METHOD FOR ENHANCING NOISE REDUCTION AMOUNT OF FEEDBACK ACTIVE NOISE REDUCTION HEADPHONE, AND ACTIVE NOISE REDUCTION HEADPHONES
20180242082 ยท 2018-08-23
Inventors
Cpc classification
G10K11/17875
PHYSICS
G10K11/178
PHYSICS
G10K11/17819
PHYSICS
G10K11/17813
PHYSICS
H04R3/02
ELECTRICITY
H04R1/10
ELECTRICITY
International classification
H04R3/02
ELECTRICITY
H04R1/10
ELECTRICITY
G10K11/178
PHYSICS
Abstract
Disclosed are a method for enhancing noise reduction amount of a feedback active noise reduction headphone and active noise reduction headphones. The method includes: arranging a noise reduction microphone of the feedback active noise reduction headphone at a position away from directly in front of a loudspeaker; and adjusting a relative position between the noise reduction microphone and an ear canal opening of a wearer, and enabling an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) to satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening.
Claims
1. A method for enhancing noise reduction amount of a feedback active noise reduction headphone, wherein the method comprises: arranging a noise reduction microphone of the feedback active noise reduction headphone at a position away from directly in front of a loudspeaker; and adjusting a relative position between the noise reduction microphone and an ear canal opening of a wearer, and enabling an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) to satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening.
2. The method according to claim 1, wherein the step of enabling an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) to satisfy a relation of |L2(s0)|>|L1(s0)| comprises: enabling a relative quantity B of the open-loop transfer function fall inside a circle |B+1|=1 in a Nyquist plot of the open-loop transfer function, and B is the difference between the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0).
3. The method according to claim 2, wherein the method further comprises: designing the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0), so that when a phase of the L1(s0) and the L2(s0) is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both controlled to be less than 1.
4. The method according to claim 1, wherein when the method is applied to a supra-aural feedback active noise reduction headphone, the noise reduction microphone is arranged under an earmuff of the supra-aural feedback active noise reduction headphone, and the loudspeaker faces directly the ear canal opening of the wearer.
5. The method according to claim 1, wherein when the method is applied to a circum-aural feedback active noise reduction headphone, the noise reduction microphone is arranged under a damping mat of the circum-aural feedback active noise reduction headphone, and the loudspeaker faces directly the ear canal opening of the wearer without a damping mat therebetween.
6. The method according to claim 5, wherein the damping mat is formed by filling the earmuff with felted wool or compressed sponge.
7. A supra-aural feedback active noise reduction headphone, wherein a noise reduction microphone of the supra-aural feedback active noise reduction headphone is arranged under an earmuff which is away from directly in front of a loudspeaker, and the loudspeaker faces directly the ear canal opening of the wearer; and when the headphone is worn, a relative position between the noise reduction microphone and the ear canal opening of the wearer is adjusted, so that an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening.
8. The supra-aural feedback active noise reduction headphone according to claim 7, wherein when a phase of the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0) is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both less than 1.
9. A circum-aural feedback active noise reduction headphone, wherein a noise reduction microphone of the circum-aural feedback active noise reduction headphone is arranged under a damping mat which is away from directly in front of a loudspeaker, and the loudspeaker faces directly the ear canal opening of the wearer without a damping mat therebetween; and when the headphone is worn, a relative position between the noise reduction microphone and the ear canal opening of the wearer is adjusted, so that an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening.
10. The circum-aural feedback active noise reduction headphone according to claim 9, wherein when a phase of the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0) is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both less than 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention will hereinafter be described in conjunction with the following drawing figures, wherein like numerals denote like elements, and:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] The following detailed description is merely exemplary in nature and is not intended to limit the invention or the application and uses of the invention. Furthermore, there is no intention to be bound by any theory presented in the preceding background of the invention or the following detailed description.
[0033] In order to make the objects, technical solutions and advantages of this Application clearer, the embodiments of this Application will be described below in further detail in conjunction with the drawings.
[0034] First, the principle of noise reduction of the feedback system of simulative active noise reduction headphones is analyzed.
[0035]
[0036] The transfer function from the error signal e(t) to the environmental noise d(t) is defined as the system sensitivity function S:
It can be seen that, if the error signal E is smaller, the noise reduction effect is better. The noise is reduced in the frequency band where S is less than 1, and increased in the frequency band where S is greater than 1. The noise reduction effect (noise reduction frequency band and noise reduction amount) depends on the open-loop transfer function L (L=GH).
[0037] In designing the open-loop transfer function L of the analog feedback system, the following points should be noted.
[0038] (1) Considering the stability of the closed loop system, the critical condition of no howling is that when a phase of L is even times of the circular constant , the amplitude is less than 1. In practice the amplitude and phase must leave adequate allowances in the design process. Therefore, in designing the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0), when a phase of the L1(s0) and the L2(s0) is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both less than 1.
[0039] (2) The waterbed effect: if the noise in some wave bands is reduced, the noise in other frequency bands is increased.
[0040] (3) The transition zone: the frequency band in which the noise transits from reducing to increasing.
[0041] (4) In addition, the phase attenuation caused by the propagation delay of the G(s) channel is increased along with the frequency increasing, which decreases the phase margin of the feedback system, and increases the difficulty in noise reduction at high frequency bands of the feedback system.
[0042]
[0043] At the noise reduction microphone, the sensitivity function is:
[0044] At the ear canal opening, the sensitivity function is:
[0045] Wherein Rg2M2 is a measured value, and a normalization factor k of the two sensitivity functions must be introduced: G.sub.2=g.sub.2RM.sub.2.Math.k k=M.sub.1/M.sub.2.
[0046] It is defined that L1=HG1, L2=HG2, and B=L2L1, and B is the difference between the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0). The sensitivity function at the ear canal opening may be expressed as S2=S1*(1+B), and the residue noise amount |e2|=|e1|*|1+B|. The difference between the noise reduction effects at the ear canal opening and at the noise reduction microphone depends on the value of B.
[0047] In a frequency band where L2 and L1 are similar, the value of B approaches 0, and |1+B| approaches 1, at this point the noise reduction effects at the ear canal opening and at the noise reduction microphone are close. When B is outside the circle |B+1|=1, |e2|>|e1|, and the noise reduction effect at the ear canal opening becomes poorer than that at the noise reduction microphone. When B is inside the circle |B+1|=1, |e2|<|e1|, and the noise reduction effect at the ear canal opening becomes better than that at the noise reduction microphone.
[0048]
[0049]
[0050] Step 401, arranging a noise reduction microphone of the feedback active noise reduction headphone at a position away from directly in front of a loudspeaker; and
[0051] Step 402, adjusting a relative position between the noise reduction microphone and an ear canal opening of a wearer, and enabling an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) to satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening. After the relative position between the noise reduction microphone and the ear canal opening of the wearer is adjusted, parameters such as g1, g2, the magnitude of the damping between the speaker and the ear canal opening of the wearer, M1 and M2 are adjusted accordingly, and the transfer functions L1 and L2 change along with the adjusting of these parameters.
[0052] In Step 402, the step of enabling an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) to satisfy a relation of |L2(s0)|>|L1(s0)| comprises: enabling a relative quantity B of the open-loop transfer function fall inside a circle |B+1|=1 in a Nyquist plot of the open-loop transfer function, and B is the difference between the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0).
[0053] Furthermore, considering the stability of the closed loop system, in order to avoid howling, the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0) are designed, so that when a phase of the L1(s0) and the L2(s0) is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both controlled to be less than 1.
[0054] Because the wearing stability of supra-aural earphones is poor, which makes the stability of the acoustic paths within the ear cavity poor, the loop gain of the entire closed loop that is formed by the ANC circuit board, the SPK, the acoustic paths within the ear cavity and the MIC cannot be set too large, otherwise howling will probably happen. Therefore, when a conventional ANC design is used in a supra-aural earphone, the noise reduction amount is small, and such kind of noise reduction headphones are not commonly seen.
[0055]
[0056] When the headphone is worn, if the relative position between the noise reduction microphone and the ear canal opening of the wearer is adjusted, parameters such as g1, g2, the magnitude of the damping between the speaker and the ear canal opening of the wearer, M1 and M2 are adjusted accordingly, and the transfer functions L1 and L2 change along with the adjusting of those parameters, so that an open-loop transfer function at the ear canal opening L2(s0) and an open-loop transfer function at the noise reduction microphone L1(s0) satisfy a relation of |L2(s0)|>|L1(s0)|, to enhance an actual noise reduction amount at the ear canal opening. the open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0) are designed so that when the phase is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both controlled to be less than 1, thereby avoiding howling, and realizing the increasing of the noise reduction amount at the ear canal opening that is actually used.
[0057]
[0058]
[0059] The open-loop transfer function at the ear canal opening L2(s0) and the open-loop transfer function at the noise reduction microphone L1(s0) are designed so that when a phase is even times of the circular constant , the amplitudes of the L1(s0) and the L2(s0) are both less than 1, thereby ensuring the stability of the closed loop system, and avoiding howling.
[0060] In conclusion, compared with the prior art, the method for enhancing a noise reduction amount of a feedback active noise reduction headphone and an active noise reduction headphone provided in this Application have the following advantageous effects:
[0061] 1. The method for enhancing a noise reduction amount of a feedback active noise reduction headphone provided in this Application, by adjusting the position of the noise reduction microphone and the sound transfer function relation of the ear canal opening of the wearer, enhances the closed-loop stability of the feedback system and also enhances the actual noise reduction amount at the ear canal opening of the wearer.
[0062] 2. The supra-aural feedback active noise reduction headphone provided in this Application solves the problem of thickness increase in the supra-aural earphone or wearing discomfort resulted from installing a noise reduction microphone directly in front of a speaker in the prior art.
[0063] 3. The circum-aural feedback active noise reduction headphone provided in this Application solves the problem in the prior art that a noise reduction amount is considerably reduced at an ear canal opening of the wearer since a relatively thick filler is used or a circuit gain is attenuated between a speaker and the ear canal opening of the wearer to ensure the system stability.
[0064] The above descriptions are merely preferable embodiments of this Application, and are not used to limit the protection scope of this Application. Any modifications, equivalent substitutions or improvements that are made within the principle of this Application shall all be included in the protection scope of this Application.
[0065] While at least one exemplary embodiment has been presented in the foregoing detailed description, it should be appreciated that a vast number of variations exist. It should also be appreciated that the exemplary embodiment or exemplary embodiments are only examples, and are not intended to limit the scope, applicability, or configuration of the invention in any way. Rather, the foregoing detailed description will provide those skilled in the art with a convenient road map for implementing an exemplary embodiment, it being understood that various changes may be made in the function and arrangement of elements described in an exemplary embodiment without departing from the scope of the invention as set forth in the appended claims and their legal equivalents.