POWER-SAVING EARPHONE
20190208306 ยท 2019-07-04
Inventors
Cpc classification
H04R2460/03
ELECTRICITY
H04R2460/15
ELECTRICITY
H01H2003/007
ELECTRICITY
H04R1/1041
ELECTRICITY
H01H3/14
ELECTRICITY
H01H9/0271
ELECTRICITY
International classification
H04R1/10
ELECTRICITY
Abstract
A power-saving earphone includes a casing, an audio member, a sensing member, and an elastic soft sheath. The casing has first and second grounding paths provided separately. The audio member is disposed in the casing and includes a processing unit electrically connected with the first grounding path. The sensing member includes a controlling unit electrically connected with the second grounding path. The elastic soft sheath is disposed on the casing and capable of being elastically deformed by an external force. When the elastic soft sheath is not deformed, the first and second grounding paths form an open circuit. When the elastic soft sheath is elastically deformed by the external force, the elastic soft sheath electrically connects the first and second grounding paths, enabling the sensing member to function.
Claims
1. A power-saving earphone capable of being driven by a power source to emit sound, the earphone comprising: a casing having a first grounding path and a second grounding path separately disposed on an exterior surface of the casing; an audio member comprising a processing unit electrically connected with the first grounding path; a sensing member comprising a controlling unit electrically connected with the second grounding path; and an elastic soft sheath disposed on a periphery of the casing and capable of being elastically deformed by an external force; wherein when the elastic soft sheath is not deformed, the elastic soft sheath, the first grounding path and the second grounding path form an open circuit; when the elastic soft sheath is deformed by the external force, the first grounding path is electrically connected with the second grounding path through the elastic soft sheath, and wherein the power source comprises a positive voltage terminal and a ground terminal; the positive voltage terminal of the power source is electrically connected with the processing unit and the controlling unit, and the ground terminal of the power source is electrically connected with the first grounding path; when the elastic soft sheath electrically connects the first grounding path and the second grounding path, the audio member, the sensing member, the power source and the elastic soft sheath jointly form a closed loop.
2. The earphone as claimed in claim 1, wherein the elastic soft sheath has a sleeve portion and an outer cover connected with the sleeve portion; the sleeve portion of the elastic soft sheath is sleeved onto the casing; the outer cover has an electrically conductive portion annularly provided on an outer edge of the outer cover; when the outer cover is deformed by the external force, the electrically conductive portion of the outer cover is in contact with the first grounding path and the second grounding path.
3. The earphone as claimed in claim 2, wherein the sleeve portion is made of electrically insulating material; the outer cover is made of electrically conductive material or coated with an electrically conductive material layer on a surface of the outer cover.
4. The earphone as claimed in claim 2, wherein the elastic soft sheath is made of electrically conductive material.
5. The earphone as claimed in claim 2, wherein the casing further comprises a sound tube and a main body connected with the sound tube; an exterior surface of the sound tube has a first section and a second section; the first grounding path and the second grounding path are extended from an inner wall of the main body to the first section of the sound tube; the sleeve portion is sleeved onto and covers the second section of the sound tube and exposes the first section of the sound tube.
6. The earphone as claimed in claim 5, wherein when the elastic soft sheath is deformed by the external force, the elastic soft sheath is electrically connected with the first section of the sound tube, and the sleeve portion is electrically insulated from the second section of the sound tube.
7. The earphone as claimed in claim 1, wherein the power source is coupled between the processing unit and the controlling unit.
8. The earphone as claimed in claim 1, wherein the power source is a rechargeable battery.
9. The earphone as claimed in claim 1, wherein the sensing member comprises a touch control key provided on the exterior surface of the casing; the controlling unit comprises a touch control chip electrically connected with the touch control key.
10. The earphone as claimed in claim 1, wherein when the elastic soft sheath is deformed by the external force, the processing unit is electrically connected with the controlling unit, thereby enabling the sensing member to function.
11. The earphone as claimed in claim 1, wherein the first grounding path and the second grounding path are made of conductive wire, sheet metal or electrically conductive coated film.
12. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020] For the detailed description of the technical features of the present invention, two embodiments and the accompanying drawings are given herein below.
[0021] Referring to
[0022] The casing 10 primarily includes a main body 11, a sound tube 12, a first grounding path 13, and a second grounding path 14. The main body 11 is hollow-shaped for accommodating the audio member 20 and the sensing member 30. The sound tube 12 is connected with the main body 11 and communicates with an inside of the main body 11. The sound tube 12 structurally includes an installing portion 121, a large radius portion 123, and a small radius portion 122 connecting the installing portion 121 and the large radius portion 123. The large radius portion 123 and the small radius portion 122 are arranged along the axis of the sound tube 12. The exterior surface of the sound tube 12 can be divided into a first section 124 and a second section 125, wherein the first section 124 is provided on the small radius portion 122 and the second section 125 is provided on the large radius portion 123. The first grounding path 13 and the second grounding path 14 are both extended from the inner wall of the main body 11 to the first section 124 of the sound tube 12, and they are separately provided. The main body 11 and the sound tube 12 are both made of electrically insulating material such as plastics. The first and second grounding paths 13 and 14 in this embodiment are made by conductive wire. Alternatively, they may be made of sheet metal or electrically conductive coated film (i.e. virtual metal).
[0023] The audio member 20 is disposed in the main body 11. The audio member 20 includes a speaker 21 and a processing unit 22. The processing unit 22 is electrically connected with the first grounding path 13, and the processing unit 22 is a signal processor in this embodiment. The speaker 21 is provided therein with elements such as voice coils and a diaphragm (not shown), and the speaker 21 faces toward the sound tube 12. The processing unit 22 can receive an external control signal so as to control the voice coils, thereby making the diaphragm output sound, stop outputting sound, increase or decrease the output sound volume. The processing unit 22 of the audio member 20 is electrically connected with a positive voltage terminal 6 of the power source 5, and the audio member 20 uses the electric power of the power source 5 to drive the speaker 21 and the processing unit 22. Besides, the processing unit 22 further has a ground terminal 23 electrically connected with the first grounding path 13.
[0024] It should be mentioned that the power source 5 also has a ground terminal 7 electrically connected with the first grounding path 13. The power source 5 in this embodiment is a rechargeable battery. Alternatively, the power source 5 may be the supply mains.
[0025] The sensing member 30 includes a touch control key 31 and a controlling unit 32. The touch control key 31 is provided on the exterior surface of the main body 11, and the controlling unit 32 is disposed in the main body 11. In this embodiment, the controlling unit 32 includes a touch control chip 33 electrically connected with the touch control key 31. When the user performs a gesture to the touch control key 31 or touches the touch control key 31, the touch control chip 33 can detect the electric capacity differences on the touch control key 31 and transfer the electric capacity differences to the corresponding control signal and output the control signal to the audio member 20, thereby controlling the audio member 20. The controlling unit 32 of the sensing member 30 is electrically connected with the positive voltage terminal 6 of the power source 5. That means, the power source 5 is coupled between the processing unit 22 and the controlling unit 32. The controlling unit 32 of the sensing member 30 is driven by the power of the power source 5. Besides, the controlling unit 32 has a ground terminal 34 electrically connected with the second grounding path 14.
[0026] Referring to
[0027] It should be mentioned that the outer cover 42 may be another structural design that the outer cover 42 is coated with an electrically conductive material layer (not shown) on the surface of the outer cover 42, so that the outer cover 42 can be electrically connected with the first and second grounding paths 13 and 14.
[0028] When the earphone 1 is not in use, which means the user doesn't wear the earphone 1, the earphone 1 may be in switched-off mode, sleep mode or switched-on mode (but not wore by the user). Owing that the earphone 1 is not wore by the user, the elastic soft sheath 40 is not squeezed by the ear of the user, thereby not deformed. Therefore, the elastic soft sheath 40 is not in contact with the first and second grounding paths 13 and 14. The power source 5 and the sensing member 30 don't form a complete loop, so the sensing member 30 is disabled from functioning, thereby consuming no power. In contrast, when the user wears the earphone 1, the elastic soft sheath 40 is squeezed by the force applied by the ear of the user and thereby deformed, the first and second grounding paths 13 and 14 are electrically connected with each other, the power source 5, the sensing member 30 and the elastic soft sheath 40 form a closed loop, enabling the sensing member 30 to function. The user then can operate the touch control key 31 by the untouched gesture or touching, thereby controlling the audio member 20. Therefore, when the earphone 1 is not in use, the sensing member 30 is disabled from functioning, preventing form the self-discharge problem of the touch control chip 33 of the traditional earphone. That effectively lowers the power consumption when the earphone 1 is not in use, prolonging the available time of the earphone 1.
[0029] The present invention further provides a second embodiment. Referring to
[0030] In conclusion, the abovementioned embodiments according to the present invention is certainly effective in lowering the power consumption resulted from the touch control key. Besides, through using the touch control key, the flexibility of designing the earphone is increased. The above are both the features of the present invention.