ACOUSTICAL OPTICAL PICKUP FOR USE IN STRINGED MUSICAL INSTRUMENTS
20210065667 ยท 2021-03-04
Inventors
- KYLE HUGHES (Redondo Beach, CA, US)
- David M. Kramer (Redondo Beach, CA, US)
- David E. Ball (Redondo Beach, CA, US)
Cpc classification
G10H2220/475
PHYSICS
G10H2210/031
PHYSICS
International classification
Abstract
An optical head assembly for sue with a stringed musical instrument, the vibrations of the strings causing a light beam to be modulated in accordance with the frequency of the vibrating strings. The modulated light output, produced by the relative motion between two adjacent grates, is coupled to a device with converts the modulated light beam to a corresponding modulated electrical signal which, in turn, is coupled to an amplifier associated with the instrument.
Claims
1. A pickup device for a stringed musical instrument having a bridge member with strings positioned thereon comprising: a first transmissive grate; a source for generating a light beam, said light beam being incident on said first light transmissive grate; said grate being positioned relative to said source; a device spaced from said source and positioned to receive said light beam after passing through said first light transmissive grate, an electrical signal being generated in response thereto; and said source and said device being mounted on opposite sides of said bridge member, said source and said device moving relative to each other when said string are plucked by a user, the light beam transmitted through said gate being modulated as a result of said relative movement; said modulated light beam being converted to a corresponding modulated electrical signal, the amplitude and frequency of said modulated electrical signal varying in accordance with the characteristics of the vibrating instrument strings,
2. The device of claim 1 wherein said modulated electrical signal is coupled to an amplifying device associated with said instrument.
3. The device of claim 1 wherein said source comprises a LED.
4. The device of claim 1 wherein said first light transmissive grate is operatively coupled to said source.
5. The device of claim 4 wherein a second light transmissive grate is operatively coupled to said device.
6. The device of claim 5 wherein said first and second light transmissive grates each comprise alternate opaque and transparent lines formed on the surface of a plate member.
7. The device of claim 6 wherein said plate member comprises glass.
Description
DESCRIPTION OF THE DRAWINGS
[0021] For a better understanding of the present invention as well as other objects and further features thereof, reference is made to the following description which is to be read in conjunction with the accompanying drawing therein:
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF THE INVENTION
[0026] Referring to
[0027] A physical representation of optical processor 10 and components 12,14 and 16 are shown in
[0028] The audio processor 20 contains the pickup power supply, analog audio processing and a user operation controlling external audio interface.
[0029] When property mounted and calibrated, the optical pickup 10 faithfully captures the acoustic energy present at its physical location and accurately produces a corresponding analog audio signal. After power-on, the LED source 12 transmits a controlled, fixed intensity of semi-collimated light through the fixed waveguide m the transmitter housing 50 where the light exits through the primary optical grating 30. Coaxially aligned, the light beam enters first the secondary optical grating 32, the receiver housing 52 through the waveguide within housing 52 and strikes the photo-detector 16.
[0030] The relative motion between the pick-up transmitter 50 and receiver 52 in the transverse axis perpendicular to the grating line pairs 30,32 produces amplitude modulation of the light beam incident thereon. This is measured as changes in the intensity of die light energy as captured by the photo-detector 16. The pair of primary and secondary gratings 30, 32 capture relative motion between the two by serving as a continuously variable light shutter, alternatingly passing more or less light in synchronization with the relative motion of the pickup housing.
[0031] Performance of the pickup may be optimized for signal to noise and dynamic range by selecting the correct pitch grating with line pairs that are matched to the maximum offset displacement the pickup is to measure. It is desirable to avoid over modulation by leaving a certain amount over the maximum expected displacement, The pickup will product audible non-linear distortion products when modulation levels exceed either the zero fullyopen or 100% fully closed threshold of the gratings. Due to the optical properties, small Size and very low mass of the pickup assembly, the system has no resonant frequency within the audible range. This produces exceptional transient response for the musical instrument. Therefore, the pickup operation approaches an ideal transducer, capturing Subtle and fast transient motions with no coloring or introduction of inherent sound artifacts.
[0032] The intrinsic properties of the pick-up transducer have a frequency response from DC to well beyond the audible range of 20 KHz. In practice, the very low frequencies may be filtered out in the audio signal processor.
[0033] Because of the high sensitivity of the pickup, microscopic changes to the geometry of the musical instrument caused by temperature, humidity or other external factors such as string tuning, may create a relative lateral position offset between the transmitter and receiver. For this reason, each pickup transmitter or receiver preferably contains an adjustment screw to finely align the housing's variable waveguide. Note that this tuning of the pickup does not affect the pitch of the instrument as docs standard tuning but instead optimizes the alignment of the components to prevent over-modulation in either direction.
[0034] Electrically, the photo detector 16 produces a variable current signal in proportion to the level of light intensity it receives. A transimpedance amplifier stage 18 produces a voltage signal that is then processed solely in the analog domain for maximum signal purity, low noise, low distortion and high-performance operational amplifiers and high-quality components are used to assure maximum fidelity. To maintain consistency in operation over time and over the life of the LED battery, the audio processor precisely regulates the LED drive current and all signal biases.
[0035]
[0036]
[0037] While the invention has been described with reference to its preferred embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the true spirit and scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from its essential teachings.