WO2014071710A1 - 一种微孔雾化方法及实施该微孔雾化方法的装置 - Google Patents

一种微孔雾化方法及实施该微孔雾化方法的装置 Download PDF

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Publication number
WO2014071710A1
WO2014071710A1 PCT/CN2013/071710 CN2013071710W WO2014071710A1 WO 2014071710 A1 WO2014071710 A1 WO 2014071710A1 CN 2013071710 W CN2013071710 W CN 2013071710W WO 2014071710 A1 WO2014071710 A1 WO 2014071710A1
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water
chamber
water consumption
atomization
module
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PCT/CN2013/071710
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English (en)
French (fr)
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黄锦辉
彭波
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广州市番禺奥迪威电子有限公司
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Priority claimed from CN 201220585154 external-priority patent/CN202909856U/zh
Priority claimed from CN201210442814.1A external-priority patent/CN102962161B/zh
Application filed by 广州市番禺奥迪威电子有限公司 filed Critical 广州市番禺奥迪威电子有限公司
Publication of WO2014071710A1 publication Critical patent/WO2014071710A1/zh

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B17/00Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups
    • B05B17/04Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods
    • B05B17/06Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods using ultrasonic or other kinds of vibrations
    • B05B17/0607Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods using ultrasonic or other kinds of vibrations generated by electrical means, e.g. piezoelectric transducers
    • B05B17/0638Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods using ultrasonic or other kinds of vibrations generated by electrical means, e.g. piezoelectric transducers spray being produced by discharging the liquid or other fluent material through a plate comprising a plurality of orifices
    • B05B17/0646Vibrating plates, i.e. plates being directly subjected to the vibrations, e.g. having a piezoelectric transducer attached thereto
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B17/00Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups
    • B05B17/04Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods
    • B05B17/06Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods using ultrasonic or other kinds of vibrations
    • B05B17/0607Apparatus for spraying or atomising liquids or other fluent materials, not covered by the preceding groups operating with special methods using ultrasonic or other kinds of vibrations generated by electrical means, e.g. piezoelectric transducers
    • B05B17/0653Details
    • B05B17/0676Feeding means

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  • the present invention relates to the field of liquid atomization, and more particularly to a method for liquid micropore atomization and a device for carrying out the micropore atomization method.
  • the microporous atomizers on the market are mainly the lower effluent structure, wherein the atomizing sheet is installed at the bottom of the atomizer, and some atomizer products of the upper effluent structure are atomized by the cotton core water absorption.
  • the atomizer since the cotton core gradually solidifies after a long period of use, the atomizer cannot work normally, so the cotton core needs to be replaced, which makes the use of the atomizer inconvenient.
  • the cotton core is easy to breed bacteria and then induce disease, it also threatens people's health.
  • the present invention provides a safe and healthy micropore atomization method and an apparatus for realizing such a micropore atomization method.
  • a micropore atomization method comprising the steps of:
  • a micropore atomization device comprises a water supply cavity and a sealed water consumption cavity, and a conduit extending into the water supply cavity is arranged in the water consumption cavity, and a micropore atomization module is further arranged on the water consumption cavity .
  • a bottom cover is formed on the bottom of the water consumption cavity, and the water consumption cavity is disposed on the water supply cavity through the buckle cover, and a sealing ring is disposed between the buckle cover and the top of the water supply cavity.
  • a micro-atomization module is provided with an atomizing sheet, and the atomizing sheet is attached to the outer wall of the water-consuming chamber.
  • the microporous atomization module 1 is provided with an upper pressing piece respectively disposed on the upper side of the atomizing sheet and a lower top piece disposed on the lower side of the atomizing sheet.
  • the buckle cover and the water consumption cavity are connected by a screw connection or a snap connection.
  • a water-storing cavity water inlet is arranged on the outer wall of the water-consuming cavity, and a sliding slot is arranged on the micro-hole atomization module adjacent to the water inlet cavity, and a piston is arranged in the sliding slot.
  • a pull rod having one end extending from the sliding slot is provided in connection with the piston.
  • a driving module is further connected to the micro-hole atomizing module, and the driving module comprises a circuit board connected to the atomizing sheet and an input power source connected to the circuit board, and the micro-hole atomizing module is further provided. There is a switch button connected to the board.
  • the invention has the beneficial effects that the micropore atomization method and the micropore atomization device for implementing the method are installed in the side wall of the water consumption chamber during the operation of liquid atomization because the water consumption chamber is in a sealed state During the process of consuming the liquid in the water-consuming chamber, the micro-hole atomization module generates a negative pressure in the water-consuming chamber. Under the negative pressure, the water supply chamber supplies water to the water-consuming chamber through the conduit to supply micro-atomization.
  • the continuous operation of the module is simple, and the atomization method is simple in operation, and the device for implementing the method is extremely convenient to use, and is not easy to breed bacteria, and does not pose a threat to human health.
  • FIG. 1 is a schematic view showing the overall structure of an embodiment of the present invention.
  • the present invention is a micropore atomization method, which comprises the following steps:
  • a microporous atomization device comprises a water supply chamber 2 and a sealed water consumption chamber 11 , and a conduit 3 extending into the water supply chamber 2 is connected to the water consumption chamber 11 , and the water consumption chamber 11 is further A micropore atomization module 1 is provided.
  • the micro-atomization atomization module 1 is continuously operated without interruption, and the atomization method is simple in operation, and the device for implementing the method is extremely convenient to use, and is not easy to breed bacteria, and does not pose a threat to human health.
  • a bottom of the water-consuming cavity 11 forms a buckle cover, and the water-consuming cavity 11 is disposed on the water supply cavity 2 through a buckle cover, and a seal is formed between the buckle cover and the top of the water supply cavity 2 Circle 4.
  • the micro-atomization module 1 is provided with an atomizing sheet 12, and the atomizing sheet 12 is attached to the outer wall of the water-consuming chamber 11.
  • the microporous atomization module 1 is provided with an upper pressing piece 121 which is respectively disposed on the upper side of the atomizing sheet 12 and a lower top sheet 122 which is disposed on the lower side of the atomizing sheet 12.
  • the buckle cover and the water consumption chamber 11 are connected by a screw connection or a snap connection.
  • a water-storing cavity water inlet 13 is disposed on the outer wall of the water-consuming cavity 11.
  • the micro-hole atomization module 1 is provided with a sliding slot 14 adjacent to the water-consuming cavity inlet 13 and the sliding slot 14
  • a piston 15 is provided inside.
  • a pull rod 151 having one end projecting from the chute 14 is provided in connection with the piston 15.
  • a micro-hole atomization module 1 is further connected with a driving module.
  • the driving module includes a circuit board 16 connected to the atomizing sheet 12 and an input power source 17 connected to the circuit board 16, and the micro-hole atomization
  • a switch button 18 connected to the circuit board 16 is also provided on the module 1.
  • the water supply chamber 2 is first filled with water. After the water injection is completed, the water supply chamber 2 is screwed up, so that the water supply chamber 2 is closely connected with the water consumption chamber 11, and the water consumption chamber is tightly connected.
  • the sealing ring 4 disposed between the lower buckle cover and the water supply chamber 2 serves to seal the connection between the water consumption chamber 11 and the water supply chamber 2.
  • the pull rod 151 is pushed again, so that the piston 15 slides upward to seal the water inlet port 13 of the water consumption chamber, and then the atomizer is turned over 180 degrees as a whole to return to the normal position. Pressing the switch button 18 on the micro-atomization module 1 activates the atomizing sheet 12, and the atomizer can work normally.
  • the upper effluent structure of the upper suction type atomizer is free from the trouble of using the cotton core, and overcomes the drawbacks of the lower effluent structure. And the upper and lower parts of the atomizer are separated, which makes the watering of the atomizer more convenient. In addition, the upper and lower portions of the atomizer may be threaded or otherwise mounted together.
  • the micropore atomization method and the device for implementing the micropore atomization method are free from the limitations of the conventional water discharge method, and the volume thereof can be large or small, and the water can be pumped from the low position to the high position without the pump, and the cotton core can be rid of the cotton core.
  • the hidden danger of water supply Since the microporous atomization module 1 can directly contact with water, the atomization effect is more stable and reliable, and the operation is simple and convenient, and the water mist is dried to the greatest extent.

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Abstract

提供了一种微孔雾化方法以及实施该微孔雾化方法的装置,具体为:采用上出水结构,通过一导管连接供水腔体和耗水腔体,并在耗水腔体外壁上设置微孔雾化模块,在液体雾化过程中,由于耗水腔体处于密封状态,当耗水腔体的液体被消耗时,会造成耗水腔体内产生负压,在负压的作用下,供水腔体通过导管向耗水腔体供水,以供应微孔雾化模块连续不间断的工作。此雾化方法操作简单方便,不易滋生细菌,摆脱了必须使用棉芯的困扰。

Description

一种微孔雾化方法及实施该微孔雾化方法的装置
技术领域
本发明涉及液体雾化领域,特别是涉及一种液体微孔雾化的方法以及实施此微孔雾化方法的装置。
背景技术
目前市场上的微孔雾化器主要都是下出水结构,其中的雾化片安装在雾化器的底部,而一些上出水结构的雾化器产品都是利用棉芯吸水来进行雾化,在此类上出水结构的雾化器中,由于棉芯在长时间使用后,会渐渐固化使得雾化器无法正常工作,所以需要更换棉芯,导致雾化器的使用很不方便。另一方面由于棉芯很容易滋生细菌继而诱发疾病,也会威胁到人们身体的健康。
发明内容
为解决上述问题,本发明提供一种安全健康的微孔雾化方法以及实现此类微孔雾化方法的装置。
本发明解决其技术问题所采用的技术方案是:
一种微孔雾化方法,其特征在于,包括以下步骤:
1) 、通过一导管将供水腔体和密闭的耗水腔体相连,并在耗水腔体外壁上安装微孔雾化模块;
2) 、开启驱动模块使得微孔雾化模块工作,微孔雾化模块工作过程中消耗耗水腔体内的液体;
3) 、耗水过程中在供水腔体内产生负压,在负压作用下供水腔体内的液体通过导管进行耗水腔体。
一种微孔雾化装置,包括一供水腔体及密闭的耗水腔体,与耗水腔体相连设有伸入供水腔体内的导管,耗水腔体上还设有微孔雾化模块。
进一步作为本发明技术方案的改进,耗水腔体的底部形成一扣盖,耗水腔体通过扣盖盖设在供水腔体上,扣盖与供水腔体的顶部间设有密封圈。
进一步作为本发明技术方案的改进,微孔雾化模块内设有一雾化片,雾化片贴覆在耗水腔体外壁上。
进一步作为本发明技术方案的改进,微孔雾化模块1内设有分别卡设在雾化片上侧的上压片和顶设在雾化片下侧的下顶片。
进一步作为本发明技术方案的改进,扣盖与耗水腔体间通过螺纹连接或者卡扣连接。
进一步作为本发明技术方案的改进,耗水腔体的外壁上设有一耗水腔体进水口,微孔雾化模块上紧邻耗水腔体进水口设有一滑槽,滑槽内设有活塞。
进一步作为本发明技术方案的改进,与活塞相连设有一端伸出滑槽的拉杆。
进一步作为本发明技术方案的改进,与微孔雾化模块相连还设有一驱动模块,驱动模块包括与雾化片相连的电路板及与电路板相连的输入电源,微孔雾化模块上还设有与电路板相连的开关按钮。
本发明的有益效果:此微孔雾化方法以及实施该方法的微孔雾化装置在进行液体雾化的工作过程中,由于耗水腔体处于密封状态,在安装于耗水腔体侧壁的微孔雾化模块消耗耗水腔体内的液体的过程中,会造成耗水腔体内产生负压,在负压作用,供水腔体会通过导管向耗水腔体内供水,以供应微孔雾化模块连续不间断的工作,此雾化方法操作简单,实施该方法的装置使用操作均极为方便,且不易滋生细菌,不会对人体健康造成威胁。
附图说明
下面结合附图对本发明作进一步说明:
图1是本发明实施例整体结构示意图。
具体实施方式
参照图1,本发明为一种微孔雾化方法,其特征在于,包括以下步骤:
1) 、通过一导管3将供水腔体2和密闭的耗水腔体11相连,并在耗水腔体11外壁上安装微孔雾化模块1;
2) 、开启驱动模块使得微孔雾化模块1工作,微孔雾化模块1工作过程中消耗耗水腔体11内的液体;
3) 、耗水过程中在供水腔体2内产生负压,在负压作用下供水腔体2内的液体通过导管3进行耗水腔体11。
一种微孔雾化装置,包括一供水腔体2及密闭的耗水腔体11,与耗水腔体11相连设有伸入供水腔体2内的导管3,耗水腔体11上还设有微孔雾化模块1。
此微孔雾化方法以及实施该方法的微孔雾化装置在进行液体雾化的工作过程中,由于耗水腔体11处于密封状态,在安装于耗水腔体11侧壁的微孔雾化模块1消耗耗水腔体11内的液体的过程中,会造成耗水腔体11内产生负压,在负压作用,供水腔体2会通过导管3向耗水腔体11内供水,以供应微孔雾化模块1连续不间断的工作,此雾化方法操作简单,实施该方法的装置使用操作均极为方便,且不易滋生细菌,不会对人体健康造成威胁。
作为本发明优选的实施方式,耗水腔体11的底部形成一扣盖,耗水腔体11通过扣盖盖设在供水腔体2上,扣盖与供水腔体2的顶部间设有密封圈4。
作为本发明优选的实施方式,微孔雾化模块1内设有一雾化片12,雾化片12贴覆在耗水腔体11外壁上。
作为本发明优选的实施方式,微孔雾化模块1内设有分别卡设在雾化片12上侧的上压片121和顶设在雾化片12下侧的下顶片122。
作为本发明优选的实施方式,扣盖与耗水腔体11间通过螺纹连接或者卡扣连接。
作为本发明优选的实施方式,耗水腔体11的外壁上设有一耗水腔体进水口13,微孔雾化模块1上紧邻耗水腔体进水口13设有一滑槽14,滑槽14内设有活塞15。
作为本发明优选的实施方式,与活塞15相连设有一端伸出滑槽14的拉杆151。
作为本发明优选的实施方式,与微孔雾化模块1相连还设有一驱动模块,驱动模块包括与雾化片12相连的电路板16及与电路板16相连的输入电源17,微孔雾化模块1上还设有与电路板16相连的开关按钮18。
此雾化器在使用过程中,先在供水腔体2内注水,注水完成后,将供水腔体2往上旋紧,使得供水腔体2与耗水腔体11紧密连接,耗水腔体11下方的扣盖与供水腔体2间设置的密封圈4对耗水腔体11与供水腔体2间的联接起到密封作用。
拉动拉杆151,使得活塞15离开耗水腔体进水口13,此时耗水腔体进水口13处于打开状态,将雾化装置整体倒装180度,由于滑槽14设置在耗水腔体11的外壁与微孔雾化模块1内壁间,该滑槽14也位于微孔雾化模块1和供水腔体2组成的密闭空间内,在雾化器整体倒置后,供水腔体2中的水将通过滑槽14以及耗水腔体进水口13进入耗水腔体11内。
此时,再推动拉杆151,使得活塞15向上滑动,密闭耗水腔体进水口13,随后将雾化器整体在翻转180度,回至正常位置。按动微孔雾化模块1上的开关按钮18,启动雾化片12,该雾化器即可正常工作。
在此雾化装置的雾化器工作过程中,由于供水腔体2和耗水腔体11均处于密闭环境下,雾化片12工作的过程中不断消耗耗水腔体11内的水,会造成耗水腔体11内的气压下降,从而在虹吸作用下,将通过吸管3将供水腔体2内的水源源不断的输入耗水腔体11内。
此上抽式的雾化器采用的上出水结构,摆脱了必须使用棉芯的困扰,克服其下出水结构所存在的弊病。且此雾化器的上下两个部分是分开的,使得雾化器的加水更加方便。另外,此雾化器的上下两个部分可以是通过螺纹或者其他方式安装在一起。
此微孔雾化方法及实施此微孔雾化方法的装置摆脱了以往下出水方式的局限,其体积可大可小,不需要抽水泵就可以把水从低位抽上高位,摆脱了棉芯供水的隐患。由于微孔雾化模块1内的能够与水直接接触,使得雾化效果更加稳定可靠且操作简单方便,最大程度的将水雾干。
当然,本发明创造并不局限于上述实施方式,熟悉本领域的技术人员在不违背本发明精神的前提下还可作出等同变形或替换,这些等同的变型或替换均包含在本申请权利要求所限定的范围内。

Claims (9)

  1. 一种微孔雾化方法,其特征在于,包括以下步骤:
    1) 、通过一导管(3)将供水腔体(2)和密闭的耗水腔体(11)相连,并在耗水腔体(11)外壁上安装微孔雾化模块(1);
    2) 、开启驱动模块使得微孔雾化模块(1)工作,所述微孔雾化模块(1)工作过程中消耗耗水腔体(11)内的液体;
    3) 、耗水过程中在供水腔体(2)内产生负压,在负压作用下供水腔体(2)内的液体通过导管(3)进行耗水腔体(11)。
  2. 一种实施权利要求1所述微孔雾化方法的微孔雾化装置,其特征在于:包括一供水腔体(2)及密闭的耗水腔体(11),与所述耗水腔体(11)相连设有伸入供水腔体(2)内的导管(3),所述耗水腔体(11)上还设有微孔雾化模块(1)。
  3. 根据权利要求2所述的微孔雾化装置,其特征在于:所述耗水腔体(11)的底部形成一扣盖,所述耗水腔体(11)通过扣盖盖设在供水腔体(2)上,所述扣盖与供水腔体(2)的顶部间设有密封圈(4)。
  4. 根据权利要求2或3所述的微孔雾化装置,其特征在于:所述微孔雾化模块(1)内设有一雾化片(12),所述雾化片(12)贴覆在耗水腔体(11)外壁上。
  5. 根据权利要求4所述的微孔雾化装置,其特征在于:所述微孔雾化模块(1)内设有分别卡设在雾化片(12)上侧的上压片(121)和顶设在雾化片(12)下侧的下顶片(122)。
  6. 根据权利要求3所述的微孔雾化装置,其特征在于:所述扣盖与耗水腔体(11)间通过螺纹连接或者卡扣连接。
  7. 根据权利要求2或3所述的微孔雾化装置,其特征在于:所述耗水腔体(11)的外壁上设有一耗水腔体进水口(13),所述微孔雾化模块(1)上紧邻所述耗水腔体进水口(13)设有一滑槽(14),所述滑槽(14)内设有活塞(15)。
  8. 根据权利要求7所述的微孔雾化装置,其特征在于:与所述活塞(15)相连设有一端伸出滑槽(14)的拉杆(151)。
  9. 根据权利要求2或3所述的微孔雾化装置,其特征在于:与所述微孔雾化模块(1)相连还设有一驱动模块,所述驱动模块包括与雾化片(12)相连的电路板(16)及与所述电路板(16)相连的输入电源(17),所述微孔雾化模块(1)上还设有与所述电路板(16)相连的开关按钮(18)。
PCT/CN2013/071710 2012-11-07 2013-02-21 一种微孔雾化方法及实施该微孔雾化方法的装置 WO2014071710A1 (zh)

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