Electronic cymbal assembly and components thereof
10657944 ยท 2020-05-19
Assignee
Inventors
Cpc classification
G10H2220/461
PHYSICS
G10H3/146
PHYSICS
G10H2230/321
PHYSICS
International classification
Abstract
Electronic cymbal assemblies are disclosed. Assemblies according to the disclosure can include a single frame and a cover thereon, the cover including a cutout with flat edges to prevent accidental rotation of cymbal assembly components. Assemblies according to the present disclosure can also include non-planar sensors that can be applied to the bell and edge portions of a frame, sensors and frames with respective protrusions and bumps to mate with one another, and cover undersides with non-smooth surfaces to increase sensitivity to user actuation.
Claims
1. An electronic cymbal assembly comprising: a cover, said cover including a noncircular cutout, wherein said noncircular cutout includes at least two flat edges; and a stopper abutting said cover, wherein said stopper comprises two flat edges abutting said two flat edges of said noncircular cutout.
2. The electronic cymbal assembly of claim 1, further comprising a cymbal carrier; wherein said stopper is shaped to define a stopper cutout including at least two flat edges; wherein said cymbal carrier comprises at least a portion protruding through said stopper cutout; wherein said portion of said cymbal carrier comprises two flat edges abutting said stopper cutout flat edges.
3. The electronic cymbal assembly of claim 2, further comprising a washer on said stopper, said washer shaped to define a washer cutout including at least two flat edges, said washer cutout flat edges abutting said cymbal carrier flat edges.
4. An electronic cymbal assembly, comprising: a frame shaped to define a bell; a non-planar sensor on said bell, said sensor comprising a first sensor portion on said bell and a second sensor portion on said bell, said first sensor portion distinct from said second sensor portion; wherein said sensor defines a substantially annular shape.
5. The electronic cymbal assembly of claim 4, wherein said first sensor portion comprises a first sensor portion first edge overlapping a second sensor portion first edge.
6. The electronic cymbal assembly of claim 4, wherein said first sensor portion comprises a first sensor portion first edge abutting a second sensor portion first edge.
7. The electronic cymbal assembly of claim 4, wherein said first sensor portion comprises a first sensor portion first edge proximate, but not contacting, a second sensor portion first edge.
8. The electronic cymbal assembly of claim 7, wherein said first sensor portion comprises a first sensor portion second edge proximate, but not contacting, a second sensor portion second edge.
9. The electronic cymbal assembly of claim 4, wherein said sensor is 270 or more around and is less than 360 around.
10. The electronic cymbal assembly of claim 4, wherein said sensor is 330 or more around and is less than 360 around.
11. The electronic cymbal assembly of claim 4, further comprising a non-planar edge sensor on an edge of said frame, said edge sensor comprising a first edge sensor portion and a second edge sensor portion, said first edge sensor portion distinct from said second edge sensor portion.
12. The electronic cymbal assembly of claim 4, wherein said sensor comprises an outer edge and an inner edge, and wherein said sensor is curved as it rises from said outer edge to said inner edge.
13. The electronic cymbal assembly of claim 4, wherein said sensor comprises an outer edge and an inner edge, and wherein said sensor is flat as it rises from said outer edge to said inner edge so as to be substantially frustoconical.
14. The electronic cymbal assembly of claim 4, wherein said sensor is 180 or more around and is less than 360 around.
15. The electronic cymbal assembly of claim 4, wherein said frame comprises protrusions and said sensor is shaped to define holes mating with said protrusions.
16. The electronic cymbal assembly of claim 4, wherein said sensor comprises a third sensor portion on said bell.
17. The electronic cymbal assembly of claim 1, wherein said stopper is rigid.
18. The electronic cymbal assembly of claim 1, wherein said stopper is pliable.
19. The electronic cymbal assembly of claim 1, wherein said stopper is foam.
20. The electronic cymbal assembly of claim 1, wherein said two flat edges of said noncircular cutout are part of a regular polygon shape.
21. The electronic cymbal assembly of claim 1, wherein said two flat edges of said noncircular cutout are part of an irregular polygon shape.
22. The electronic cymbal assembly of claim 1, wherein said two flat edges of said noncircular cutout are part of a star shape.
23. The electronic cymbal assembly of claim 1, wherein said noncircular cutout further includes at least a third flat edge, and said stopper comprises a third flat edge abutting said third flat edge of said noncircular cutout.
24. The electronic cymbal assembly of claim 1, wherein said noncircular cutout and said stopper are substantially the same shape.
25. The electronic cymbal assembly of claim 1, wherein said noncircular cutout further includes at least one curved edge.
26. An electronic cymbal assembly, comprising: a frame shaped to define a bell; a non-planar sensor on said bell, said sensor defining a substantially annular shape and rising from an outer edge of said sensor to an inner edge of said sensor; wherein said sensor is 180 or more around and is less than 360 around.
27. The electronic cymbal assembly of claim 26, wherein said sensor further comprises at least a first edge and a second edge, said first edge proximate, but not contacting, said second edge.
28. The electronic cymbal assembly of claim 26, wherein said sensor is 270 or more around and is less than 360 around.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DISCLOSURE
(10) Electronic cymbal assemblies are disclosed. Assemblies according to the disclosure can include a single frame and a cover thereon, the cover including a cutout with flat edges to prevent accidental rotation of cymbal assembly components. Assemblies according to the present disclosure can also include non-planar sensors that can be applied to the bell and edge portions of a frame, sensors and frames with respective protrusions and bumps to mate with one another, and cover undersides with non-smooth surfaces to increase sensitivity to user actuation.
(11) It is understood that when an element is referred to as being on another element, it can be directly on the other element or intervening elements may also be present. Further, when one element is referred to as being connected to another element, it can be directly connected to the other element or intervening elements may also be present as would be understood by one of skill in the art. Furthermore, relative terms such as inner, outer, upper, top, above, lower, bottom, beneath, below, and similar terms, may be used herein to describe a relationship of one element to another. Terms such as higher, lower, wider, narrower, and similar terms, may be used herein to describe angular and/or relative relationships. It is understood that these terms are intended to encompass different orientations of the elements or system in addition to the orientation depicted in the figures.
(12) Although the terms first, second, etc., may be used herein to describe various elements, components, regions and/or sections, these elements, components, regions, and/or sections should not be limited by these terms. These terms are only used to distinguish one element, component, region, or section from another. Thus, unless expressly stated otherwise, a first element, component, region, or section discussed below could be termed a second element, component, region, or section without departing from the teachings of the present disclosure.
(13) Embodiments of the disclosure are described herein with reference to view illustrations that are schematic illustrations. As such, the actual thickness of elements can be different, and variations from the shapes of the illustrations as a result, for example, of manufacturing techniques and/or tolerances are expected. Thus, the elements illustrated in the figures are schematic in nature and their shapes are not intended to illustrate the precise shape of a region and are not intended to limit the scope of the disclosure.
(14) Embodiments of cymbal assemblies according to the present disclosure can include a cover designed for rotation inhibition so as to raise the chances that a user strikes a portion of the assembly sensitive to actuation. In such assemblies, use of the combination of a second frame and rotation stop member, such as the second frame 4 and rotation stop member 9 from
(15) As shown in
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(18) As opposed to a planar sensor sheet such as the planar sensor sheets 8, 58 shown in
(19) Due to the geometry of a traditional cymbal bell, it can be very difficult to produce a single continuous and integral sensor that will adequately cover the bell portion of the frame so as to adequately receive signals from a user striking the cover's bell. As such, the sensor 520 can in certain embodiments include two separate/distinct portions 520a, 520b which can each include a first edge and a second edge. The sensor portions 520a, 520b can have edges that overlap, abut, or are proximate (but not in contact with) one another. Every combination of overlapping (e.g., the edges of both sensor portions 520a, 520b overlap), abutting (e.g., the edges of both sensor portions 520a, 520b abut one another), and proximate (e.g., the edges of both sensor portions 520a, 520b are proximate, but not in contact with, one another) are possible. The sensor portions 520a, 520b can each approximately cover 180, or can each be over 180 and/or overlap. In another embodiment both of the sensor portions 520a, 520b are less than 180. In some embodiments the sensor portions 520a, 520b are approximately equal annular lengths; in other embodiments, one portion may be larger than the other, such as one portion being 180 or more and the other portion being under 180. The sensor portions 520a, 520b can collectively be over 180; be 270 or over; be 300 or over; be 330 or over; be 350 or over; and/or be 360. It is understood that embodiments with more than two separate/distinct portions are possible, and in certain embodiments those portions may combine in the same or similar manner as the portions 520a, 520b.
(20) The frame 510, such as the bell portion 512, can include a cutout and/or shaped portion 514 for accommodating the sensor 520. Parts of the system, such as the cutout 514 and sensor 520, can be designed such that the top of the sensor 520 is at approximately the same height and/or along the same curve as the remainder of the bell portion 512. The cutout 514 and the sensor 520 can have approximately the same depth so as to produce a substantially flush surface; the cutout 514 can have a larger depth than the sensor 520 such that the sensor 520 does not protrude above the cutout 514; or the cutout 514 can have a smaller depth than the sensor 520.
(21) Sensors such as the sensor 520 according to the present disclosure are not limited to the bell area. Many prior art assemblies include planar sensor sheets around the edge of a frame underneath a cover.
(22) Embodiments of the present disclosure can also include portions/components/devices to aid in the application of sensors. While planar sheet sensors such as those previously described and known in the art can be applied and/or placed relatively simply, application of non-planar sensors such as those previously described can be more challenging. As such, knobs or protrusions can be included in the underlying portion and the sensor can include holes; the sensor may include knobs and the underlying portion include holes; or, a combination of the two. Many different embodiments are possible.
(23) Certain prior electronic instruments, for various reasons, can require more force upon actuation to produce sound than would otherwise be necessary. Embodiments of the present disclosure recognize that reducing the contact area between the striking surface (such as a previously described cover) and/or the striking surface's underside, and the sensor (such as the previously described sensors), can increase sensitivity and, thus, be more desirable for a musician. Reducing the contact area increases the amount of pressure on the sensor at any point due to the force of the strike being spread among a smaller area. Sensors according to the present disclosure can be primarily designed to detect an actuation based on pressure placed on the sensor. As such, reduction of contact area can result in the sensor sensing a higher level of a measurable characteristic than if the sensor and cover thereon included matching surfaces (e.g., were flat/smooth upon one another), thus making the system more sensitive to actuation. However, simply making the sensor smaller would result in less coverage such that certain actuations may not be detected at all.
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(25) While
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(27) Although the present disclosure has been described in detail with reference to certain preferred configurations thereof, other versions are possible. Compatible elements from different embodiments can be combined with one another. For instance, one or more of covers with noncircular cutouts, nonplanar sensors, non-smooth surfaces for increased sensitivity, and protrusion/hole pairings for sensor placement can be combined in single embodiments. Therefore, the spirit and scope of the disclosure should not be limited to the versions described above.