WO2021226866A1 - 一种带支撑壳体的多孔导液加热雾化组件及其制备方法 - Google Patents

一种带支撑壳体的多孔导液加热雾化组件及其制备方法 Download PDF

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WO2021226866A1
WO2021226866A1 PCT/CN2020/089998 CN2020089998W WO2021226866A1 WO 2021226866 A1 WO2021226866 A1 WO 2021226866A1 CN 2020089998 W CN2020089998 W CN 2020089998W WO 2021226866 A1 WO2021226866 A1 WO 2021226866A1
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porous
liquid
supporting shell
conducting
porous liquid
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PCT/CN2020/089998
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English (en)
French (fr)
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陈平
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深圳市华诚达精密工业有限公司
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    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • A24F40/46Shape or structure of electric heating means
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • A24F40/48Fluid transfer means, e.g. pumps
    • A24F40/485Valves; Apertures

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  • the invention relates to the field of electronic cigarettes, in particular to a porous liquid conducting heating atomization assembly with a supporting shell and a preparation method thereof.
  • the porous liquid-conducting heating and atomizing components used in this field generally do not have a supporting shell. Due to the porous nature of the porous liquid-conducting, there are problems such as poor structural strength, large dimensional tolerances, rough surfaces and easy damage. These problems have existed for a long time. Affecting the design of atomized products. It is difficult to miniaturize products, poor structural strength affects production and assembly, and it is difficult to achieve automated production. The manual assembly required is restricted in yield and quality consistency. Large dimensional tolerances and rough surface also affect the details. The user experience of the product causes problems such as poor user experience such as easy oil leakage.
  • the present invention provides a new technical solution to solve the existing technical problems.
  • the purpose of the present invention is to disclose a porous liquid-conducting heating atomization component with a supporting shell and a preparation method thereof, which solves the problem of poor structural strength, large dimensional tolerances, rough surface and easy damage of the porous liquid-conducting heating atomization component products.
  • the problem is to disclose a porous liquid-conducting heating atomization component with a supporting shell and a preparation method thereof, which solves the problem of poor structural strength, large dimensional tolerances, rough surface and easy damage of the porous liquid-conducting heating atomization component products.
  • the technical solution of the present invention is: a porous liquid conducting heating atomization assembly with a supporting shell, comprising a porous conducting liquid for absorbing and transferring liquid, and one or more supporting shells for supporting the porous conducting liquid And an electric heating track for heating and evaporating the atomized liquid after being energized, and one or more oil inlet holes penetrating forward and backward are provided on the support shell.
  • the present invention provides a porous liquid conducting heating atomization assembly with a supporting shell.
  • the shape of the oil inlet hole is at least one of a circle, an ellipse, a square, a triangle, a trapezoid, and a diamond. .
  • the present invention is a porous liquid conducting heating atomization assembly with a supporting shell.
  • the distance between the plane of the oil inlet hole on the supporting shell and the plane of the electric heating track is 0.3mm Between -10mm.
  • the wall thickness of the support shell of a porous liquid conducting heating atomization assembly with a support shell of the present invention is 0.01mm-2mm.
  • a porous liquid conducting heating atomization assembly with a supporting shell of the present invention is a gapless connection between the supporting shell, the electric heating track and the porous conducting liquid.
  • a porous liquid conducting heating atomization assembly with a supporting shell is provided in the present invention.
  • the supporting shell is arranged on the outer wall, the inner wall of the porous liquid conducting or the middle of the porous conducting liquid.
  • the number of electric heating tracks of a porous liquid conducting heating atomization assembly with a supporting shell of the present invention is one or more.
  • a porous liquid conducting heating atomization assembly with a supporting shell is provided in the present invention.
  • the supporting shell at least wraps the outer surface or one surface of the inner wall of the porous conducting liquid.
  • the invention also discloses an atomized product, which includes the above-mentioned porous liquid conducting heating atomizing component with a supporting shell.
  • the present invention also provides a method for preparing the porous liquid-conducting heating and atomizing assembly with a supporting shell, which includes the following steps:
  • S1 Choose one of metal, ceramic, glass, quartz or mica as the base material of the support shell, and use stamping, etching, cutting, stretching, welding, injection molding, machining and sintering technology to make the support shell;
  • step S4 Place the support shell made in step S1 and the electric heating track made in step S2 in the forming mold for fixation, and inject the porous ceramic slurry prepared in step S3, and wait for the porous ceramic slurry to cool and harden Afterwards, take out the semi-finished product body and place it in the sintering carrier;
  • the present invention is a method for preparing a porous liquid conducting heating atomization assembly with a supporting shell.
  • the substrate of the supporting shell is tubular metal in step S1, stamping, etching and cutting are used. Technology to obtain the support shell.
  • the beneficial effects of the present invention provides a porous liquid-conducting heating atomization assembly with a supporting shell and a preparation method thereof. Based on the characteristics, it solves the problems of poor strength of the porous conductive liquid, large dimensional tolerances, rough surface and easy damage, making the porous conductive liquid good in strength, precise and controllable in size, which is conducive to mass automated production.
  • the product of the invention is simple, convenient and low in cost to manufacture, greatly improves the strength and dimensional accuracy of the product, facilitates the development of the product toward a miniaturized design, and facilitates subsequent mass automated production of the product.
  • Fig. 1 is an assembly schematic diagram of a porous liquid-conducting heating and atomizing assembly with a supporting shell in Embodiment 1 of the present invention
  • Figure 2 is an exploded view of the porous liquid conducting heating and atomizing assembly with a supporting shell in Embodiment 1 of the present invention
  • FIG. 3 is a cross-sectional view of a porous liquid conducting heating atomization assembly with a supporting shell in Embodiment 1 of the present invention
  • FIG. 4 is an exploded view of the porous liquid conducting heating atomization assembly with a supporting shell in Embodiment 2 of the present invention
  • FIG. 5 is a cross-sectional view of a porous liquid conducting heating atomization assembly with a supporting shell in Embodiment 2 of the present invention
  • Figure 6 is an exploded view of the porous liquid conducting heating and atomizing assembly with a supporting shell in Embodiment 3 of the present invention
  • FIG. 7 is a cross-sectional view of a porous liquid conducting heating atomization assembly with a supporting shell in Embodiment 3 of the present invention.
  • Figure 8 is an exploded view of the porous liquid conducting heating atomization assembly on the inner wall of the supporting shell
  • Figure 9 is a cross-sectional view of a porous liquid conducting heating and atomizing component supporting the inner wall of the housing;
  • Figure 10 is a side view of a porous liquid conducting heating atomization assembly supporting the inner wall of the housing;
  • Figure 11 is an exploded view of a porous liquid conducting heating and atomizing assembly with a support shell in the middle of the porous conducting liquid;
  • Figure 12 is a cross-sectional view of a porous liquid-conducting heating and atomizing assembly with a support shell in the middle of the porous liquid-conducting component;
  • Figure 13 is a side view of a porous liquid conducting heating and atomizing assembly with a support shell in the middle of the porous conducting liquid.
  • a porous liquid conducting heating atomization assembly with a supporting shell, comprising porous conducting liquid 1, one or more for supporting
  • the supporting housing 2 of the porous liquid conductive 1 and the electric heating track 3 are used for heating and evaporating the atomized liquid after being energized.
  • the supporting housing 2 is provided with one or more forward and backward penetrating inlets. ⁇ 21 ⁇ Oil hole 21.
  • the shape of the oil inlet 21 is at least one of a circle, an ellipse, a square, a triangle, a trapezoid, and a rhombus.
  • the distance between the plane where the oil inlet 21 on the support shell 2 is located and the plane where the electric heating track 3 is located is between 0.3 mm and 10 mm.
  • the wall thickness of the support shell 2 is 0.01mm-2mm.
  • the support shell 2, the electric heating track 3 and the porous conductive liquid 1 are connected without gaps.
  • the supporting shell 2 is arranged on the outer wall, the inner wall of the porous liquid conducting liquid 1 or the middle of the porous liquid conducting liquid 1.
  • the number of the electric heating track 3 is one or more.
  • the supporting shell 2 wraps at least one surface of the outer surface or the inner wall of the porous liquid conducting liquid 1.
  • the present invention also discloses an atomized product, which includes the above-mentioned porous liquid-conducting heating atomization assembly with a supporting shell.
  • the present invention also provides a method for preparing the porous liquid-conducting heating and atomizing assembly with a supporting shell, which includes the following steps:
  • S1 Choose one of metal, ceramics, glass, quartz or mica as the base material of the support shell 2, and use stamping, etching, cutting, stretching, welding, injection molding, machining and sintering techniques to make the support shell 2 ;
  • the chemical composition of the porous ceramic slurry is: 30%-50% fused silica, the mesh number of the quartz is 100-600 mesh, and the quartz is mainly used as a binder that melts after high temperature; 10%-30% % Paraffin wax, which is used as a solvent, hardens at room temperature after grouting, is a liquid solvent after heating, and is discharged after high temperature sintering; 5%-50% support material, the support material is diatomaceous earth, kaolin or silicon carbide In one of them, the support material is a hard-to-melt substance; 1%-30% pore-forming agent, the pore-forming agent is wood chips, carbon powder, or plastic pellets that can be burned and volatilized after high temperature.
  • the porous materials currently used in the industry are mainly cotton and porous ceramics.
  • the porous ceramic slurry can also be replaced by cotton and paper pulp. Some porous and volatile substances are added to the cotton and paper pulp and then glued to form pulp and cotton fibers. The slurry is then baked, catalyzed, and other methods are used to remove the volatile matter of the slurry to form a porous conductive liquid.
  • the support shell 2 in step S1 is tubular metal
  • the support shell 2 is obtained by stamping, etching and cutting techniques.
  • the supporting housing 2 is a hollow cylindrical supporting housing
  • the porous liquid conducting liquid 1 is a cylindrical structure
  • the electric heating track 3 is formed by winding a metal wire.
  • the oil inlet 21 is circular.
  • the support housing 2 is a rectangular support housing
  • the porous liquid conducting 1 is a rectangular parallelepiped structure
  • the electric heating track 3 is a sheet-shaped S-shaped electric heating track.
  • the electric heating track 3 is stamped and cut from a whole piece of conductive heating material, and the oil inlet 21 is rectangular.
  • the electric heating track 3 is a metal hollow electric heating track piece, and the porous liquid conducting liquid 1 is also provided with a plurality of airflow holes penetrating up and down.
  • the beneficial effects of the present invention provides a porous liquid-conducting heating atomization assembly with a supporting shell and a preparation method thereof. Based on the characteristics, it solves the problems of poor strength of the porous conductive liquid, large dimensional tolerances, rough surface and easy damage, making the porous conductive liquid good in strength, precise and controllable in size, which is conducive to mass automated production.
  • the product of the invention is simple, convenient and low in cost to manufacture, greatly improves the strength and dimensional accuracy of the product, facilitates the development of the product toward a miniaturized design, and facilitates subsequent mass automated production of the product.

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Abstract

一种带支撑壳体的多孔导液加热雾化组件,包括用于吸收和传递液体的多孔导液体(1)、一个或者多个用于支撑多孔导液体(1)的支撑壳体(2)以及电加热轨迹(3),电加热轨迹(3)用于通电后加热蒸发雾化液体,支撑壳体(2)上设置有一个或者多个前后贯穿的进油孔(21)。还提供一种带支撑壳体(2)的多孔导液加热雾化组件及其制备方法,将多孔导液体(1)与模具注塑工艺结合起来,在保证了多孔导液体(1)导液特性的基础上解决了多孔导液体(1)强度差、尺寸公差大、表面粗糙易破损的问题,使得多孔导液体(1)的强度好、尺寸精准可控、利于大批量的自动化生产。

Description

一种带支撑壳体的多孔导液加热雾化组件及其制备方法 技术领域
本发明涉及电子烟领域,具体为一种带支撑壳体的多孔导液加热雾化组件及其制备方法。
背景技术
目前应用在本领域的多孔导液加热雾化组件一般没有支撑壳体,由于多孔导液体的多孔特性,存在着结构强度差、尺寸公差较大、表面粗糙易破损等问题,这些问题长期存在,影响雾化产品设计产品很难小型化,结构强度差影响生产装配,很难做到自动化生产,需要的人工组装,在产量和品质一致性上受到制约,尺寸公差大表面粗糙也从细节上影响到产品的用户体验,造成容易漏油等用户体验差的问题。
因此,本发明提供一种新的技术方案以解决现存的技术问题。
发明内容
本发明的目的是公开一种带支撑壳体的多孔导液加热雾化组件及其制备方法,解决了多孔导液加热雾化组件产品存在的结构强度差、尺寸公差较大、表面粗糙易破损的问题。
本发明的技术方案是:一种带支撑壳体的多孔导液加热雾化组件,包括用于吸收和传递液体的多孔导液体、一个或者多个用于支撑所述多孔导液体的支撑壳体以及电加热轨迹,所述电加热轨迹用于通电后加热蒸发雾化液体,所述支撑壳体上设置有一个或者多个前后贯穿的进油孔。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述进油孔形状为圆形、椭圆形、方形、三角形、梯形、菱形中的至少一种。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述支撑壳体上的进油孔所在平面与所述电加热轨迹所在平面的间距为0.3mm-10mm之间。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述支撑壳体的壁厚为0.01mm-2mm。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾 化组件所述支撑壳体、电加热轨迹与多孔导液体之间为无间隙连接。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述支撑壳体设置在所述多孔导液体的外壁、内壁或者多孔导液体的中间。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述电加热轨迹的数量为一条或者多条。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件所述支撑壳体至少包裹所述多孔导液体的外表面或者内壁的一个面。
本发明还公开一种雾化产品,包括上述的一种带支撑壳体的多孔导液加热雾化组件。
基于此种带支撑壳体的多孔导液加热雾化组件,本发明还提供了一种带支撑壳体的多孔导液加热雾化组件的制备方法,包括以下步骤:
S1:从金属、陶瓷、玻璃、石英或者云母中选择一种作为支撑壳体的基材,采用冲压、蚀刻、切割、拉伸、焊接、注塑、机加工以及烧结技术制成支撑壳体;
S2:对金属采用蚀刻、切割、焊接、卷绕或者印刷电路工艺制成所述的电加热轨迹;
S3:准备好用来制备所述多孔导液体的多孔陶瓷浆料;
S4:将上述步骤S1中制得的支撑壳体以及步骤S2中制成的电加热轨迹放置于成型模具内固定,并注入步骤S3准备的多孔陶瓷浆料,等待所述多孔陶瓷浆料冷却硬化后,将半成品胚体取出,放置于烧结载具内;
S5:将上述步骤S4中制成的半成品胚体放置于高温烧结炉内烧结固化成型。
作为本技术方案的进一步技术优化,本发明一种带支撑壳体的多孔导液加热雾化组件的制备方法步骤S1中所述的支撑壳体基材为管状金属时,采用冲压、蚀刻以及切割技术得到所述支撑壳体。
本发明的有益效果:本发明提供一种带支撑壳体的多孔导液加热雾化组件及其制备方法,创新性的将多孔导液体与模具注塑工艺结合起来,在保证了多孔导液体导液特性的基础上解决了多孔导液体强度差、尺寸公差大、表面粗糙易破损的问题,使得多孔导液体的强度好、尺寸精准可控、利于大批量的自动化生产。本发明产品制造简单、方便、成本低廉,大大提高了产品的强度和尺寸精度,利于产品朝小型化设计发展,方便产品后续大批量自动化生产。
附图说明
下面结合附图和实施例对本发明进一步说明。
图1是本发明实施例1中带支撑壳体的多孔导液加热雾化组件的装配示意图;
图2是本发明实施例1中带支撑壳体的多孔导液加热雾化组件的爆炸图;
图3是本发明实施例1中带支撑壳体的多孔导液加热雾化组件的剖面图;
图4是本发明实施例2中带支撑壳体的多孔导液加热雾化组件的爆炸图;
图5是本发明实施例2中带支撑壳体的多孔导液加热雾化组件的剖面图;
图6是本发明实施例3中带支撑壳体的多孔导液加热雾化组件的爆炸图;
图7是本发明实施例3中带支撑壳体的多孔导液加热雾化组件的剖视图;
图8是支撑壳体在内壁的多孔导液加热雾化组件的爆炸图;
图9是支撑壳体在内壁的多孔导液加热雾化组件的剖面图;
图10是支撑壳体在内壁的多孔导液加热雾化组件的侧视图;
图11是支撑壳体在多孔导液体中间的多孔导液加热雾化组件的爆炸图;
图12是支撑壳体在多孔导液体中间的多孔导液加热雾化组件的剖面图;
图13是支撑壳体在多孔导液体中间的多孔导液加热雾化组件的侧视图。
具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
参阅图1-图7,本发明提供一种技术方案:一种带支撑壳体的多孔导液加热雾化组件,包括用于吸收和传递液体的多孔导液体1、一个或者多个用于支撑所述多孔导液体1的支撑壳体2以及电加热轨迹3,所述电加热轨迹3用于通电后加热蒸发雾化液体,所述支撑壳体2上设置有一个或者多个前后贯穿的进油孔21。所述进油孔21形状为圆形、椭圆形、方形、三角形、梯形、菱形中的至少一种。所述支撑壳体2上的进油孔21所在平面与所述电加热轨迹3所在平面的间距为0.3mm-10mm之间。所述支撑壳体2的壁厚为0.01mm-2mm。所述支撑壳体2、电加热轨迹3与多孔导液体1之间为无间隙连接。所述支撑壳体2设置在所述多孔导液体1的外壁、内壁或者多孔导液体1的中间。所述电加热轨迹3的数量为一条或者多条。所述支撑壳体2至少包裹所述多孔导液体1的外表面或者内壁的一个面。
本发明还公开一种雾化产品,包括上述的一种带支撑壳体的多孔导液加热雾化 组件。
基于此种带支撑壳体的多孔导液加热雾化组件,本发明还提供了一种带支撑壳体的多孔导液加热雾化组件的制备方法,包括以下步骤:
S1:从金属、陶瓷、玻璃、石英或者云母中选择一种作为支撑壳体2的基材,采用冲压、蚀刻、切割、拉伸、焊接、注塑、机加工以及烧结技术制成支撑壳体2;
S2:对金属采用蚀刻、切割、焊接、卷绕或者印刷电路工艺制成所述的电加热轨迹3;
S3:准备好用来制备所述多孔导液体1的多孔陶瓷浆料;
S4:将上述步骤S1中制得的支撑壳体2以及步骤S2中制成的电加热轨迹3放置于成型模具内固定,并注入步骤S3准备的多孔陶瓷浆料,等待所述多孔陶瓷浆料冷却硬化后,将半成品胚体取出,放置于烧结载具内;
S5:将上述步骤S4中制成的半成品胚体放置于高温烧结炉内烧结固化成型。
所述多孔陶瓷浆料的化学组分组成为:30%-50%的熔融石英,所述石英的目数为100-600目,所述石英主要作为高温后熔融的粘结料;10%-30%的石蜡,所述石蜡作为溶解剂,注浆后常温硬化,加热后为液体溶剂,高温烧结后排出;5%-50%的支撑材料,所述支撑材料为硅藻土、高岭土或者碳化硅中的一种,所述支撑材料属于难融物质;1%-30%造孔剂,所述造孔剂为木削、碳粉或者塑胶粒等经过高温能够燃烧挥发掉的物质。
目前应用在行业内的多孔材料主要是棉和多孔陶瓷,所述多孔陶瓷浆料也可以用棉和纸浆替代,在棉和纸浆里面添加一些多孔易挥发的物质然后粘结胶水形成纸浆和棉纤维浆,然后通过烘烤、催化等方式去掉浆料的易挥发物质形成多孔导液体。
步骤S1中所述的支撑壳体2基材为管状金属时,采用冲压、蚀刻以及切割技术得到所述支撑壳体2。
参阅图1-图3,提供实施例1,所述支撑壳体2为中空圆柱体支撑壳体,所述多孔导液体1为圆柱体结构,所述电加热轨迹3为金属丝卷绕而成,所述进油孔21为圆形。
参阅图4-图5,提供实施例2,所述支撑壳体2为一片长方形支撑壳体,所述多孔导液体1为长方体结构,所述电加热轨迹3为片状S形电加热轨迹,所述电加热轨迹3由整块的导电加热材料板冲压、裁切而成,所述进油孔21为长方形。
参阅图6-图7,提供实施例3,所述电加热轨迹3为金属镂空电加热轨迹片, 所述多孔导液体1上还设有多个上下贯通的气流孔。
本发明的有益效果:本发明提供一种带支撑壳体的多孔导液加热雾化组件及其制备方法,创新性的将多孔导液体与模具注塑工艺结合起来,在保证了多孔导液体导液特性的基础上解决了多孔导液体强度差、尺寸公差大、表面粗糙易破损的问题,使得多孔导液体的强度好、尺寸精准可控、利于大批量的自动化生产。本发明产品制造简单、方便、成本低廉,大大提高了产品的强度和尺寸精度,利于产品朝小型化设计发展,方便产品后续大批量自动化生产。
以上是对本发明的较佳实施进行了具体说明,但本发明创造并不限于所述实施例,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做出种种的等同变形或替换,这些等同的变形或替换均包含在本申请权利要求所限定的范围内。

Claims (10)

  1. 一种带支撑壳体的多孔导液加热雾化组件,其特征在于:包括用于吸收和传递液体的多孔导液体(1)、一个或者多个用于支撑所述多孔导液体(1)的支撑壳体(2)以及电加热轨迹(3),所述电加热轨迹(3)用于通电后加热蒸发雾化液体,所述支撑壳体(2)上设置有一个或者多个前后贯穿的进油孔(21)。
  2. 根据权利要求1所述的一种带支撑壳体的多孔导液加热雾化组件,其特征在于:所述进油孔(21)形状为圆形、椭圆形、方形、三角形、梯形、菱形中的至少一种,所述电加热轨迹(3)的数量为一条或者多条。
  3. 根据权利要求1所述的一种带支撑壳体的多孔导液加热雾化组件,其特征在于:所述支撑壳体(2)的壁厚为0.01mm-2mm,所述支撑壳体(2)上的进油孔(21)所在平面与所述电加热轨迹(3)所在平面的间距为0.3mm-10mm之间。
  4. 根据权利要求1所述的一种带支撑壳体的多孔导液加热雾化组件,其特征在于:所述支撑壳体(2)与多孔导液体(1)为无间隙连接,所述电加热轨迹(3)与多孔导液体(1)为无间隙连接。
  5. 根据权利要求1所述的一种带支撑壳体的多孔导液加热雾化组件,其特征在于:所述支撑壳体(2)设置在所述多孔导液体(1)的外壁、内壁或者多孔导液体(1)的中间,所述支撑壳体(2)至少包裹所述多孔导液体(1)的外表面或者内壁的一个面。
  6. 一种雾化产品,其特征在于:包括权利要求1-8任意一项所述的一种带支撑壳体的多孔导液加热雾化组件。
  7. 一种带支撑壳体的多孔导液加热雾化组件的制备方法,其特征在于,包括以下步骤:
    S1:制作支撑壳体(2);
    S2:制作电加热轨迹(3),对金属采用蚀刻、切割、焊接、卷绕或者印刷电路工艺中的至少一种方法制成电加热轨迹(3);
    S3:准备多孔导液体(1)的制作材料,准备好用来制备多孔导液体(1)的多孔陶瓷浆料;
    S4:模具定位及注入浆料;
    S5:烧结固化,将上述步骤S4中制成的半成品胚体放置于高温烧结炉内烧结固化成型。
  8. 根据权利要求10所述的一种带支撑壳体的多孔导液加热雾化组件的制备方法,其特征在于:从金属、陶瓷、玻璃、石英或者云母中选择一种作为支撑壳体(2)的基材。
  9. 根据权利要求10所述的一种带支撑壳体的多孔导液加热雾化组件的制备方法,其特征在于:采用冲压、蚀刻、切割、拉伸、焊接、注塑、机加工以及烧结技术中的至少一种制成支撑壳体(2)。
  10. 根据权利要求10所述的一种带支撑壳体的多孔导液加热雾化组件的制备方法,其特征在于,步骤S4具体包括:将上述步骤S1中制得的支撑壳体(2)以及步骤S2中制成的电加热轨迹(3)放置于成型模具内固定,并注入步骤S3准备的多孔陶瓷浆料,等待所述多孔陶瓷浆料冷却硬化后,将半成品胚体取出。
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