The present disclosure relates to a method and apparatus for perceiving high acoustic frequencies (from 8 KHz to 25 KHz) in one channel or stereo signals, and more particularly, to amplify these signals using the pivot method and transform them to vibrations waves which are applied to a unique location: the surface of the maxilla or the mandible bones, through the gum tissue located over the lower side of the human face.
Generally, high frequency sound may cause health effects, such as hearing loss, headache, tinnitus, fatigue, dizziness, and nausea. In order to solve these problems, in recent years, there has been a demand for higher sound quality in the field of earphones, headphones, and other acoustic devices.
Aging is one of the most significant indicators of hearing loss. Half of all adults who are 75 years old and older have disabling hearing loss—also known as presbycusis; age-related hearing loss often results in high-frequency hearing loss, which is characterized by not being able to hear high-pitched sounds.
It is important to recognize the early signs of this type of hearing loss so that you can intervene early. Early intervention can change the trajectory of your hearing health, maximize your hearing capacity and enhance daily life. And most importantly, treating hearing loss can help reconnect you to the people you love.
There is, therefore a need for a solution that will enable the older ages (more than 30 years/old) to have a sense of clean, enjoyable sound and precise image of the sound source in the high frequency sound using bone conduction instead of applying high frequencies through the human hearing system.
All referenced patents, applications, and literature are incorporated herein by reference in their entirety. Furthermore, where a definition or use of a term in a reference, which is incorporated by reference herein, is inconsistent or contrary to the definition of that term provided herein, the definition of that term provided herein applies and the definition of that term in the reference does not apply. The disclosed embodiments may seek to satisfy one or more of the above-mentioned desires. Although the present embodiments may obviate one or more of the above-mentioned desires, it should be understood that some aspects of the embodiments might not necessarily obviate them.
In a general implementation, a system for perceiving high audio frequencies in stereo may comprise a bone vibration transducer comprising an exciter configured to receive high frequency signal components and reproduce the high frequency signal components; and the bone vibration transducer further comprising a swingable bar pivotally coupled with the exciter via a pivot holder to perform a swinging movement; wherein in the swinging movement, the swingable bar is swung to generate vibrations waves corresponding to the reproduced high frequency signal components and to convey the vibration waves to at least one bone of a user.
In another aspect combinable with the general implementation, the swingable bar is placed adjacent to the mandibular vestibule of the user's mouth.
In another aspect combinable with the general implementation, the exciter is placed outside the user's mouth.
In another aspect combinable with the general implementation, the swingable bar comprises a brass bar and a polymer bar overlappedly arranged on the brass bar.
In another aspect combinable with the general implementation, the brass bar is sandwiched in between the swingable bar and the polymer bar, wherein the swingable bar is pivotally coupled to the brass bar.
In another aspect combinable with the general implementation, in the swinging movement, the swingable bar is vertically moving with respect to the pivot holder.
In another aspect combinable with the general implementation, the system for perceiving high audio frequencies in stereo may further comprise a headphone set placed adjacent to the user's ears and configurated to receive middle-to-low frequency signal components and a second accelerometer placed adjacent to occipital bones of the user to receive the vibration waves and to convey the vibration waves to a second analyzer, wherein the second analyzer is configured to analyze the vibration waves and generate a second high frequency report.
In another aspect combinable with the general implementation, the at least one bone of the user comprises maxilla and/or mandibular bones and/or temporal bones, and/or occipital bones.
In another aspect combinable with the general implementation, the system for perceiving high audio frequencies in stereo may further comprise a first accelerometer coupled to the swingable bar and configured to measure the vibration waves and convey the vibration waves to a first analyzer, wherein the first analyzer is configured to analyze the vibration waves and generate a first high frequency report.
In another aspect combinable with the general implementation, the system for perceiving high audio frequencies in stereo may further comprise a high pass filter communicated with a headphone set and a low pass filter communicated with the exciter, wherein the high pass filter is configured to extract medium-to-low frequency signal components from input audio signals, and the low pass filter is configured to extract the high frequency signal components from the input audio signals.
Another aspect of the embodiment is directed to methods of perceiving high audio frequency in stereo, comprising:
Among the many possible implementations of the method for perceiving high audio frequency in stereo may comprise a step of:
Further, it is contemplated that the method may comprise a step of:
In the alternative, the swingable bar comprises a brass bar and a polymer bar overlappedly arranged on the brass bar.
It is still further contemplated that the brass bar is sandwiched in between the swingable bar and the polymer bar, and the swingable bar is pivotally coupled to the brass bar.
In still some embodiments, the step of generating, by the swingable bar, vibration waves corresponding to the reproduced high frequency signal components in a swinging movement may comprise a step of:
In still some embodiments, the method may further comprise steps of:
Among the many possible implementations of the method for perceiving high audio frequency in stereo, the at least one bone of the user comprises maxilla and/or mandibular bones and/or temporal bones, and/or occipital bones.
Accordingly, the present disclosure is directed to the method for perceiving high audio frequency in stereo, wherein the method may further comprise steps of:
In one embodiment, the method may further comprise steps of:
While this specification contains many specific implementation details, these should not be construed as limitations on the scope of any inventions or of what may be claimed, but rather as descriptions of features specific to particular implementations of particular inventions. Certain features that are described in this specification in the context of separate implementations can also be implemented in combination in a single implementation. Conversely, various features described in the context of a single implementation can also be implemented in multiple implementations separately or in any suitable subcombination. Moreover, although features may be described above and below as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can, in some cases, be excised from the combination, and the claimed combination may be directed to a subcombination or variation of a subcombination.
A number of implementations have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. For example, example operations, methods, or processes described herein may include more steps or fewer steps than those described. Further, the steps in such example operations, methods, or processes may be performed in different successions than that described or illustrated in the figures. Accordingly, other implementations are within the scope of the following claims.
The details of one or more implementations of the subject matter described in this disclosure are set forth in the accompanying drawings and the description below. Other features, aspects, and advantages of the subject matter will become apparent from the description, the drawings, and the claims.
It should be noted that the drawing figures may be in simplified form and might not be to precise scale. In reference to the disclosure herein, for purposes of convenience and clarity only, directional terms such as top, bottom, left, right, up, down, over, above, below, beneath, rear, front, distal, and proximal are used with respect to the accompanying drawings. Such directional terms should not be construed to limit the scope of the embodiment in any manner.
The different aspects of the various embodiments can now be better understood by turning to the following detailed description of the embodiments, which are presented as illustrated examples of the embodiments defined in the claims. It is expressly understood that the embodiments as defined by the claims may be broader than the illustrated embodiments described below.
The term “a” or “an” entity refers to one or more of that entity. As such, the terms “a” (or “an”), “one or more,” and “at least one” can be used interchangeably herein. It is also to be noted that the terms “comprising,” “including,” and “having” can be used interchangeably.
It shall be understood that the term “means,” as used herein, shall be given its broadest possible interpretation in accordance with 35 U.S.C., Section 112(f). Accordingly, a claim incorporating the term “means” shall cover all structures, materials, or acts set forth herein, and all of the equivalents thereof. Further, the structures, materials, or acts and the equivalents thereof shall include all those described in the summary of the invention, brief description of the drawings, detailed description, abstract, and claims themselves.
Unless defined otherwise, all technical and position terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the invention pertains. Although many methods and materials similar, modified, or equivalent to those described herein can be used in the practice of the present invention without undue experimentation, the preferred materials and methods are described herein. In describing and claiming the present invention, the following terminology will be used in accordance with the definitions set out below.
Referring to
Referring to
In some embodiments, the swingable bar 12 may comprise carbon graphite and/or fiber glass. In some embodiments, the pivot holder 13 comprises a brass bar 132 and a polymer bar 131 overlappedly arranged the brass bar 132, wherein the polymer bar 131 is affixed to the exciter 11 and the brass bar 132 is pivotally coupled with the swingable bar 12 via a pivot. In other words, the brass bar 132 may be sandwiched in between the swingable bar 12 and the polymer bar 131.
In some embodiments, the swingable bar 12 may comprise the pivot, wherein the pivot holder 13 may be pivotally coupled with the swingable bar 12 through the pivot. In still some embodiments, the swingable bar 12 may be divided by the pivot to form a first section “F” and a second section “S”. wherein a length of the second section “S” may be twice time longer than a length of the first section “F”. In other words, in some embodiment, the ratio between the length of the first section “F” and the length of the second section “S” is 1:2. In such a way, this ratio may increase the vibration waves applied on the user's bones.
In some embodiments, in the swinging movement, the swingable bar 12 may be vertically shaking or moving with respect to the pivot holder 13. In still some embodiments, the swingable bar 12 may be horizontally extended along the pivot holder, wherein, in the swinging movement, the swingable bar 12 may be vertically shaking or moving with respect to the pivot holder 13.
Referring to
In some embodiments, as shown in
In some embodiments, the exciter 11 may be placed on a lower side of the user's face, wherein the exciter 11 may be placed on the mentolabial sulcus of the user, and in such a manner, the exciter 11 may be biased against the vermilion lip of the user.
It should be noted that the swingable bar 12 may not be in contact with any user's tooth/teeth. In some embodiments, the vibration waves may be emitted to the maxilla or the mandibular bones.
Referring to
In some embodiments, the location “D” and the location “E” may be measured on each side (Left and Right) of the user under a first accelerometer and a second accelerometer as mentioned below. In still some embodiments, all of the above-mentioned locations, “A-E” are chosen because they are the thinnest and closest to the cranial bones surfaces (human hearing organs.
Accordingly, the vibrations waves may be conveyed to at least one bone of the user, wherein the at least one bone of the user comprises maxilla and/or mandibular bones and/or temporal bones, and/or occipital bones.
In some embodiments, the bone vibration transducer (BVT) 10 may be covered by the rubber latex polymer, which FDA approves to make baby's pacifiers, teeth grinder protectors, and sports mouth protectors. For another example, the bone vibration transducer (BVT) 10 may be covered by Nylon material.
In some embodiments, a lubricant may be used with the bone vibration transducer (BVT) to smooth the use of the bone vibration transducer (BVT) 10 in the user's mouth. For example, the lubricant may be 100% silicone grease made by Trident (#LP20), used by scuba divers to lubricate their mouthpieces.
Referring to
As shown in further detail in
Continuing to
In still some embodiments, the system 100 may further comprise a low pass filter 103 communicated with the bone vibration transducer (BVT) 10, wherein the low pass filter 103 may be configured to extract high frequency signal components from the input audio signals.
Referring to
Referring to
Referring to
In some embodiments, the pivot holder may comprise a brass bar and a polymer bar overlappedly arranged on the brass bar.
In still some embodiments, the brass bar may be sandwiched in between the swingable bar and the polymer bar, wherein the swingable bar may be pivotally coupled to the brass bar.
Referring to
In still some embodiments, after the step of generating, by the swingable bar, vibration waves corresponding to the reproduced high frequency signal components 230, further comprises steps of
Referring to
In some embodiments, the at least one bone of the user comprises maxilla and/or mandibular bones and/or temporal bones, and/or occipital bones.
Referring to
Quantitative experimentation measuring the apparatus acceleration performance with respect to a common exciter to demonstrate that the implementation of CARBON GRAPHITE and the “PIVOT METHOD” improve the (bone vibration transducer) BVT performance.
Referring to
Referring to
Referring to
Continuing to
δr=f2−f1\2fr
ξr=δr/2πfr=1/τr(2πfr)
The decay related to time constant “τr” is a factor of e, so in dB −20 log(e) or −8.7 dB, the time is 22.5 ms, a damping ratio=0.0135.
As shown in further detail in
R=H(fo)·σ where s=1/τ(decay rate)
Rijr=a·ψir·ψjr where “a” is any number but “0”, so “1” is assigned.
As a system with a single degree of freedom with widely spaced modes, the acceleration or frequency response function is the imaginary part of the resonances or mode shape. Various excitations are performed measuring at the same point and direction and various modes appeared as the imaginary part or magnitude of different frequencies, with modes on 524 Hz, 897 Hz, 1,708 Hz, 5,312 Hz, 15,484 Hz (
Evident results show that a force within the range of +/−1 pC/N on exciter input of 1 VRMS is the required level for the ideal loud perception of high frequencies. Since this range can be achieved by implementing the pivot method (the bone vibration transducer (BVT)), the pivot implementation is an adequate approach to increase the force by reducing energy consumption. At the same time, reaching high frequency vibrations with an exciter with lower mass components is the efficient approach to achieve lower power consumption.
The modal analysis shows mode results on the VAH 524 Hz, 897 Hz, 1,708 Hz, 5,312 Hz, and 15,484 Hz. The last mode on 15,484 Hz is ideal for the interested 16 KHz magnitude to reproduce. This mode at 15,484 Hz might be caused by the amount of brass on the VAH, which is not presented inside the human head. Brass is used to achieve the mass of the head. Also, the damping ratio is less than 0.0135, which is a good condition.
Referring to
The BVT apparatus characteristics are shown below: a. adequate mass, b: low energy consumption, c. acceleration performance (or vector vibration) to be perceived in human hearing organs.
The BVT apparatus characteristics in detail are:
Non-numerical experimentation comparing perceptions of the BVT apparatus used by two listeners or HLT, the first HLT 1 is 7 years/old female with HHO frequency perception capabilities in the early stage of life (complete frequency bandwidth of hearing), and the second HLT 2 is 57 years/old male with limited HHO hearing bandwidth. The first and second parameters are performed, wherein the input audio signal may be a music source or sound tones.
HLT1 (7 years old) and HLT2 (57 years old) are exposed to 11 different audio tones through a reference headphone set with 80 dB S.P.L. volume levels for 5 seconds for each tone. The experiment is recorded when HLT1 and HLT2 would or wouldn't perceive the tones. Then, HLT2 are exposed to the same tones through a headphone set and wearing the bone vibration transducer (BVT) in which a 16 KHz tone and HLT2 would or wouldn't perceive the recorded tones. Subsequently, the tones are substituted with 3 minutes of music (Title: For the first time in Forever by Kristen Bell & Idina Menzel) for HLT2, who responds to the question if the music improves when 51 is switched (with and without signal on bone vibration transducer (BVT)). Response recorded.
Referring to
Using the apparatus idea, HLT2 (57 yrs/old) can perceive high frequencies (16 KHz) and is recorded music improvement described as “Clear music.”
According to the embodiments mentioned above, the headphones set used in the experimentation is the Sony MDR-XB950B1. The Sony MDR-XB950B1 is chosen because it has a very good sound performance and is very popular. The human hearing organ (HHO) used as a reference is the human hearing system. The specifications for Sony MDR-XB950B1 are presented as followings. For maximum power applied by the headphone amplifier, since the Sony MDR-XB950B1 is 105 dB/mW on 32 Ohm, the conversion is defined as: dB/V=dB/mW−10*log (Impedance/1000), which is equivalent to 139 dB/mV at 1 KHz. EN 50332-1:2013 recommends audio volumes on the magnitude of 85 dB as an absolute maximum volume, which is equivalent to 316 mVRMS.
Those with ordinary skill in the art may make many alterations and modifications without departing from the spirit and scope of the disclosed embodiments. Therefore, it must be understood that the illustrated embodiments have been set forth only for the purposes of example and that it should not be taken as limiting the embodiments as defined by the following claims. For example, notwithstanding the fact that the elements of a claim are set forth below in a certain combination, it must be expressly understood that the embodiment includes other combinations of fewer, more, or different elements, which are disclosed herein even when not initially claimed in such combinations.
Thus, specific embodiments and applications of the system and method for perceiving high audio frequencies in stereo through human bones have been disclosed. It should be apparent, however, to those skilled in the art that many more modifications besides those already described are possible without departing from the disclosed concepts herein. Therefore, the disclosed embodiments are not to be restricted except in the spirit of the appended claims. Moreover, in interpreting both the specification and the claims, all terms should be interpreted in the broadest possible manner consistent with the context. In particular, the terms “comprises” and “comprising” should be interpreted as referring to elements, components, or steps in a non-exclusive manner, indicating that the referenced elements, components, or steps may be present, utilized, or combined with other elements, components, or steps that are not expressly referenced. Insubstantial changes from the claimed subject matter as viewed by a person with ordinary skill in the art, now known or later devised, are expressly contemplated as equivalent within the scope of the claims. Therefore, obvious substitutions now or later known to one with ordinary skill in the art are defined to be within the scope of the defined elements. The claims are thus to be understood to include what is specifically illustrated and described above, what is conceptually equivalent, what can be obviously substituted, and what essentially incorporates the essential idea of the embodiments. In addition, where the specification and claims refer to at least one of something selected from the group consisting of A, B, C . . . and N, the text should be interpreted as requiring at least one element from the group which includes N, not A plus N, or B plus N, etc.
The words used in this specification to describe the various embodiments are to be understood not only in the sense of their commonly defined meanings but to include by special definition in this specification structure, material, or acts beyond the scope of the commonly defined meanings. Thus, if an element can be understood in this specification as including more than one meaning, its use in a claim must be understood as being generic to all possible meanings supported by the specification, and its use in a claim must be understood as being generic to all possible meanings supported by the specification and the word itself.
The definitions of the words or elements of the following claims, therefore, include not only the combination of elements set forth but all equivalent structures, material, or acts for performing substantially the same function in the same way to obtain the same result. Therefore, it is contemplated that an equivalent substitution of two or more elements may be made for any of the elements in the claims below or that a single element may be substituted for two or more elements in a claim. Although elements may be described above as acting in certain combinations and even initially claimed as such, it is to be expressly understood that one or more elements from a claimed combination can, in some cases, be excised from the combination and that the claimed combination may be directed to a subcombination or variation of a subcombination.
Number | Date | Country | |
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Parent | 17975262 | Oct 2022 | US |
Child | 18120661 | US |