WO2016098222A1 - Dispositif de détection de température et unité d'intérieur pour climatiseur - Google Patents

Dispositif de détection de température et unité d'intérieur pour climatiseur Download PDF

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Publication number
WO2016098222A1
WO2016098222A1 PCT/JP2014/083525 JP2014083525W WO2016098222A1 WO 2016098222 A1 WO2016098222 A1 WO 2016098222A1 JP 2014083525 W JP2014083525 W JP 2014083525W WO 2016098222 A1 WO2016098222 A1 WO 2016098222A1
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WO
WIPO (PCT)
Prior art keywords
temperature detection
protrusion
storage space
case
detection device
Prior art date
Application number
PCT/JP2014/083525
Other languages
English (en)
Japanese (ja)
Inventor
卓哉 後藤
石川 正人
雅英 木南
鈴木 章元
久典 池田
信志 河合
洋平 小柳
洋輔 内藤
勝也 石神
Original Assignee
三菱電機株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to PCT/JP2014/083525 priority Critical patent/WO2016098222A1/fr
Priority to JP2016564527A priority patent/JP6272504B2/ja
Priority to CN201520907193.9U priority patent/CN205174713U/zh
Publication of WO2016098222A1 publication Critical patent/WO2016098222A1/fr

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/89Arrangement or mounting of control or safety devices
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J5/00Radiation pyrometry, e.g. infrared or optical thermometry
    • G01J5/02Constructional details
    • G01J5/04Casings

Definitions

  • the present invention relates to a temperature detection device for detecting temperature and an indoor unit for an air conditioner having the temperature detection device.
  • a rotary temperature detection device that regulates a temperature detection range
  • a temperature detection device for example, a convex protrusion provided on a rotating component is locked to a locking portion such as a concavo-convex shape or a rib shape provided on a component that holds the rotating component.
  • the rotary temperature detection device regulates the range of temperature detection by regulating the rotation of the rotating component.
  • Patent Document 1 discloses a human sensor including a sensor case that is rotatably held by a guide ring. In Patent Document 1, when the sensor case rotates, guide protrusions provided on the sensor case are fitted into a circular groove formed in the guide ring and guided.
  • This guide ring has a lower end of a spiral groove connected to a part of a circular groove.
  • a sensor case rotates avoiding the connection part of a circular groove
  • the drive motor is controlled so as to stop before reaching the connection portion between the circular groove and the spiral groove, and then the counterclockwise in the reverse direction.
  • the drive motor is controlled to rotate around.
  • the sensor case rotates counterclockwise, the drive motor is controlled to stop before reaching the connection portion, and then the drive motor is controlled to rotate clockwise.
  • the sensor case repeats clockwise rotation and counterclockwise rotation while avoiding a connection portion between the circular groove and the spiral groove.
  • the sensor case rotates and stops only by controlling the rotational speed of the drive motor. For this reason, when the sensor case is rotating, if the external force is applied to rotate the sensor case, the stop position deviates from the preset stop position. On the other hand, even when the sensor case is rotating and stopped unintentionally, the stop position deviates from a preset stop position. For this reason, it is necessary to perform correction of the stop position of the sensor case, that is, correction of the range in which the human sensor detects the temperature each time the sensor case rotates.
  • a temperature detection device capable of widening the temperature detection range and accurately correcting the temperature detection range and the temperature detection device are provided.
  • An indoor unit for an air conditioner is provided.
  • the temperature detection device has a sensor for detecting temperature, a cylindrical rotating case in which the sensor is housed, and the rotating case has a protrusion protruding toward the outside of the rotating case, A cylindrical storage case in which a first storage space that rotatably stores the rotation case, and a second storage space that is outside the first storage space and is continuous with the first storage space; A stopper which is rotatably stored in the second storage space and protrudes toward the first storage space, and the stopper is rotated by being pushed by the protrusion when the rotation case rotates and the protrusion hits, The rotation of the rotating case is stopped by stopping the rotation in contact with the inner wall of the fixed case.
  • the stopper is rotated by the rotation of the rotating case and is pushed by the protrusion, and is rotated by being stopped by contacting the inner wall of the fixed case. Stop rotating. For this reason, the temperature detection device can expand the range in which the temperature is detected, and can accurately correct the range in which the temperature is detected.
  • the stopper has a shaft portion, an arm portion, and a protrusion receiving portion
  • the second storage space has a shaft storage space and an arm storage space
  • the arm storage space is It can also be configured to have a width equal to or greater than the sum of the width of the protrusion and the width of the protrusion receiving portion.
  • the temperature detection device can also rotate a range that cannot be physically rotated. For this reason, the temperature detection device can rotate at least 360 °.
  • an indoor unit for an air conditioner equipped with this temperature detection device can detect the temperature not only in front of the indoor unit but also in the entire room, such as the installed wall surface, side surface, and lower side. And air-conditioning control based on the detection result enables more comfortable and energy-saving air conditioning.
  • the temperature detection device can be configured such that, for example, the surface on which the protrusion of the stopper hits is a flat surface, and the surface on which the protrusion hits the stopper is flat. In this case, since the contact between the protrusion and the stopper is performed on a flat surface, it is possible to accurately grasp and correct the position of the rotation range of the temperature detection device.
  • FIG. 1 is an exploded perspective view showing an indoor unit 2 for an air conditioner according to Embodiment 1 of the present invention.
  • the indoor unit 2 for an air conditioner will be described based on FIG.
  • an indoor unit 2 for an air conditioner includes a rear housing 3, a housing 4, a heat exchanger 5, a blower fan 6, an electrical unit 7, a blowout unit 8, and a front surface.
  • the design panel 10 is included.
  • one surface of the rear housing 3 is attached to an indoor wall, and the housing 4 is attached to the other surface by screws or the like.
  • the housing 4 is formed with an opening (not shown) into which the temperature detection device 1 is inserted.
  • the heat exchanger 5, the blower fan 6, and the electrical unit 7 are provided in a space between the back housing 3 and the housing 4 and attached to the back housing 3.
  • the temperature detection device 1 is provided, for example, on the side of the electrical unit 7, and the temperature detection device 1 protrudes from the opening in the housing 4, and thereby the air conditioner indoor unit 2. Projects downward.
  • the blowout unit 8 is attached to the lower part of the back housing
  • a suction port 9 a is formed on the upper surface of the air conditioner indoor unit 2.
  • the front design panel 10 is attached to the housing
  • FIG. 2 is a cross-sectional view showing the air conditioner indoor unit 2 according to Embodiment 1 of the present invention.
  • the air passage wall 3 a in the rear housing 3 serves to send the wind generated by the rotation of the blower fan 6 to the blowout unit 8.
  • the blowout unit 8 has a wind direction adjusting plate 8a, and an air outlet 8b is formed above the wind direction adjusting plate 8a.
  • the air conditioner indoor unit 2 is connected to an air conditioner outdoor unit (not shown) by a connecting pipe 11 provided behind the air conditioner indoor unit 2.
  • the blower fan 6 sucks room air from the suction port 9a, and the sucked room air is heat-exchanged with the refrigerant by the heat exchanger 5, and becomes cold air or warm air.
  • the blower fan 6 blows cool air or warm air to the blowout unit 8.
  • the cool air or the warm air blown from the blower fan 6 smoothly flows to the blowout unit 8 side by the air passage wall 3a in the rear housing 3.
  • the cold air or the warm air is blown out into the room from the air outlet 8 b in the air outlet unit 8.
  • the wind direction adjusting plate 8a swings in the vertical direction to adjust the wind direction in the vertical direction when cool air or warm air blown from the blower fan 6 is blown into the room.
  • FIG. 3 is an exploded perspective view showing the temperature detection device 1 according to Embodiment 1 of the present invention.
  • the temperature detection device 1 includes a fixed case 20, a stopper 30, a rotation case 40, and a sensor 50. Further, the temperature detection device 1 includes a gear 60, a cover 70, and a motor 80.
  • the fixed case 20 has a cylindrical tube portion 25, and a first storage space 21, a second storage space 22, and a third storage space 23 are formed therein.
  • the first storage space 21 rotatably holds the rotating case 40, and the second storage space 22 is located outside the first storage space 21 and is continuous with the first storage space 21.
  • the stopper 30 is formed.
  • the third storage space 23 is formed continuously outward from the first storage space 21 and stores the gear 60.
  • the stopper 30 has a cylindrical shaft portion 31 and a distal end portion 32 that is connected to the distal end of the shaft portion 31 and protrudes outward.
  • the stopper 30 is rotatably stored in the second storage space 22 of the fixed case 20, and the tip end portion 32 protrudes toward the first storage space 21.
  • the rotating case 40 has a cylindrical shape, and the sensor 50 is accommodated therein.
  • the rotating case 40 has a head portion 41 and a body portion 42, and the head portion 41 has a gear shape so as to mesh with the gear 60.
  • An annular flange 43 is formed between the head 41 and the body 42.
  • the body part 42 has a diameter smaller than that of the head part 41, and a protrusion 46 (see FIG. 8) and a sensor receiving part 45 for fixing the sensor 50 to the rotating case 40 are provided on the upper part of the body part 42.
  • a slit 44 is provided below the portion 42.
  • the rotating case 40 is stored in the first storage space 21 of the fixed case 20 and is rotatably held by the fixed case 20. Note that the distal end portion of the body portion 42 in the rotating case 40 is exposed from the tube portion 25 in the fixed case 20.
  • the sensor 50 detects temperature and is housed inside the rotating case 40. And the detection part 51 in the sensor 50 is installed in the position corresponding to the slit 44 of the trunk
  • FIG. The sensor 50 is provided with a convex portion 52, and the sensor 50 is fixed to the rotating case 40 by the convex portion 52 being locked to the sensor receiving portion 45 in the rotating case 40.
  • the detection unit 51 detects the temperature in the room through the slit 44.
  • the gear 60 has a gear shape and transmits the driving force of the motor 80 to the rotating case 40.
  • the gear 60 is housed in the third housing space 23 of the fixed case 20, and the gear of the gear 60 and the head 41 of the rotating case 40 mesh with each other to transmit the driving force of the motor 80 to the rotating case 40.
  • the cover 70 is attached to the fixed case 20 in a state where the stopper 30, the rotating case 40, the sensor 50 and the gear 60 are housed in the fixed case 20, and covers the stopper 30, the rotating case 40, the sensor 50 and the gear 60. Is.
  • the motor 80 generates a driving force for rotating the rotary case 40 and has a cylindrical shape.
  • the motor 80 has a rotating shaft 82 at the tip, and the rotating shaft 82 is connected to the gear 60.
  • the motor 80 is attached to the cover 70 with a screw 81.
  • FIG. 4 is an assembled perspective view showing the temperature detection device 1 according to the first embodiment of the present invention
  • FIG. 5 is a front view showing the temperature detection device 1 according to the first embodiment of the present invention.
  • the cover 70 is attached to the fixed case 20 in which the stopper 30, the rotation case 40, the sensor 50, and the gear 60 are accommodated, and the motor 80 is attached, thereby detecting the temperature as shown in FIGS. 4 and 5.
  • a device 1 is configured.
  • FIG. 6 is a cross-sectional view showing the temperature detection apparatus 1 according to Embodiment 1 of the present invention, and is a cross-sectional view taken along the line AA in FIG.
  • FIG. 7 is a cross-sectional view showing temperature detector 1 according to Embodiment 1 of the present invention, and is a cross-sectional view taken along the line BB of FIG.
  • the fixed case 20 has a tube portion 25 in which the inside becomes the first storage space 21, and the tube portion 25 includes the head 41 of the rotating case 40 inside.
  • the flange portion 43 of the rotating case 40 is placed on the second pipe portion 27, and thereby the rotating case 40 is held by the fixed case 20.
  • the distal end portion 32 of the stopper 30 is located below the flange portion 43 of the rotating case 40.
  • FIG. 8 is a cross-sectional view showing temperature detector 1 according to Embodiment 1 of the present invention, and is a cross-sectional view taken along the line CC of FIG.
  • the rotating case 40 in which the sensor 50 is housed has a protrusion 46 protruding outward, and the tip of the protrusion 46 extends to the middle of the inner wall of the fixed case 20.
  • the stopper 30 has the shaft portion 31 and the tip portion 32, and the tip portion 32 further has the arm portion 33 and the projection receiving portion 34.
  • the arm portion 33 is connected to the shaft portion 31, and the protrusion receiving portion 34 is connected to the arm portion 33.
  • the protrusion receiving portion 34 is pushed by the protrusion 46 and rotates around the shaft portion 31.
  • the angle which the arm part 33 and the protrusion receiving part 34 make in an axial view is an obtuse angle.
  • the angle formed by the arm portion 33 and the projection receiving portion 34 may be an acute angle or 0 degree.
  • the second storage space 22 in the fixed case 20 has a shaft storage space 22a and an arm storage space 22b.
  • the shaft storage space 22a is configured to rotatably store the shaft portion 31 of the stopper 30.
  • the arm storage space 22b is formed continuously from the shaft storage space 22a, and stores the arm portion 33 and the protrusion receiving portion 34 of the stopper 30. Note that the tip end portion of the projection receiving portion 34 protrudes from the arm storage space 22 b to the first storage space 21. As described above, since the protrusion 46 extends to the middle of the inner wall of the fixed case 20, the protrusion receiving portion 34 contacts the protrusion 46 when the rotating case 40 rotates.
  • the arm storage space 22 b has a width equal to or greater than the sum of the width of the protrusion 46 and the width of the protrusion receiving portion 34, and is widened toward the first storage space 21. That is, the distance from one inner wall 24a of the fixed case 20 to the other inner wall 24b in the arm housing space 22b is equal to or greater than the value obtained by adding the width of the protrusion 46 and the width of the protrusion receiving portion 34. As a result, the protrusion receiving portion 34 in the stopper 30 rotates in the arm storage space 22b by an amount equal to or greater than the sum of the width of the protrusion 46 and the width of the protrusion receiving portion 34.
  • the range in which the rotating case 40 rotates is adjusted by the angle formed by one inner wall 24a of the fixed case 20 and the other inner wall 24b in the arm storage space 22b in the axial direction view. Thereby, the range which the temperature detection apparatus 1 detects temperature is controlled.
  • the inner wall of the fixed case 20 in the arm storage space 22b is formed along the shapes of the arm portion 33 and the protrusion receiving portion 34. That is, one inner wall 24 a of the fixed case 20 is formed along one side surface 33 a of the arm portion 33 and one side surface 34 a of the projection receiving portion 34. The other inner wall 24 b of the fixed case 20 is formed along the other side surface 33 b of the arm portion 33 and the other side surface 34 b of the projection receiving portion 34.
  • one side surface 34 a and the other side surface 34 b of the protrusion receiving portion 34 are flat surfaces, and one side surface 46 a and the other side surface 46 b of the protrusion 46 are also flat surfaces. That is, the surface of the stopper 30 that contacts the protrusion 46 is a flat surface, and the surface of the protrusion 46 in the rotating case 40 that contacts the stopper 30 is flat.
  • FIG. 10 and FIG. 11 are cross-sectional views illustrating the operation of the temperature detection device 1 according to the first embodiment of the present invention, illustrating the operation when the rotating case 40 rotates clockwise.
  • FIG. 9 As shown in FIG. 9, as the rotating case 40 rotates clockwise, one side surface 46 a of the protrusion 46 in the rotating case 40 contacts the other side surface 34 b of the protrusion receiving portion 34 in the stopper 30.
  • the rotating case 40 continues to rotate clockwise, as shown in FIG. 10, the one side surface 46 a of the protrusion 46 pushes the protrusion receiving portion 34.
  • FIGS. 12, 13, and 14 are cross-sectional views illustrating the operation of the temperature detection device 1 according to the first embodiment of the present invention, illustrating the operation when the rotating case 40 rotates counterclockwise.
  • FIG. 12 when the rotating case 40 rotates counterclockwise, the other side surface 46 b of the protrusion 46 in the rotating case 40 comes into contact with one side surface 34 a of the protrusion receiving portion 34 in the stopper 30.
  • the other side surface 46b of the protrusion 46 pushes the protrusion receiving portion 34 as shown in FIG.
  • the stopper 30 rotates when the rotating case 40 rotates and hits the protrusion 46, is pushed by the protrusion 46, rotates, and stops rotating while contacting the inner wall of the fixed case 20. Stop rotating.
  • the rotation angle of the rotation case 40 can be increased by the amount that the stopper 30 rotates. For this reason, the range which the temperature detection apparatus 1 detects temperature can be expanded.
  • the rotating case 40 stops when the stopper 30 is locked to the inner wall of the fixed case 20 regardless of the control of the rotation speed of the motor 80. Then, the protrusion 46 in the rotating case 40 physically contacts the stopper 30.
  • the stop position of the rotating case 40 can be accurately grasped with reference to the state in which the protrusion 46 in the rotating case 40 presses the stopper 30 and the stopper 30 is locked to the inner wall of the fixed case 20. Accordingly, it is possible to accurately correct the range in which the temperature detection device 1 detects the temperature.
  • the arm storage space 22b in the fixed case 20 has a circumferential width equal to or greater than the sum of the circumferential width of the protrusion 46 in the rotating case 40 and the circumferential width of the protrusion receiving portion 34 in the stopper 30. ing. For this reason, the stopper 30 rotates by the width, and accordingly, the rotating case 40 also rotates by the width. When the stopper 30 is fixed without rotating, the rotating case 40 cannot rotate by an amount corresponding to the sum of the width of the protrusion 46 and the width of the stopper 30. Accordingly, the temperature detection range is narrowed by the sum of the width of the protrusion 46 and the width of the stopper 30.
  • the stopper 30 rotates by an amount equal to or larger than the value obtained by adding the width of the protrusion 46 and the width of the protrusion receiving portion 34. For this reason, the temperature detection range can be expanded by an amount equal to or greater than the sum of the width of the protrusion 46 and the width of the protrusion receiving portion 34.
  • the rotating case 40 in the temperature detection device 1 can rotate 360 degrees or more, but is not limited to this, and the inner wall 24a of the fixed case 20 and the other inner wall 24b of the arm storage space 22b are not limited to this.
  • the rotation angle of the rotating case 40 can be arbitrarily changed by appropriately changing the angle formed, the length of the arm portion 33 and the length of the projection receiving portion 34 in the stopper 30, or the angle formed by the arm portion 33 and the projection receiving portion 34. Can be set to Moreover, you may make it the rotation case 40 rotate only 360 degree
  • the indoor unit 2 for air conditioners which has the temperature detection apparatus 1 is not only the front, but the wall side of the installed indoor side The temperature can be detected in the whole area of the room such as rear, side, and lower. And the air conditioning which contributes to comfort and energy saving is realizable by performing control based on the result of having detected temperature.
  • the angle formed by the arm portion 33 and the projection receiving portion 34 in the stopper 30 is an obtuse angle.
  • the width which the arm part 33 and the protrusion receiving part 34 occupy can be narrowed compared with the case where the angle which the arm part 33 and the protrusion receiving part 34 make is an acute angle.
  • the arm storage space 22b for storing the arm portion 33 and the projection receiving portion 34 can be saved.
  • the rotation radius of the stopper 30 is larger than when the angle formed by the arm portion 33 and the projection receiving portion 34 is 0 degrees. Can be shortened. Accordingly, the arm storage space 22b for storing the arm portion 33 and the projection receiving portion 34 can be saved.
  • the surface of the stopper 30 that contacts the protrusion 46 is a flat surface, and the surface of the protrusion 46 that contacts the stopper 30 is flat.
  • the projection 46 has a hemispherical shape with the corners dropped to prevent troubles in the operation in the vertical direction, even if the projection 46 hits the projection receiving portion 34 of the stopper 30, The contact area is small. For this reason, it is difficult for the protrusion receiving portion 34 to stop the protrusion 46.
  • the surface of the stopper 30 that contacts the protrusion 46 is a flat surface, and the surface of the protrusion 46 that contacts the stopper 30 is a flat surface.
  • the contact area with the part 34 is large. For this reason, the protrusion receiving part 34 can stop the protrusion 46 appropriately. Accordingly, it is possible to accurately correct the range in which the temperature detection device 1 detects the temperature.
  • the range correction in which the temperature detection device 1 detects the temperature may be performed when the initial position at the start of rotation is detected, when the position is periodically corrected, etc. It is not necessary to carry out the case 40 every time the direction of rotation changes.
  • the driving force of the motor 80 is transmitted to the rotating case 40 via the gear 60 connected to the motor 80.
  • the motor 80 is directly attached to the rotating case 40, and the motor The driving force of 80 may be directly transmitted to the rotating case 40. Further, the driving force of the motor 80 may be transmitted to the rotating case 40 using another component other than the gear 60.
  • 1 temperature detector 2 indoor unit for air conditioner, 3 rear housing, 3a air passage wall, 4 housing, 5 heat exchanger, 6 blower fan, 7 electrical unit, 8 blowout unit, 8a wind direction adjusting plate, 8b outlet, 9a inlet, 10 front design panel, 11 connection tube, 20 fixed case, 21 first storage space, 22 second storage space, 22a shaft storage space, 22b arm storage space, 23 third storage Space, 24a, one inner wall, 24b, the other inner wall, 25 pipe part, 26 first pipe part, 27 second pipe part, 28 third pipe part, 30 stopper, 31 shaft part, 32 tip part, 33 arm Part, 33a one side, 33b other side, 34 projection receiving part, 34a one side, 34b other side, 40 rotating case, 41 head, 42 body, 43 hula Part, 44 slit, 45 sensor receiving part, 46 protrusion, 46a one side, 46b other side, 50 sensor, 51 detection part, 52 convex part, 60 gear, 70 cover, 80 motor, 81 screw, 82 rotation shaft .

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Spectroscopy & Molecular Physics (AREA)
  • Air Conditioning Control Device (AREA)

Abstract

La présente invention concerne un dispositif de détection de température 1 qui est pourvu d'un capteur 50, un boîtier rotatif 40 comportant une protubérance saillant vers l'extérieur 46, un boîtier fixe 20, dans lequel un premier espace de logement 21 et un deuxième espace de logement 22 sont formés, et un bouchon 30. En conséquence de la rotation du boîtier rotatif 40 et de la venue en contact de la protubérance 46 avec le bouchon 30, le bouchon 30 est poussé par la protubéance 46 et tourne. L'arrêt de la rotation du bouchon 30 lorsque le bouchon vient en contact avec la paroi interne du boîtier fixe 20 conduit à l'arrêt de la rotation du boîtier rotatif 40. Par conséquent, le dispositif de détection de température 1 permet d'étendre une plage de détection de température et de corriger avec précision une plage de détection de température. En outre, si le bouchon 30 comporte une partie de réception de protubérance 34, le deuxième espace de logement 22 comporte un espace de logement de bras 22b, et l'espace de logement de bras 22b a une largeur égale ou supérieure à la somme de la largeur de la protubérance 46 et la largeur de l'unité de réception de protubérance 34, le dispositif de détection de température 1 est capable de rotation dans une plage dans laquelle une rotation physique n'est pas possible. En conséquence, le dispositif de détection de température 1 est capable de tourner d'au moins 360°.
PCT/JP2014/083525 2014-12-18 2014-12-18 Dispositif de détection de température et unité d'intérieur pour climatiseur WO2016098222A1 (fr)

Priority Applications (3)

Application Number Priority Date Filing Date Title
PCT/JP2014/083525 WO2016098222A1 (fr) 2014-12-18 2014-12-18 Dispositif de détection de température et unité d'intérieur pour climatiseur
JP2016564527A JP6272504B2 (ja) 2014-12-18 2014-12-18 温度検知装置及び空気調和機用室内機
CN201520907193.9U CN205174713U (zh) 2014-12-18 2015-11-13 温度检测装置以及空调机用室内机

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Application Number Priority Date Filing Date Title
PCT/JP2014/083525 WO2016098222A1 (fr) 2014-12-18 2014-12-18 Dispositif de détection de température et unité d'intérieur pour climatiseur

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WO2016098222A1 true WO2016098222A1 (fr) 2016-06-23

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JP2019070527A (ja) * 2019-02-18 2019-05-09 株式会社富士通ゼネラル 空気調和機

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CN106289565A (zh) * 2016-07-29 2017-01-04 芜湖美智空调设备有限公司 感温部件、空调器室内机和空调器室外机

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JPS6211586U (fr) * 1985-07-05 1987-01-24
JPH04240089A (ja) * 1991-01-16 1992-08-27 Fanuc Ltd 産業用ロボットの旋回胴のストッパ装置
JPH08201180A (ja) * 1995-01-30 1996-08-09 Yamatake Honeywell Co Ltd 検出器の構造
JP2005061661A (ja) * 2003-08-08 2005-03-10 Daikin Ind Ltd 空気調和装置の輻射温度検知装置及び空気調和装置
US20110319009A1 (en) * 2008-12-23 2011-12-29 Lg Electronics Inc. Ceiling mounted air conditioner
JP2012042183A (ja) * 2010-08-23 2012-03-01 Toshiba Corp 空気調和機の室内機

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JPS6211586U (fr) * 1985-07-05 1987-01-24
JPH04240089A (ja) * 1991-01-16 1992-08-27 Fanuc Ltd 産業用ロボットの旋回胴のストッパ装置
JPH08201180A (ja) * 1995-01-30 1996-08-09 Yamatake Honeywell Co Ltd 検出器の構造
JP2005061661A (ja) * 2003-08-08 2005-03-10 Daikin Ind Ltd 空気調和装置の輻射温度検知装置及び空気調和装置
US20110319009A1 (en) * 2008-12-23 2011-12-29 Lg Electronics Inc. Ceiling mounted air conditioner
JP2012042183A (ja) * 2010-08-23 2012-03-01 Toshiba Corp 空気調和機の室内機

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2019070527A (ja) * 2019-02-18 2019-05-09 株式会社富士通ゼネラル 空気調和機

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JPWO2016098222A1 (ja) 2017-05-25
JP6272504B2 (ja) 2018-01-31

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