first strands of electrically conductive material are spaced equally about the substrate.