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JP2011217986A - Outer ear canal inserting type electrode and method for making the same - Google Patents

Outer ear canal inserting type electrode and method for making the same Download PDF

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JP2011217986A
JP2011217986A JP2010091100A JP2010091100A JP2011217986A JP 2011217986 A JP2011217986 A JP 2011217986A JP 2010091100 A JP2010091100 A JP 2010091100A JP 2010091100 A JP2010091100 A JP 2010091100A JP 2011217986 A JP2011217986 A JP 2011217986A
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ear canal
conductive
type electrode
conductive layer
thin film
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JP5481749B2 (en
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Yasuhiro Kato
康広 加藤
Hideyuki Ando
英由樹 安藤
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Nippon Telegraph and Telephone Corp
Osaka University NUC
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Nippon Telegraph and Telephone Corp
Osaka University NUC
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  • Measurement And Recording Of Electrical Phenomena And Electrical Characteristics Of The Living Body (AREA)

Abstract

PROBLEM TO BE SOLVED: To provide an outer ear canal inserting type electrode in which sense stimulating current directly passes in an outer ear canal in a vestibula electric stimulation method further the influence of noise can be reduced in a brain wave measuring method without troublesome of attaching and detaching and uncomfortable feeling due to the attachment of gel or paste to a skin.SOLUTION: The outer ear canal inserting type electrode has an elastic body deforming according to the shape of the outer ear canal, an electroconductive layer covering at least a part of the surface of the elastic body and electrically connected to conductive wires, an electroconductive soft layer 130 covering the surface of the electroconductive layer, having an electric resistivity higher than that of the electroconductive layer, and deforming according to the shape of the outer ear canal and is characterized in that the outer peripheral surface of the outer canal inserting type electrode 100 comes in contact with the inner peripheral surface of the outer ear canal and electrically comes into contact with the outer ear canal by the contacting pressure.

Description

本発明は、前庭電気刺激手法において頭蓋内へ電流を入力する場合、または、脳波を計測する場合に用いる外耳道挿入型電極及び外耳道挿入型電極の作製方法に関する。   The present invention relates to an ear canal insertion type electrode and a method for producing an ear canal insertion type electrode that are used when a current is input into the skull in the vestibular electrical stimulation technique or when an electroencephalogram is measured.

特許文献1記載のイヤホン型電極20が前庭電気刺激手法において用いる外耳道挿入型電極として知られている。   The earphone electrode 20 described in Patent Document 1 is known as an ear canal insertion electrode used in a vestibular electrical stimulation technique.

図1に示すように、イヤホン型電極20は、インイヤー式のイヤホン形状をしており、絶縁性材料で形成された、所定の厚さの円盤形状の基部50の突出部として形成され、表面が導電性ゲル層60で被われた、先端が球形の突出部50A(すなわち、イヤーパッドでありこの部分を電極として使用)を外耳道内部に挿入して、導電性ゲル層60の電極を外耳道内の皮膚に密着させて用いる。なお、突出部50Aは、基部50の中央部を突出形成したものに対して、導電性ゴムを巻き付け、その外周部に導電性ゲル層60を形成し、外耳道内部にて皮膚との密着性を向上させている。   As shown in FIG. 1, the earphone-type electrode 20 has an in-ear earphone shape, and is formed as a protruding portion of a disk-shaped base 50 having a predetermined thickness made of an insulating material. A protruding portion 50A having a spherical tip covered with the conductive gel layer 60 (that is, an ear pad and using this portion as an electrode) is inserted into the ear canal, and the electrode of the conductive gel layer 60 is placed in the skin in the ear canal. Used in close contact with. The protrusion 50A is formed by projecting the central portion of the base 50 so that conductive rubber is wrapped around it, and a conductive gel layer 60 is formed on the outer peripheral portion thereof to provide close contact with the skin inside the ear canal. It is improving.

図1に示すイヤホン型電極20を外耳道内に装着した状態で、ケーブル30を介してこのイヤホン型電極20に対して、電気刺激装置から感覚刺激電流を印加すると、従来の耳介または耳介後ろの乳様突起部(以下「耳介等」という)に皮膚表面電極を装着する場合に比べ、皮膚に接触する面積が少なくとも、同等以上の等価ゲインが得られることが知られている。   When a sensory stimulation current is applied from an electrical stimulator to the earphone electrode 20 via the cable 30 with the earphone electrode 20 shown in FIG. 1 mounted in the ear canal, the conventional auricle or the back of the auricle It is known that an equivalent gain at least equivalent to the area in contact with the skin can be obtained as compared with the case where the skin surface electrode is attached to the milky protrusion (hereinafter referred to as “auricle etc.”).

これは印加した感覚刺激電流が、直接外耳道内に流れるため、球殻状の抵抗体に拡散する漏れ電流(球殻状の抵抗体に拡散した電流の積分値)がほぼ無くなり、皮膚表面電極に比較して、より効率的に頭蓋内部の電流経路を流れるためと考えられる。   This is because the applied sensory stimulation current flows directly into the ear canal, so the leakage current that diffuses into the spherical shell resistor (the integrated value of the current diffused into the spherical shell resistor) is almost eliminated, and the skin surface electrode Compared to this, it is considered that the current flows inside the skull more efficiently.

特開2008−188121号公報JP 2008-188121 A

しかしながら、上述の従来技術では、粘性が高く湿った導電性ゲル層を装着するため、皮膚に張り付き、着脱が煩わしいという問題がある。また、粘性が高く湿った導電性ゲル層の皮膚への付着には不快感が伴うという問題がある。特に、外耳道に挿入する場合には、体の内部(利用者自身も確認しづらい部分)に対して、電極を着脱しなければならないため、体の他の部分(例えば、胸部等)に着脱するよりも、着脱の煩わしさ、及び、付着の不快感がともに大きくなる。導電性ゲル層に代えて、導電性ペースト等を用いた場合にも同様の問題が生じる。   However, the above-described conventional technique has a problem in that it attaches to the skin and is troublesome to attach and detach because the conductive gel layer having a high viscosity is moistened. Further, there is a problem that the adhesion of the highly viscous and wet conductive gel layer to the skin is uncomfortable. In particular, when inserting into the external auditory canal, the electrode must be attached to and detached from the inside of the body (the part that is difficult for the user to check), so that it is attached to and removed from other parts of the body (for example, the chest). The bothersomeness of attachment / detachment and the discomfort of adhesion are both increased. Similar problems occur when a conductive paste or the like is used instead of the conductive gel layer.

なお、耳介等に皮膚表面電極を装着する場合、前述のように電流が球殻状の抵抗体に拡散するため、以下の問題がある。頭蓋内の脳組織や前庭組織等への電流路に関する抵抗が高いため(組織自体の抵抗が高く、また、電流路の経路長が長く抵抗が高い)、前庭電気刺激手法において、皮膚表面電極から頭蓋内に電流を入力する場合には漏れ電流を含んだ大量の電流量を必要とする。また、脳波計測手法において、皮膚表面電極から得られる値を基準電位点として利用する場合には、基準電位点が低いため、雑音(例えば、心電等の体の内部から発せられる雑音や被測定者の周りに存在する体の外部の電子機器等から発せられる雑音)の影響を受けやすくなる(つまり、雑音が混入しやすくなる)という問題がある。さらに、日常的に耳介等に皮膚表面電極をしていることによる外観の違和感(みっともなさ)がある。   When the skin surface electrode is attached to the auricle or the like, the current is diffused into the spherical shell-shaped resistor as described above. Because the resistance to the current path to the brain tissue and vestibular tissue in the skull is high (the resistance of the tissue itself is high, and the length of the current path is long and the resistance is high). When a current is input into the cranium, a large amount of current including a leakage current is required. In addition, when using the value obtained from the skin surface electrode as the reference potential point in the electroencephalogram measurement technique, the reference potential point is low, so noise (for example, noise generated from the inside of the body such as an electrocardiogram or the measurement target) There is a problem that it is easy to be affected by the noise (e.g., noise generated from electronic devices outside the body existing around the person) (that is, noise is likely to be mixed). In addition, there is a sense of discomfort (unsatisfactory) in appearance due to daily skin surface electrodes on the auricles and the like.

上記の課題を解決するために、本発明に係る外耳道挿入型電極は、外耳道の形状に合わせて変形する弾性体と、弾性体表面の少なくとも一部を覆い、導線に電気的に接続される導電層と、導電層表面を覆い、導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する導電性柔軟層と、を備え、外耳道挿入型電極の外周面が外耳道内周面に接し、その接触圧で外耳道に電気的に接触する、ことを特徴とする。   In order to solve the above-described problems, an external auditory canal-inserting electrode according to the present invention includes an elastic body that deforms in accordance with the shape of the external ear canal, and a conductive material that covers at least a part of the surface of the elastic body and is electrically connected to a conductor. A conductive flexible layer that covers the surface of the conductive layer, has a higher electrical resistivity than the conductive layer, and deforms in accordance with the shape of the ear canal, and the outer peripheral surface of the ear canal insertion electrode is in contact with the inner peripheral surface of the ear canal The contact pressure makes electrical contact with the ear canal.

本発明は、乾いた電極を外耳道に挿入するため、着脱の煩わしさやゲルやペーストの皮膚への付着による不快感なしに、イヤホン型電極と同様の効果を得ることができる。つまり、前庭電気刺激手法において、感覚刺激電流が、直接外耳道内に流れ、より効率的に頭蓋内部の電流経路を流れる(感覚刺激電流の量を減らしても耳介等に皮膚表面電極を層茶氏して大量の電流を流した場合と同様の効果が得られる)。また、脳波計測手法において、乾電極から得られる値を基準電位点として利用する場合には、基準電位点が高いため、雑音の影響を軽減できる(つまり、雑音が混入を軽減できる)という効果を奏する。さらに、電極が外耳道内部に挿入されるため、耳介等に皮膚表面電極を装着する場合と比べて、外観の違和感がないという効果を奏する。   In the present invention, since the dry electrode is inserted into the ear canal, the same effect as that of the earphone-type electrode can be obtained without bothering the attachment and detachment and discomfort due to adhesion of gel or paste to the skin. In other words, in the vestibular electrical stimulation method, the sensory stimulation current flows directly into the ear canal and flows through the current path inside the skull more efficiently (even if the amount of sensory stimulation current is reduced, the skin surface electrode is layered on the auricle etc. The effect is the same as when a large amount of current is applied). Also, in the EEG measurement method, when using the value obtained from the dry electrode as the reference potential point, the effect of noise can be reduced (that is, noise can be reduced) because the reference potential point is high. Play. Furthermore, since the electrode is inserted into the external auditory canal, there is an effect that there is no sense of incongruity in appearance compared to the case where the skin surface electrode is attached to the auricle or the like.

従来のイヤホン型電極20の斜視図。The perspective view of the conventional earphone-type electrode 20. FIG. 外耳道挿入型電極100の斜視図。1 is a perspective view of an external auditory canal insertion electrode 100. FIG. 弾性体110の平面図。The top view of the elastic body 110. FIG. (A)は導体薄膜の平面図、(B)は導電層に導電性柔軟層を被覆した平面図。(A) is a top view of a conductor thin film, (B) is a top view which coat | covered the conductive flexible layer to the conductive layer. 先端部115以外の胴部外周を導電層で包囲した状態の斜視図。The perspective view of the state which surrounded the trunk | drum outer periphery other than the front-end | tip part 115 with the conductive layer. 外耳道挿入型電極100’の斜視図。The perspective view of an external auditory canal insertion type electrode 100 '. 外耳道挿入型電極200の側面図。The side view of the ear canal insertion type electrode 200. FIG. (A)は弾性体110の断面図、(B)は弾性体110に導電層220をコーティングした状態の断面図、(C)は(B)の導電層220に導電性柔軟層を被覆した状態の断面図、(D)は外耳道挿入型電極200の断面図。(A) is a cross-sectional view of the elastic body 110, (B) is a cross-sectional view of the state in which the conductive layer 220 is coated on the elastic body 110, and (C) is a state in which the conductive layer 220 of (B) is covered with a conductive flexible layer. (D) is sectional drawing of the ear canal insertion type electrode 200. FIG. 外耳道挿入型電極300の断面図。FIG. 3 is a cross-sectional view of an external auditory canal insertion electrode 300.

以下、本発明の実施の形態について、詳細に説明する。   Hereinafter, embodiments of the present invention will be described in detail.

<外耳道挿入型電極100>
図2〜4を用いて実施例1に係る外耳道挿入型電極100を説明する。外耳道挿入型電極100は、弾性体110と導電層120と導電性柔軟層130を有する。
<Ear canal insertion electrode 100>
The ear canal insertion electrode 100 according to the first embodiment will be described with reference to FIGS. The ear canal insertion electrode 100 includes an elastic body 110, a conductive layer 120, and a conductive flexible layer 130.

<弾性体110>
弾性体110は外耳道の形状に合わせて変形する。例えば、弾性体110の材料、形状、大きさ等は、従来の耳栓の材料、形状、大きさ等と同様にすればよい。例えば、弾性体110は弾性発泡ポリマー等を用いて形成され、その形状を先端部115及び胴部113を備える弾丸形状とし(図3参照)、その大きさを全長20mm±5mm、直径14mm±3mm程度とする。
<Elastic body 110>
The elastic body 110 is deformed according to the shape of the ear canal. For example, the material, shape, size, etc. of the elastic body 110 may be the same as the material, shape, size, etc. of a conventional earplug. For example, the elastic body 110 is formed using an elastic foamed polymer or the like, and the shape thereof is a bullet shape including a tip portion 115 and a body portion 113 (see FIG. 3), and the size thereof is 20 mm ± 5 mm in total length and 14 mm ± 3 mm in diameter. To the extent.

<導電層120>
導電層120は、弾性体110の表面の少なくとも一部を覆い、さらに、導線に電気的に接続される。本実施例では、導電層120は、図4(A)に示す短冊状の導体薄膜の一部(図4(A)の破線の左側部分)からなり、導線90は、短冊状の導体薄膜の導電層以外の部分(図4(A)の破線の右側部分)からなる。さらに、導電層120は導体薄膜からなる線状の締結部123を備えてもよい。図2に示すように、先端部115以外の胴部113の外周を導体薄膜で包囲することで導電層を形成し(但し、図2において導電層120は後述する導電性柔軟層130により覆われているため、図示していない)、導体薄膜を綯うことで導線90を形成する。なお、導電薄膜は、銅薄膜、金薄膜等である。
<Conductive layer 120>
The conductive layer 120 covers at least a part of the surface of the elastic body 110 and is further electrically connected to the conductive wire. In this embodiment, the conductive layer 120 is composed of a part of the strip-shaped conductor thin film shown in FIG. 4A (the left side portion of the broken line in FIG. 4A), and the conductive wire 90 is a strip-shaped conductor thin film. It consists of portions other than the conductive layer (the right side portion of the broken line in FIG. 4A). Furthermore, the conductive layer 120 may include a linear fastening portion 123 made of a conductive thin film. As shown in FIG. 2, a conductive layer is formed by surrounding the outer periphery of the body portion 113 other than the tip portion 115 with a conductive thin film (however, in FIG. 2, the conductive layer 120 is covered with a conductive flexible layer 130 described later. Therefore, the conductive wire 90 is formed by winding the conductive thin film. The conductive thin film is a copper thin film, a gold thin film, or the like.

<導電性柔軟層130>
図4(B)に示すように、導電性柔軟層130は、導電層の表面を覆うように導電層上に形成される。導電性柔軟層130は、導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する材料を用いる。例えば、導電性シリコン、導電性ゴム、導電性スポンジまたは導電性ウレタン等を用いて導電性柔軟層を形成する。なお、導電性柔軟層の電気抵抗率は、人間の皮膚の電気抵抗率(5k〜50kΩ・m)と同程度が最適である。例えば、前庭電気刺激手法において頭蓋内へ電流を入力する場合に、導電性柔軟層の電気抵抗率が低すぎると、外耳道との接触箇所のうち、抵抗値が一番低い場所に電流が集中するため、その場所と接触する外耳道に強く痛みを感じる。なお、電気抵抗率と硬度の観点から導電性柔軟層の材料としては、導電性シリコンが最適であると考えられる。但し、本発明は、導電性柔軟層を導電性シリコンに限定するものではない。
<Conductive flexible layer 130>
As shown in FIG. 4B, the conductive flexible layer 130 is formed on the conductive layer so as to cover the surface of the conductive layer. The conductive flexible layer 130 has a higher electrical resistivity than the conductive layer and uses a material that deforms in accordance with the shape of the ear canal. For example, the conductive flexible layer is formed using conductive silicon, conductive rubber, conductive sponge, conductive urethane, or the like. Note that the electrical resistivity of the conductive flexible layer is optimally the same as that of human skin (5 k-50 kΩ · m). For example, when current is input into the skull in the vestibular electrical stimulation method, if the electrical resistivity of the conductive flexible layer is too low, the current concentrates in the place where the resistance value is the lowest among the contact points with the ear canal Because of that, the ear canal feels pain in contact with the place. From the viewpoint of electrical resistivity and hardness, it is considered that conductive silicon is optimal as the material for the conductive flexible layer. However, the present invention does not limit the conductive flexible layer to conductive silicon.

<作用・効果>
このような構成とすることで、外耳道挿入型電極100の外周面が外耳道内周面に接し、その接触圧で外耳道に電気的に接触する。よって、導線90を各装置に電気的に接続すれば、この外耳道挿入型電極100を外耳道に挿入して、前庭電気刺激手法において頭蓋内へ電流を入力することができ、また、脳波を計測することができる。その際、頭蓋内の脳組織や前庭組織等に対し電流路に関する抵抗が頭蓋骨よりも低いと考えられる内耳、中耳を経由する外耳道に電極を装着するため、以下の効果が得られる。前庭電気刺激時には漏れ電流を最小にすることができるので、前庭電気刺激時に用いる電流量を減らすことができる。また、外耳道挿入型電極100から得られる値を脳波計測時の基準電位点として利用した場合は、耳介装着に比べ脳活電位の基準の雑音の混入を軽減できる。
<Action and effect>
With such a configuration, the outer peripheral surface of the ear canal insertion electrode 100 is in contact with the inner peripheral surface of the ear canal, and is electrically in contact with the ear canal with the contact pressure. Therefore, if the lead wire 90 is electrically connected to each device, the external auditory canal-inserting electrode 100 can be inserted into the ear canal, and a current can be input into the skull in the vestibular electrical stimulation technique, and brain waves are measured. be able to. At this time, since the electrodes are attached to the inner ear and middle ear that are considered to have lower resistance to the current path than the skull for brain tissue and vestibular tissue in the skull, the following effects are obtained. Since the leakage current can be minimized during vestibular electrical stimulation, the amount of current used during vestibular electrical stimulation can be reduced. In addition, when the value obtained from the external auditory canal-inserting electrode 100 is used as a reference potential point at the time of measuring an electroencephalogram, it is possible to reduce mixing of reference noise of the brain active potential as compared with the auricle wearing.

さらに、本実施例では、ゲル状またはペースト状の粘性の高い湿った電極を用いず、導電性の柔軟材料(例えば、導電性シリコンなど)であって、皮膚抵抗に近い材料を皮膚界面の素材とすることで、乾電極を実現している。そのため、着脱の煩わしさや皮膚への付着による不快感はないという効果を奏する。   Furthermore, in this embodiment, a conductive flexible material (for example, conductive silicon) that does not use a gel-like or paste-like high-viscosity moist electrode and has a skin resistance close to that of the skin interface. Thus, a dry electrode is realized. Therefore, there is an effect that there is no annoyance due to attachment and detachment and attachment to the skin.

また、弾性体110及び導電性柔軟層130を外耳道の形状に合わせて変形するため、皮膚との接触部分である導電性柔軟層に角部分ができることを防ぐことができる。そして、外耳道挿入型電極が点接触ではなく、外耳道内周面に均一に接触する。これにより、電流密度が低くなるように広い面積で接触する。なお、弾性体110の先端部115は接触圧力が高くなる可能性があるため(点接触する可能性があるため)導体化しない構成としている。このような構成により、前庭電気刺激手法において、電流密度が高くなり痛みを与えることを防ぐことができる。なお、弾性体の硬度及び導電性柔軟層の硬度、厚さは、外耳道挿入型電極の外周面が、外耳道内周面に均一に接し、その接触圧で外耳道に電気的に接触する程度であれば良く、実験等により適宜設定する。例えば、弾性体及び導電性柔軟層の硬度は新JISK6253規格でA20−A50程度であり、導電性柔軟層の厚さは0.5mm〜2mm程度である。また導電層の厚さは、十分に小さい抵抗を持ちつつ剥離しない程度であればよく、例えば、1−100μm程度である。   In addition, since the elastic body 110 and the conductive flexible layer 130 are deformed in accordance with the shape of the ear canal, it is possible to prevent corner portions from being formed in the conductive flexible layer that is a contact portion with the skin. Then, the ear canal insertion type electrode is not in point contact but is in uniform contact with the inner peripheral surface of the ear canal. Thereby, it contacts in a wide area so that a current density may become low. In addition, since the front-end | tip part 115 of the elastic body 110 may become a contact pressure high (because there is a possibility of a point contact), it is set as the structure which is not made into a conductor. With such a configuration, in the vestibular electrical stimulation technique, it is possible to prevent the current density from increasing and causing pain. Note that the hardness of the elastic body and the hardness and thickness of the conductive flexible layer should be such that the outer peripheral surface of the ear canal insertion-type electrode is in uniform contact with the inner peripheral surface of the ear canal and is in electrical contact with the outer ear canal by its contact pressure. It is sufficient to set appropriately by experiment. For example, the hardness of the elastic body and the conductive flexible layer is about A20-A50 according to the new JISK6253 standard, and the thickness of the conductive flexible layer is about 0.5 mm to 2 mm. Moreover, the thickness of a conductive layer should just be a grade which has a sufficiently small resistance, and does not peel, for example, is about 1-100 micrometers.

仮に、弾性体110上に導電層120のみを形成した場合、前庭電気刺激手法において、導電層120に導線90から一気に電流が流れ、導電層120と導線90との接続部分近傍の電流密度が高くなり、装着者に痛みを与える可能性がある。また、弾性体110上に、導電層120を介さずに、直接導電性柔軟層130を形成した場合、前庭電気刺激手法において、導電性柔軟層130と導線90との接続部分近傍のみ電流密度が高くなり、装着者に痛みを与える可能性がある。また、脳波計測時には、接続部分近傍を流れる電流しか検出できず、正確な脳波計測ができない。そのため、導電性柔軟層130全体に均一に電流が流れるように、導電性柔軟層130の下層に導電層120を形成する必要があると考えられる。   If only the conductive layer 120 is formed on the elastic body 110, in the vestibular electrical stimulation method, current flows from the conductive wire 90 to the conductive layer 120 at a stretch, and the current density near the connection portion between the conductive layer 120 and the conductive wire 90 is high. May cause pain to the wearer. Further, when the conductive flexible layer 130 is formed directly on the elastic body 110 without the conductive layer 120, the current density is only in the vicinity of the connection portion between the conductive flexible layer 130 and the conductive wire 90 in the vestibular electrical stimulation method. It can be high and cause pain to the wearer. Also, when measuring the electroencephalogram, only the current flowing in the vicinity of the connected portion can be detected, and accurate electroencephalogram measurement cannot be performed. Therefore, it is considered necessary to form the conductive layer 120 under the conductive flexible layer 130 so that the current flows uniformly throughout the conductive flexible layer 130.

<外耳道挿入型電極100の作製方法>
まず、弾性材(例えば弾性発泡ポリマー等)を用いて射出成形法等により成形し、外耳道の形状に合わせて変形する弾性体110を生成する。その際、弾性体110に先端部115と胴部113を設けてもよい(図3参照)。
<Method for Producing Ear Canal Insertion Type Electrode 100>
First, an elastic body 110 that is molded by an injection molding method or the like using an elastic material (for example, an elastic foamed polymer or the like) is generated to deform in accordance with the shape of the ear canal. At that time, the elastic body 110 may be provided with a tip portion 115 and a body portion 113 (see FIG. 3).

次に、図4(A)のように導体薄膜からなる線状の締結部123に一端が接続される短冊状の導体薄膜を生成する。   Next, as shown in FIG. 4A, a strip-shaped conductor thin film having one end connected to a linear fastening portion 123 made of a conductor thin film is generated.

次に、図4(B)のように短冊状の導体薄膜の一部(導電層120)を導電性柔軟層130で覆う。   Next, as shown in FIG. 4B, a part of the strip-shaped conductor thin film (conductive layer 120) is covered with the conductive flexible layer 130.

次に、図3の弾性体110の先端部115と胴部113の境界部分に、図4(B)の締結部123を巻きつけて固定する。縛って固定してもよいし、半田等を用いて固定してもよい。このようにすることで、先端部115以外の胴部113の外周を導体薄膜で包囲した部分が導電層120を形成する。   Next, the fastening portion 123 of FIG. 4B is wound around and fixed to the boundary portion between the distal end portion 115 and the body portion 113 of the elastic body 110 of FIG. It may be tied and fixed, or may be fixed using solder or the like. By doing in this way, the part which surrounded the outer periphery of trunk | drum 113 other than the front-end | tip part 115 with the conductor thin film forms the conductive layer 120.

さらに、残りの導体薄膜を綯うことで導線90を形成する(図2参照)。このようにして、外耳道挿入電極100を作製することができる。   Further, the conductive wire 90 is formed by scraping the remaining conductive thin film (see FIG. 2). Thus, the ear canal insertion electrode 100 can be manufactured.

<外耳道挿入型電極100’の作製方法>
同様の効果を奏する外耳道挿入型電極100’の作製方法について説明する。まず、外耳道挿入型電極100の作製方法と同様に弾性体110及び導体薄膜を生成する。
<Method for Producing Ear Canal Insertion Type Electrode 100 ′>
A method for producing the external auditory canal-inserting electrode 100 ′ having the same effect will be described. First, the elastic body 110 and the conductor thin film are generated in the same manner as the method for manufacturing the ear canal insertion electrode 100.

次に、導電層120を導電性柔軟層130で覆う前に、図3の弾性体110の先端部115と胴部113の境界部分に、図4(A)の締結部123を巻きつけて固定する。   Next, before covering the conductive layer 120 with the conductive flexible layer 130, the fastening portion 123 of FIG. 4A is wound around the boundary portion of the elastic body 110 of FIG. To do.

さらに、残りの導体薄膜を綯うことで導線90を形成する(図5参照)。   Further, the conductive wire 90 is formed by scraping the remaining conductive thin film (see FIG. 5).

最後に、図6のように弾性体110の胴部113及び胴部を覆う導電層120を導電性柔軟層130’で覆う。このようにして、外耳道挿入電極100’を作製することができる。   Finally, as shown in FIG. 6, the body 113 of the elastic body 110 and the conductive layer 120 covering the body are covered with the conductive flexible layer 130 '. In this manner, the ear canal insertion electrode 100 ′ can be manufactured.

<その他の変形例>
但し、必ずしも弾性体110の形状は弾丸状でなくともよい。単なる円柱状であってもよく、先端部115及び胴部113は、特定の部分の電流密度が高くならないように適宜設ければよい。
<Other variations>
However, the shape of the elastic body 110 is not necessarily a bullet shape. The tip portion 115 and the body portion 113 may be provided as appropriate so that the current density of a specific portion does not increase.

また、必ずしも締結部123は必要としない。例えば接着剤等を用いて、導体薄膜を弾性体110の表面に接着し、胴部113の外周を導電薄膜で包囲し、導電層を形成してもよい。   Moreover, the fastening part 123 is not necessarily required. For example, the conductive thin film may be bonded to the surface of the elastic body 110 using an adhesive or the like, and the outer periphery of the body 113 is surrounded by the conductive thin film to form a conductive layer.

図7及び図8を用いて実施例2に係る外耳道挿入型電極200を説明する。実施例1と異なる部分についてのみ説明する。   The ear canal insertion electrode 200 according to the second embodiment will be described with reference to FIGS. 7 and 8. Only parts different from the first embodiment will be described.

<導電層220及び導電性柔軟層230>
導電層220は、胴部113をコーティングする導体薄膜からなる(図8(B)参照)。
<Conductive layer 220 and conductive flexible layer 230>
The conductive layer 220 is formed of a conductive thin film that coats the body 113 (see FIG. 8B).

導電性柔軟層230は、導電層220上に皮膜形成される(図8(C)参照)。   The conductive flexible layer 230 is formed as a film over the conductive layer 220 (see FIG. 8C).

<外耳道挿入型電極200の作製方法>
実施例1と同様に弾性体110を生成する(図8(A)参照)。
<Method for Producing External Canal Insertion-Type Electrode 200>
The elastic body 110 is produced | generated similarly to Example 1 (refer FIG. 8 (A)).

次に、弾性体110の胴部113を、イオンスパッタや真空蒸着などにより、導体薄膜(導電層220)でコーティングする(図8(B)参照)。   Next, the body 113 of the elastic body 110 is coated with a conductive thin film (conductive layer 220) by ion sputtering or vacuum deposition (see FIG. 8B).

次に、導体薄膜上に導電性柔軟層230を、イオンスパッタや真空蒸着などにより、、皮膜形成する(図8(C)参照)。   Next, a conductive flexible layer 230 is formed on the conductive thin film by ion sputtering, vacuum deposition, or the like (see FIG. 8C).

さらに、ケーブル30内の導線90を半田等で導電層220と電気的に接続し、最後にプラスチック等により形成された保護部材40で導線90がむき出しになっている部分を覆う。   Further, the conductive wire 90 in the cable 30 is electrically connected to the conductive layer 220 with solder or the like, and finally the portion where the conductive wire 90 is exposed is covered with a protective member 40 formed of plastic or the like.

このような構成とすることで、実施例1と同様の効果を得ることができる。さらに、本実施例では保護部材40でむき出しの導線90を覆い、電極が外耳道内部に挿入されるため、外観の違和感がないという効果を奏する。なお、実施例1の外耳道挿入型電極100及び100’においても保護部材40を用いて導線部分を覆うことで、同様の効果を得ることができる。仮に耳介等に電極を装着する場合には、導線部分を覆ったとしても、この違和感を取り除くことはできない。   By adopting such a configuration, the same effect as in the first embodiment can be obtained. Further, in the present embodiment, the exposed conductive wire 90 is covered with the protective member 40, and the electrode is inserted into the ear canal, so that there is an effect that there is no discomfort in the appearance. In addition, also in the ear canal insertion type electrodes 100 and 100 ′ of the first embodiment, the same effect can be obtained by covering the conductor portion with the protective member 40. If the electrodes are attached to the auricle or the like, this uncomfortable feeling cannot be removed even if the conductor portion is covered.

図9を用いて実施例3に係る外耳道挿入型電極300を説明する。実施例2と異なる部分のみ説明する。外耳道挿入型電極300のカナル型イヤホンと同形状である。例えば、従来のカナル型イヤホンの形状を示す文献として、参考文献1等がある。
[参考文献1]:特開2009−284097号公報
外耳道挿入型電極300は、例えば、カナル型イヤホンの弾性体310からなるイヤホンパッド部分に、導体薄膜(導電層220)を、イオンスパッタや真空蒸着などにより、コーティングし、さらに、導電層220上に導電性柔軟層230を、イオンスパッタや真空蒸着などにより、皮膜形成する。
The ear canal insertion electrode 300 according to the third embodiment will be described with reference to FIG. Only parts different from the second embodiment will be described. It has the same shape as the canal type earphone of the ear canal insertion type electrode 300. For example, there is Reference 1 as a document showing the shape of a conventional canal type earphone.
[Reference 1]: JP-A-2009-284097 The ear canal insertion electrode 300 has a conductive thin film (conductive layer 220) formed on an earphone pad portion made of an elastic body 310 of a canal type earphone, for example, by ion sputtering or vacuum deposition. Then, the conductive flexible layer 230 is formed on the conductive layer 220 by ion sputtering, vacuum deposition, or the like.

例えば、外耳道挿入型電極300は、ケース61の筒状の収納部61a内にスピーカ63を収納する。スピーカ63は、スピーカ用導線91を介して電気信号が入力される。ケース61は、収納部61aの内周より小さい外周を有し、弾性体310を取り付けられる円筒状の突出部61bを備える。   For example, the ear canal insertion type electrode 300 houses the speaker 63 in the cylindrical housing portion 61 a of the case 61. An electrical signal is input to the speaker 63 via the speaker conductor 91. The case 61 has an outer periphery smaller than the inner periphery of the storage portion 61a, and includes a cylindrical protrusion 61b to which the elastic body 310 is attached.

弾性体310はカナル型イヤホンにおいて用いるイヤホンパッド部分を形成する。つまり、突出部61bの外周を囲むように取り付けられて外耳道に差し込まれたときに外耳道の全周にわたって外耳道表面との間に密着してしかも突出部61bの外周を囲む環状空間310aを形成するように構成される。弾性体310は外耳道に差し込まれたときに外耳道に通じる開口部310bを有する。   The elastic body 310 forms an earphone pad portion used in a canal type earphone. In other words, an annular space 310a is formed so as to surround the outer periphery of the protruding portion 61b and to be in close contact with the outer ear canal surface over the entire circumference of the ear canal when attached so as to surround the outer periphery of the protruding portion 61b. Configured. The elastic body 310 has an opening 310b that leads to the ear canal when inserted into the ear canal.

このような構成とすることで、カナル型イヤホンとの併用も可能である。この場合も実施例1及び実施例2と同様の効果を奏する。また外部の環境音などが聞こえることで、使用時における安全性の確保や、閉所感などの恐怖や不安の緩和が可能である。また、スピーカ機能を必要としない場合には、スピーカ63及びスピーカ用導線91を設けずに、外耳道挿入型電極を構成すれば、イヤホン機能以外は、外耳道挿入型電極300と同様の効果を得ることができる。なお、カナル型イヤホンの形状は図9等に限定されるものではなく、従来のカナル型イヤホン(外耳道にイヤホンパッドを挿入するタイプのイヤホン)の形状であればよい。   With such a configuration, it can be used together with a canal type earphone. In this case, the same effects as those of the first and second embodiments are obtained. In addition, by hearing external environmental sounds, it is possible to ensure safety during use and to relieve fear and anxiety such as a feeling of closedness. Further, when the speaker function is not required, the same effects as those of the ear canal insertion type electrode 300 can be obtained except for the earphone function by configuring the ear canal insertion type electrode without providing the speaker 63 and the speaker conductor 91. Can do. The shape of the canal-type earphone is not limited to that shown in FIG. 9 or the like, and may be any conventional canal-type earphone (an earphone of a type in which an earphone pad is inserted into the ear canal).

なお、弾性体及び導電性柔軟層の硬度、厚さは、実施例1と同様に外耳道挿入型電極の外周面が、外耳道内周面に均一に接し、その接触圧で外耳道に電気的に接触する程度であれば良く、実験等により適宜設定する。例えば、弾性体の厚さは0.5mm〜2mm程度である。   The hardness and thickness of the elastic body and the conductive flexible layer are the same as in the first embodiment. The outer peripheral surface of the ear canal insertion-type electrode is in uniform contact with the inner peripheral surface of the ear canal, and the contact pressure makes electrical contact with the ear canal. However, it is set appropriately by experiment. For example, the thickness of the elastic body is about 0.5 mm to 2 mm.

100、200、300 外耳道挿入型電極
110、310 弾性体
120、220 導電層
130、230 導電性柔軟材
100, 200, 300 Ear canal insertion type electrode 110, 310 Elastic body 120, 220 Conductive layer 130, 230 Conductive flexible material

Claims (9)

人間の外耳道に挿入する外耳道挿入型電極であって、
外耳道の形状に合わせて変形する弾性体と、
弾性体表面の少なくとも一部を覆い、導線に電気的に接続される導電層と、
前記導電層表面を覆い、前記導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する導電性柔軟層と、を備え、
前記外耳道挿入型電極の外周面が外耳道内周面に接し、その接触圧で外耳道に電気的に接触する、
ことを特徴とする外耳道挿入型電極。
An ear canal insertion electrode to be inserted into a human ear canal,
An elastic body that deforms according to the shape of the ear canal,
A conductive layer covering at least part of the surface of the elastic body and electrically connected to the conductor;
A conductive flexible layer that covers the surface of the conductive layer, has a higher electrical resistivity than the conductive layer, and deforms in accordance with the shape of the ear canal,
The outer peripheral surface of the ear canal insertion electrode is in contact with the inner peripheral surface of the ear canal, and is in electrical contact with the ear canal with its contact pressure,
The ear canal insertion type electrode characterized by the above-mentioned.
請求項1記載の外耳道挿入型電極であって、
前記弾性体は、先端部と胴部からなり、
前記導電層及び導線は、短冊状の導体薄膜からなり、
前記先端部以外の前記胴部外周を前記導体薄膜で包囲することで導電層を形成し、前記導体薄膜を綯うことで導線を形成する、
ことを特徴とする外耳道挿入型電極。
The ear canal insertion electrode according to claim 1,
The elastic body comprises a tip portion and a trunk portion,
The conductive layer and the conductive wire are made of a strip-shaped conductor thin film,
Forming a conductive layer by surrounding the outer periphery of the body portion other than the tip with the conductive thin film, and forming a conductive wire by sandwiching the conductive thin film;
The ear canal insertion type electrode characterized by the above-mentioned.
請求項1記載の外耳道挿入型電極であって、
前記弾性体は、先端部と胴部からなり、
前記導電層は、前記胴部をコーティングする導体薄膜からなり、
前記導電性柔軟層は、前記導電層上に皮膜形成される、
ことを特徴とする外耳道挿入型電極。
The ear canal insertion electrode according to claim 1,
The elastic body comprises a tip portion and a trunk portion,
The conductive layer is made of a conductive thin film that coats the body portion,
The conductive flexible layer is formed as a film on the conductive layer.
The ear canal insertion type electrode characterized by the above-mentioned.
請求項1記載の外耳道挿入型電極であって、
上記外耳道挿入型電極の形状は、カナル型イヤホンと同形状であり、
イヤホンパッド部分を前記弾性体により形成し、
前記導電層は、前記イヤホンパッド部分をコーティングする導体薄膜からなり、
前記導電性柔軟層は、前記導電層上に皮膜形成される、
ことを特徴とする外耳道挿入型電極。
The ear canal insertion electrode according to claim 1,
The shape of the ear canal insertion type electrode is the same shape as the canal type earphone,
The earphone pad part is formed of the elastic body,
The conductive layer is a conductive thin film that coats the earphone pad portion,
The conductive flexible layer is formed as a film on the conductive layer.
The ear canal insertion type electrode characterized by the above-mentioned.
請求項1から4記載の外耳道挿入型電極であって、
前記導電性柔軟層の電気抵抗率は5k〜50kΩ・mである、
ことを特徴とする外耳道挿入型電極。
The ear canal insertion type electrode according to claim 1,
The conductive flexible layer has an electrical resistivity of 5 k to 50 kΩ · m.
The ear canal insertion type electrode characterized by the above-mentioned.
人間の外耳道に挿入する外耳道挿入型電極の作製方法であって、
外耳道の形状に合わせて変形する弾性材を用いて、先端部と胴部を備える弾性体を生成し、
複数の短冊状の導体薄膜を生成し、
短冊状の導体薄膜のうち、導電層となる部分を導電性柔軟層で覆い、
前記先端部と胴部の境界部分に、前記短冊状の導体薄膜の一端を固定し、前記胴部の外周を導電層で包囲し、
導電層となる部分以外の導体薄膜を綯うことで導線を形成し、
前記導電性柔軟層は、前記導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する、
ことを特徴とする外耳道挿入型電極の作製方法。
A method for producing an ear canal insertion type electrode to be inserted into a human ear canal,
Using an elastic material that deforms according to the shape of the ear canal, an elastic body including a tip and a trunk is generated,
Generate multiple strip-shaped conductor thin films,
Of the strip-shaped conductor thin film, the conductive layer is covered with a conductive flexible layer,
One end of the strip-shaped conductor thin film is fixed to a boundary portion between the tip portion and the body portion, and the outer periphery of the body portion is surrounded by a conductive layer,
Forming a conductor by scratching the conductor thin film other than the part that becomes the conductive layer,
The conductive flexible layer has a higher electrical resistivity than the conductive layer and is deformed in accordance with the shape of the ear canal.
A method for producing an external auditory canal insertion type electrode.
人間の外耳道に挿入する外耳道挿入型電極の作製方法であって、
外耳道の形状に合わせて変形する弾性材を用いて、先端部と胴部を備える弾性体を生成し、
複数の短冊状の導体薄膜を生成し、
前記先端部と胴部の境界部分に、前記短冊状の導体薄膜の一端を固定し、前記胴部の外周を導電層で包囲し、
導電層となる部分以外の導体薄膜を綯うことで導線を形成し、
短冊状の導体薄膜のうち、導電層となる部分及び弾性体の胴部を導電性柔軟層で覆い、
前記導電性柔軟層は、前記導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する、
ことを特徴とする外耳道挿入型電極の作製方法。
A method for producing an ear canal insertion type electrode to be inserted into a human ear canal,
Using an elastic material that deforms according to the shape of the ear canal, an elastic body including a tip and a trunk is generated,
Generate multiple strip-shaped conductor thin films,
One end of the strip-shaped conductor thin film is fixed to a boundary portion between the tip portion and the body portion, and the outer periphery of the body portion is surrounded by a conductive layer,
Forming a conductor by scratching the conductor thin film other than the part that becomes the conductive layer,
Of the strip-shaped conductor thin film, the conductive layer and the elastic body portion are covered with the conductive flexible layer,
The conductive flexible layer has a higher electrical resistivity than the conductive layer and is deformed in accordance with the shape of the ear canal.
A method for producing an external auditory canal insertion type electrode.
人間の外耳道に挿入する外耳道挿入型電極の作製方法であって、
外耳道の形状に合わせて変形する弾性材を用いて、先端部と胴部を備える弾性体を生成し、
前記弾性体の胴部を導体薄膜でコーティングし、
導体薄膜上に導電性柔軟層を皮膜形成し、
導線を導電層と電気的に接続し、
前記導電性柔軟層は、前記導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する、
ことを特徴とする外耳道挿入型電極の作製方法。
A method for producing an ear canal insertion type electrode to be inserted into a human ear canal,
Using an elastic material that deforms according to the shape of the ear canal, an elastic body including a tip and a trunk is generated,
Coating the body of the elastic body with a conductive thin film;
Form a conductive flexible layer on the conductor thin film,
Electrically connecting the conductor to the conductive layer;
The conductive flexible layer has a higher electrical resistivity than the conductive layer and is deformed in accordance with the shape of the ear canal.
A method for producing an external auditory canal insertion type electrode.
人間の外耳道に挿入する外耳道挿入型電極の作製方法であって、
上記外耳道挿入型電極の形状は、カナル型イヤホンと同形状であり、
外耳道の形状に合わせて変形する弾性材を用いて、イヤホンパッド部分を生成し、
前記イヤホンパッド部分の外耳道接触面を導体薄膜でコーティングし、
導体薄膜上に導電性柔軟層を皮膜形成し、
導線を導電層と電気的に接続し、
前記導電性柔軟層は、前記導電層よりも電気抵抗率が高く、外耳道の形状に合わせて変形する、
ことを特徴とする外耳道挿入型電極の作製方法。
A method for producing an ear canal insertion type electrode to be inserted into a human ear canal,
The shape of the ear canal insertion type electrode is the same shape as the canal type earphone,
Using an elastic material that deforms to match the shape of the ear canal, generate an earphone pad part,
Coating the ear canal contact surface of the earphone pad part with a conductive thin film,
Form a conductive flexible layer on the conductor thin film,
Electrically connecting the conductor to the conductive layer;
The conductive flexible layer has a higher electrical resistivity than the conductive layer and is deformed in accordance with the shape of the ear canal.
A method for producing an external auditory canal insertion type electrode.
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