Antistatic structure and air-conditioner
11703252 ยท 2023-07-18
Assignee
Inventors
Cpc classification
F24F11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F1/0007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K9/0079
ELECTRICITY
International classification
Abstract
An antistatic structure includes a casing, an element disposed in the casing, and a first conductive member disposed on an inner face of the casing and configured to send static electricity to a ground. The first conductive member is at least partially disposed around a region opposite the element in the casing.
Claims
1. An air conditioner having an antistatic structure, the antistatic structure comprising: a casing; a sensor disposed in the casing and configured to detect a temperature, a humidity, or an odor of an atmosphere outside the casing; a first conductive member disposed on an inner face of the casing and configured to send static electricity to a ground, and a second conductive member disposed in the casing and electrically connected to the ground, wherein the first conductive member is electrically connected to the second conductive member in a contactless manner, the casing having an opening located in a region opposite the sensor, the first conductive member being at least partially disposed around the region opposite the sensor in the casing, the sensor being located more inside of the casing than the first conductive member, relative to the opening of the casing, wherein a spatial distance between the sensor and the opening is less than 15 mm.
2. The air conditioner having an antistatic structure according to claim 1, wherein the first conductive member is disposed around the opening in the casing.
3. The air conditioner having an antistatic structure according to claim 1, wherein a shortest distance between the first conductive member and the sensor is longer than a shortest distance between the first conductive member and the second conductive member.
4. The air conditioner having an antistatic structure according to claim 2, wherein the first conductive member entirely surrounds the opening in the casing.
5. An air conditioner having an antistatic structure, the antistatic structure comprising: a casing; a sensor disposed in the casing and configured to detect a temperature, a humidity, or an odor of an atmosphere outside the casing; and a first conductive member disposed on an inner face of the casing and configured to send static electricity to a ground, the casing having an opening located in a region opposite the sensor, the first conductive member being at least partially disposed around the region opposite the sensor in the casing, the sensor being located more inside of the casing than the first conductive member, relative to the opening of the casing, and a second conductive member disposed in the casing and electrically connected to the ground, wherein the first conductive member is electrically connected to the second conductive member in a contactless manner, the first conductive member includes an extension portion extending along the inner face of the casing, and the extension portion of the first conductive member is nearest to the second conductive member.
6. An air conditioner having an antistatic structure, the antistatic structure comprising: a casing having a side portion; at least one of a temperature sensor, a humidity sensor, or an odor sensor disposed in the casing; a first conductive member disposed on an inner face of the side portion of the casing and configured to send static electricity to a ground, and a second conductive member disposed in the casing and electrically connected to the ground, wherein the first conductive member is electrically connected to the second conductive member in a contactless manner, the side portion of the casing having an opening facing the sensor, and a peripheral region outside of the opening and surrounding the opening, the opening and the peripheral region being in one plane, the first conductive member being at least partially disposed in the peripheral region of the side portion, the sensor being located more inside of the casing than the first conductive member, relative to the opening, wherein a spatial distance between the sensor and the opening is less than 15 mm.
7. The air conditioner according to claim 6, wherein the first conductive member is invisible from outside of the casing.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(10) Embodiments will be described below. In the drawings, identical reference signs indicate identical or corresponding portions. The dimensions, such as a length, a width, a thickness, and a depth, illustrated in the drawings are appropriately changed from actual scales for making the drawings clear and simple; therefore, the actual relative dimensions are not illustrated in the drawings.
First Embodiment
(11)
(12) As illustrated in FIG. I, the indoor unit 1 includes a front panel 10, a front grille 20 to which the front pane) 10 is mounted, and a bottom frame (not illustrated) to which the front grille 20 is mounted. Mounted to the bottom frame arc an indoor heat exchanger, a drain pan. a cross-flow fan, an electric component unit 40 (see
(13) The front grille 20 is an example of a casing. 1110 front grille 20 has in its front lower aide a blow-out port 20a to which a horizontal flap 30 is mounted in a swingable manner.
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(17) In the right-side portion 21 of the front grille 20, the opening 22 is located in a region opposite the temperature and humidity sensor 50. The temperature and humidity sensor 50 (the element) detects a temperature and a humidity of air flowing into tire front grille 20 through the opening 22.
(18)
(19) In the first embodiment, the conductive tape 60 is an example of the first conductive member. However, the first conductive member is not limited to a conductive tape. For example, the first conductive member may be a metal film such as a plated film or may be a conductive coating.
(20) The antistatic structure is constituted of the front grille 20, the temperature and humidity sensor 50, the conductive tape 60, and the metal cover 43.
(21)
(22) As illustrated in
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(24) A spatial distance L between the metal cover 43 and the distal end of the extension portion 62 of the conductive tape 60. as illustrated in
(25) In relation to this, a spatial distance between the temperature and humidity sensor 50 (the element,) and the opening 22 in the right-side portion 21 of the front grille 20 is 6 mm.
(26) An electronic apparatus such as an air conditioner needs to satisfy conditions of a 15-kV electrostatic test compliant with IEC 6100-4-2. or JIS 6100-4-2. If the conductive tape 60 is not used in the indoor unit 1, the temperature and humidity sensor 50 (the element) should be spaced apart from the opening 22 by at least 15 mm condition teat an atmospheric insulation distance (i.e., a spatial distance) is 1 mm at 1 kV. However, when the temperature and humidity sensor 50 (the element) is too fin from the opening 22, the temperature and humidity sensor 50 fails to accurately detect a temperature and a humidity.
(27) In the indoor unit 1, the antistatic structure including the conductive tape 60 allows the temperature and humidity sensor 50 (the element) to accurately detect a temperature and a humidity on condition that the spatial distance between the opening 22 and the temperature and humidity sensor 50 (the element) is 6 mm. The indoor unit 1 also takes a measure static electricity for the temperature and humidity sensor 50 (the element). The temperature and humidity sensor 50 (tile element) is brought closer to the opening 22 so that a distance therebetween is shot er than 15 mm, which is an insulation distance (a spatial distance) at a voltage of 15 kV. The temperature and humidity sensor 50 (the element) is thus disposed at a position where the temperature and humidity sensor 50 (the element) has favorable temperature and humidity followability.
(28) In the antistatic structure according to the first embodiment, the conductive tape 60 (the first conductive member) disposed on the inner face of the front grille 20 (the casing) is partially disposed around the region opposite the temperature and humidity sensor 50 (the element) in the front grille 20, so that static electricity applied to the front grille 20 is dissipated to the ground E via the conductive tape 60 and the metal cover 43 (the second conductive member). The static electricity in the front grille 20 is thus dissipated to the ground E without flowing into the temperature and humidity sensor 50.
(29) The indoor unit I having the antistatic structure obtained a good result of the electrostatic test compliant with IEC 6100-4-2 or JIS 6100-4-2.
(30) In the antistatic structure, the conductive tape 60 as a static electricity countermeasure is disposed on the inner face of the front grille 20 and is not viewed from the outside. Therefore, the conductive tape 60 does not impair the external design of the indoor unit 1.
(31) In addition, since the conductive tape 60 is disposed around the opening 22 in the region opposite the temperature and humidity sensor 50 in the front grille 20, static electricity is dissipated to the ground E via the conductive tape 60 and the metal cover 43 even when static electricity is prone to be applied to the front grille 20 due to secular accumulation of dust, in the opening 22. The antistatic structure thus maintains the measure against static electricity for the temperature and humidity sensor 50 located near the opening 22, for a longer period of time.
(32) In addition, since the base portion 61 of the conductive tape 60 surrounds the opening 22 in the front grille 20, the antistatic structure thus produces an improved advantageous effect of the measure against static electricity for the temperature and humidity sensor 50.
(33) In the first embodiment, the base portion 61 of the conductive tape 60 entirely surrounds the opening 22 in the front grille 20. The antistatic structure may alternatively include a first electric member such as a conductive tape partially surrounding the opening 22 in the front grille 20.
(34) In addition, the conductive tape 60 is electrically connected to the metal cover 43 in a contactless manner. This eliminates a wire or the like to electrically connect the conductive tape 60 to the metal cover 43 electrically connected to the ground E, and eventually facilitates removal or detachment of the front grille 20. The antistatic structure thus improves in assemblability and maintainability. The conductive tape 60 is electrically connected to the metal cover 43 via the atmosphere in a contactless manner.
(35) In the conductive tape 60, the extension portion 62 is the nearest to the metal cover 43 connected to the metal cover 43, so that static electricity applied to the front grille 20 is dissipated to the ground E via the extension portion 62 of the conductive tape 60 and the metal cover 43. Therefore, the antistatic structure facilitates setting of a route for static electricity flowing from the conductive tape 60 to the ground E, in accordance with, for example, arrangement of the respective components in the front grille 20.
(36) The shortest distance between the conductive tape 60 and the temperature and humidity sensor 50 is longer than the shortest distance between the conductive tape 60 and the metal cover 43 connected to the ground E. The antistatic structure therefore reliably dissipates static electricity to the ground E by discharging the static electricity at the position where the conductive tape 60 is nearest to the metal cover 43, without sending the static electricity to the temperature and humidity sensor 50.
(37) The air conditioner according to the first embodiment has the antistatic structure described above. The air conditioner according to the first embodiment thus takes a measure against static electricity for the temperature and humidity sensor 50 in the front grille 20, by dissipating static electricity in the front grille 20 to the ground E with a simple configuration.
(38) In the first embodiment, the antistatic structure is constituted of the front grille 20, tire temperature and humidity sensor 50, the conductive tape 60 (the first conductive member), and the metal cover 43 (the second conductive member). However, the antistatic structure does not necessarily include the second conductive member. In such an antistatic structure, for example, the first conductive member may define a route for dissipating static electricity to the ground E.
Second Embodiment
(39) Next, a description will be given of an air conditioner having an antistatic structure according to a second embodiment of the present disclosure.
(40) In the antistatic structure according to the first embodiment, the conductive tape 60 (the first conductive member) is electrically connected to the ground E in a contactless manner via the metal cover 43. In the air conditioner according to the second embodiment, a first conductive member disposed on an inner face of a casing and a second conductive member disposed in the casing and connected to a ground B arc electrically connected to each other in a contact manner. Static electricity applied to the casing is thus dissipated to the ground E via die first conductive member and the second conductive member.
(41) The first conductive member and the second conductive member may be electrically connected to each other with a connection member such as a wire.
(42) The antistatic structure according to the second embodiment is similar in advantageous effects to the antistatic structure according to the first embodiment.
Third Embodiment
(43) Next, a description will be given of an air cleaner having, an antistatic structure according to a third embodiment of the present disclosure.
(44) The air cleaner according to the third embodiment includes a casing and a humidity sensor disposed in the casing. The casing has an opening located in a region opposite the humidity sensor. A first conductive member is disposed on an inner face of the easing to dissipate static electricity to a ground E.
(45) The antistatic structure according to the third embodiment is similar in advantageous effects to the antistatic structure according to the first embodiment.
(46) The first to third embodiments concern an air conditioner having an antistatic structure and an air cleaner having an antistatic structure. An antistatic structure according to this invention is also applicable to another apparatus such as a remote controller in which a temperature sensor or the like is incorporated.
(47) In the first to third embodiments, the casing has the opening located in the region opposite the temperature and humidity sensor 50 or the humidity sensor as the element. The casing does not necessarily have the opening as long as the first conductive member disposed on tire inner face of the casing is at least partially disposed around the region opposite the element in the casing.
(48) In the first to third embodiments, the antistatic structure includes the temperature and humidity sensor 50 or the humidity sensor as the element disposed in the casing. However, the element is not limited thereto. This invention is applicable 10 an antistatic structure including an odor sensor or an element different from a sensor. Examples of the element different from the sensor may include, but not limited to, constituent components of a WiFi (registered trademark) module.
(49) The foregoing description concerns specific embodiments of the present disclosure; however, the present disclosure is not limited to the first to third embodiments, and various modifications and variations may be made within the scope of the present disclosure.
REFERENCE SIGNS LIST
(50) 1 indoor unit
(51) 10 Front panel
(52) 20 Front grille (casing)
(53) 20a Blow-out port
(54) 21 Right-side portion
(55) 22 Opening
(56) 22a Slit
(57) 24 Left-side portion
(58) 30 Horizontal flap
(59) 40 Electric component unit
(60) 41 Base member
(61) 42 Control board
(62) 43 Metal cover (second conductive member)
(63) 50 Temperature and humidity sensor (element)
(64) 60 Conductive tape (first conductive member)
(65) 61 Base portion
(66) 62 Extension portion
(67) E Ground