WO2021103387A1 - 出风装置和空气调节设备 - Google Patents

出风装置和空气调节设备 Download PDF

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Publication number
WO2021103387A1
WO2021103387A1 PCT/CN2020/084376 CN2020084376W WO2021103387A1 WO 2021103387 A1 WO2021103387 A1 WO 2021103387A1 CN 2020084376 W CN2020084376 W CN 2020084376W WO 2021103387 A1 WO2021103387 A1 WO 2021103387A1
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WO
WIPO (PCT)
Prior art keywords
air
air outlet
guide assembly
outlet
arc
Prior art date
Application number
PCT/CN2020/084376
Other languages
English (en)
French (fr)
Inventor
邢志钢
赵阿立
Original Assignee
广东美的制冷设备有限公司
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 广东美的制冷设备有限公司 filed Critical 广东美的制冷设备有限公司
Priority to CA3123492A priority Critical patent/CA3123492C/en
Priority to EP20768240.2A priority patent/EP3855090A4/en
Priority to US16/979,431 priority patent/US11796216B2/en
Publication of WO2021103387A1 publication Critical patent/WO2021103387A1/zh
Priority to US18/244,612 priority patent/US20230417448A1/en

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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
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • F24F13/10Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers
    • F24F13/14Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre
    • F24F13/15Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre with parallel simultaneously tiltable lamellae
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/02Ducting arrangements
    • F24F13/06Outlets for directing or distributing air into rooms or spaces, e.g. ceiling air diffuser
    • F24F13/065Outlets for directing or distributing air into rooms or spaces, e.g. ceiling air diffuser formed as cylindrical or spherical bodies which are rotatable
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0007Indoor units, e.g. fan coil units
    • F24F1/0011Indoor units, e.g. fan coil units characterised by air outlets
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0007Indoor units, e.g. fan coil units
    • F24F1/0018Indoor units, e.g. fan coil units characterised by fans
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/02Ducting arrangements
    • F24F13/06Outlets for directing or distributing air into rooms or spaces, e.g. ceiling air diffuser
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • F24F13/10Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers
    • F24F13/12Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of sliding members

Definitions

  • This application relates to the field of air conditioning technology, and in particular to an air outlet device and an air conditioning device having the air outlet device.
  • Air conditioning equipment is now a more important electrical appliance in people’s home life.
  • the air outlet angle of the existing air conditioning equipment is adjusted, the wind is usually directed to different directions through the swing of the shutters, while the existing shutters swing out. Wind angle adjustment method is easy to cause greater wind resistance.
  • the main purpose of this application is to provide an air outlet device, which aims to reduce the wind resistance during the air outlet process of the air conditioning equipment.
  • the air outlet device proposed in this application includes:
  • An air duct housing the air duct housing includes an air outlet part with an air cavity formed therein, an air inlet communicating with the air cavity is provided on one side of the air outlet part, and an air outlet is provided on the other side of the air outlet part There is an air outlet communicating with the air cavity;
  • the air guide assembly has an air outlet, the air guide assembly is movably installed at the air outlet and located at the air outlet, the air guide assembly is close to the surface of the air outlet and can be Move along the surface of the air outlet to change the angle of the wind blown out through the air outlet.
  • the air guide assembly is housed in the air cavity and moves along the inner surface of the air outlet portion where the air outlet is opened.
  • one air guide component is corresponding to one of the air outlets.
  • the air outlet includes an arc-shaped cover with an arched cross-section, an end cover for covering both ends of the arc-shaped cover, and a bottom plate for covering the side opening of the arc-shaped cover.
  • the air outlet is opened on the arc-shaped cover, the air inlet is opened on the bottom plate, the air guiding assembly includes an air guiding part facing the air outlet, and the air guiding part is provided with the air outlet,
  • the cross-sectional shape of the air guiding part is an arc that matches the shape of the arc-shaped cover.
  • the air guide portion includes a shielding area and an air outlet area, and the air outlet hole is opened in the air outlet area.
  • the air outlet area is provided with a grille to form the air outlet, and the grille extends in the length direction of the air outlet, when the air guide component is along the surface of the air outlet
  • the direction of the air flow entering the air cavity from the air inlet is set at an acute angle with the plate surface of the bottom plate, and the angle between the plate surface of the grille and the horizontal plane is between 0 degrees and 90 degrees.
  • the air guide portion is provided with shielding areas on both front and rear sides of its moving direction, and the air outlet area is located between the two shielding areas.
  • the air outlet device further includes a driving member installed on the outer side of the end cover, and the air guide assembly further includes a connecting part connected to the end of the air guide part Part, the drive shaft of the drive member is connected to the connecting part.
  • This application also proposes an air conditioning device, which includes a blower and the air outlet device as described above, and the outlet of the blower is in communication with the air inlet.
  • the air duct housing further includes a mounting part that is an integral structure with the air outlet part, and the air blower is mounted on the mounting part.
  • the technical solution of the present application forms an air cavity in the air outlet, the airflow entering from the air inlet is gathered in the air cavity, and an air guide assembly is arranged.
  • the air guide assembly is arranged close to the surface of the air outlet, and the air guide assembly runs along the outlet
  • the surface of the wind part moves, so that the relative position of the air outlet also changes, which causes the angle of the wind blown from the air outlet to change, which can adapt to the needs of people with different air outlet angles, and because the air guide component is close to the surface of the air outlet and runs along
  • the surface of the air outlet makes the air guide assembly equivalent to a part of the shell of the air outlet during the air guiding process, and the airflow accumulated in the air cavity suffers from the wind resistance of the air guide assembly is very small, realizing the maximum air output ⁇ .
  • Fig. 1 is a schematic diagram of a three-dimensional structure of an embodiment of an air outlet device of the present application
  • Figure 2 is a schematic diagram of the explosive structure of the air outlet device in Figure 1;
  • Fig. 3 is a schematic diagram of the three-dimensional structure of the air guide assembly in the air outlet device of the present application
  • Figure 4 is a cross-sectional view of the air outlet device of this application in the front air outlet mode
  • Figure 5 is a cross-sectional view of the air outlet device of this application in an oblique air outlet mode
  • Fig. 6 is a cross-sectional view of the air outlet device of this application in the top air outlet mode
  • Fig. 7 is a schematic diagram of the three-dimensional structure of the air-conditioning equipment of this application, in which the connecting pipe structure and the filter screen in front of the heat exchanger are removed.
  • Fig. 8 is a schematic diagram of the internal structure of the air conditioning device in Fig. 7 with the outer shell removed in the figure.
  • the terms “connected”, “fixed”, etc. should be understood in a broad sense.
  • “fixed” can be a fixed connection, a detachable connection, or a whole; It can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediary, and it can be an internal connection between two components or an interaction relationship between two components, unless specifically defined otherwise.
  • “fixed” can be a fixed connection, a detachable connection, or a whole; It can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediary, and it can be an internal connection between two components or an interaction relationship between two components, unless specifically defined otherwise.
  • This application proposes an air outlet device 100.
  • the air outlet device 100 includes an air duct housing 110 and an air guide assembly 140, wherein the air duct housing 110 includes an outlet with an air cavity 120a formed therein
  • the air part 120 is provided with an air inlet 120b connected to the air cavity 120a on one side of the air outlet 120, an air outlet 120c connected to the air cavity 120a is provided on the other side of the air outlet 120, and the air guide assembly 140 is provided with an air outlet 1422
  • the air guide assembly 140 is movably installed at the air outlet 120 and is located at the air outlet 120c.
  • the air guide assembly 140 is close to the surface of the air outlet 120 and can move along the surface of the air outlet 120 to change the blown air through the air outlet 120c. angle.
  • the air outlet device 100 of the present application is applied to the air conditioning equipment 500, wherein the air outlet 120 extends along an axis in a long strip shape, and the air inlet 120b and the air outlet 120c also extend in the length direction of the air outlet 120 to form a length.
  • the air guide assembly 140 is also elongated, and is adapted to the entire air outlet 120 so as to interfere with the air outlet angle of the entire air outlet 120c.
  • the air guide assembly 140 is close to the surface of the air outlet 120 and can move along the surface of the air outlet 120, that is, the air guide assembly 140 can slide relative to the surface of the air outlet 120, and the air guide assembly 140 can be arranged on the air outlet 120.
  • the inner side of the air outlet 120 or the outer side of the air outlet 120 can slide relative to the inner surface or the outer surface of the air outlet 120.
  • the sliding way of driving the air guide assembly 140 may be manual or automatic driving.
  • the air guide assembly 140 and the air outlet 120 may form a sliding guide structure such as a sliding rail and a sliding groove.
  • the air guide assembly 140 is provided with a lever for turning its rotation, or when the air guide assembly 140 and the air outlet 120 form a rotating shaft connection, the air guide assembly 140 is driven relative to the air guide part 141 through a rocker or a knob. slide.
  • the air inlet 120b of the present application corresponds to the outlet of the middle fan or the outlet of the air duct connected to the air conditioning equipment 500.
  • the airflow enters the air cavity 120a from the air inlet 120b and is accumulated in the air cavity 120a, wherein the air guide assembly 140 is provided with an outlet
  • the air hole 1422 during the movement of the air guide assembly 140, the position of the air outlet 1422 relative to the air outlet 120c or the air inlet 120b will inevitably change, which will cause the angle of blowing through the air outlet 120c to change, and the air discharged from the air outlet 120c Airflow can achieve indoor cooling, indoor purification, or other scenes where needed.
  • an air cavity 120a is formed in the air outlet 120, the airflow entering from the air inlet 120b is collected in the air cavity 120a, and an air guide assembly 140 is provided, which is arranged close to the surface of the air outlet 120
  • the air guide assembly 140 moves along the surface of the air outlet 120, so that the relative position of the air outlet 1422 also changes, resulting in a change in the angle of the wind blown from the air outlet 120c, which can adapt to the needs of people with different air outlet angles.
  • the air guide assembly 140 is close to the surface of the air outlet 120 and along the surface of the air outlet 120, so that the air guide assembly 140 is equivalent to a part of the housing of the air outlet 120 during the air guide process, and is accumulated in the air cavity 120a
  • the wind resistance of the air guide assembly 140 received by the air flow inside is very small, so that the air output is maximized.
  • the air guide assembly 140 is housed in the air cavity 120a and moves along the inner surface of the air outlet 120 where the air outlet 120c is opened.
  • the air guide assembly 140 is built into the air outlet 120, so that the air guide assembly 140 serves as the inner wall surface of the air outlet 120 during the air guide process.
  • the built-in structure makes it difficult for dust and other sundries to be in the air guide assembly 140. It accumulates between the air outlet 120 and the air outlet 120.
  • the built-in structure also makes the air conditioning device 500 with the structure of the present application more integrated and more beautiful in appearance. It can be understood that it is also possible to arrange the air guide assembly 140 on the outside of the air outlet 120, which can make the disassembly and assembly of the air guide assembly 140 easier.
  • the air outlet 120 includes an arc-shaped cover 121 with an arched cross-section, end caps 122 covering both ends of the arc-shaped cover 121, and side openings of the cover arc-shaped cover 121
  • the air outlet 120c is opened in the arc-shaped casing 121
  • the air inlet 120b is opened on the bottom plate 123
  • the air guiding assembly 140 includes an air guiding part 141 facing the air outlet 120c
  • the air guiding part 141 is provided with an air outlet 1422
  • the cross-sectional shape of the air guiding portion 141 is an arc that matches the shape of the arc-shaped cover 121.
  • the arc angle of the cross section of the arc-shaped housing 121 of the present application is approximately 270 degrees, and the opening angle of the air outlet 120c is approximately 90 degrees to 100 degrees, wherein the arc-shaped housing 121, the end cover 122 and the bottom plate 123 are enclosed to form
  • the overall shape of the air cavity 120a and the air outlet 120 is a cylindrical shape with a part cut off in the axial direction, so that the air cavity 120a also has an inner wall that can make the air flow swirl.
  • the entire air outlet 120 is located at the end of the air outlet device 100, and when the air outlet device 100 is placed vertically, the air outlet 120 is located at the top end.
  • the air guiding portion 141 of the air guiding assembly 140 is close to the inner wall of the arc-shaped cover 121, it can be regarded as a part of the inner wall of the arc-shaped cover 121, so the process when the airflow is directed is smoother than
  • the louvers are arranged at the air outlet 120c to block the airflow again and change the direction of the airflow.
  • the wind resistance of the present application will be much smaller and the air output will be much larger.
  • the shape and structure of the air outlet 120 may also be other shapes and structures, such as an elliptical shape, a square shape, or other heterogeneous shapes.
  • the air guide 141 of the present application includes a shielding area 143 and an air output area 142.
  • the air output area 142 can be corresponding to the air outlet 120c, and
  • the shielding area 143 may cover part of the air outlet 120c.
  • the present application can also realize the control of the air outlet angle under the condition that the control of the air outlet volume can be realized.
  • the air outlet area 142 is provided with a grille 1421 to form an air outlet 1422.
  • the grille 1421 extends in the length direction of the air outlet 120c.
  • Each grid 1421 is in the shape of a flat strip and has two opposite surfaces. A strip is formed between the two opposite surfaces of adjacent grids 1421
  • the direction of the initial airflow entering the air cavity 120a from the air inlet 120b is set at an acute angle with the plate surface of the bottom plate 123 (specifically, it can be set through the angle of the volute and the volute tongue installed on the air duct housing 110). (Adjustment is achieved), so that when the air guide assembly 140 moves along the surface of the air outlet 120, the front air outlet, the oblique air outlet, and the top air outlet mode can be realized.
  • the specific implementation process is as follows:
  • FIG. 4 is a cross-sectional view of the air outlet device 100 of the present application when it is in the front air outlet mode.
  • the air outlet device 100 of the present application is placed vertically during actual use.
  • the arc-shaped cover 121 will be used in an oblique orientation.
  • the opening direction is approximately 40 degrees to 50 degrees from the horizontal
  • the air guide portion 141 rotates and moves clockwise in the figure
  • the air outlet area 142 is approximately located at the air outlet 120c
  • the lower part of the grille 1421 makes the surface of the grille 1421 parallel to the horizontal plane.
  • the passage of the air outlet 1422 between the grille 1421 is also horizontal, and the initial airflow entering the air cavity 120a from the air inlet 120b is arranged at an acute angle and faces the air outlet At the lower part of 120c, most of the airflow can be directly blown forward from the passage of the horizontal air outlet 1422 (the arrow in Figure 4 is the direction of the airflow), forming a large amount of air directly in front of the outside of the air outlet device 100 Moreover, the airflow with higher wind speed can achieve the effect of rapid temperature adjustment.
  • FIG. 5 is a cross-sectional view of the air outlet device 100 of the present application in an oblique air outlet mode.
  • the air guide portion 141 rotates and moves counterclockwise in the drawing.
  • the air outlet area 142 is roughly It is located in the middle of the air outlet 120c.
  • the passage of the air outlet 1422 between the grille 1421 is inclined between approximately 45 degrees and 60 degrees from the horizontal.
  • the plate surface of the bottom plate 123 is arranged at an acute angle and faces the lower part of the air outlet 120c, so the air flow will be guided by the inner wall of the air cavity 120a to the air outlet hole 1422 in the inclined state, thereby blowing out the air flow in the inclined state (as shown in Figure 5).
  • the direction of the arrow refers to the airflow).
  • FIG. 6 is a cross-sectional view of the air outlet device 100 of the present application in the top air outlet mode.
  • the air guide portion 141 rotates and moves counterclockwise in the drawing and moves to the air outlet area 142.
  • the passage of the air outlet 1422 between the grille 1421 is approximately 90 degrees vertical to the horizontal, because the initial airflow entering the air cavity 120a from the air inlet 120b is at an acute angle to the horizontal Set and face the lower part of the air outlet 120c, the air flow entering the air cavity 120a is guided through the inner wall of the longer air cavity 120a and the direction changes more, resulting in more energy consumption of the air flow, which is blown upward from the air outlet 120c
  • the wind speed is slower, which can achieve a windless effect.
  • the present application cites a solution in which the air guide assembly 140 moves along the inner surface of the air outlet 120, the angle between the surface of the grille 1421 and the horizontal plane is between 0 degrees and 90 degrees, However, for the adjustment of other air outlet angles, based on the solution of the present application, it can also be achieved by increasing the opening angle of the air outlet 120c, or the orientation of the entire air outlet 120 and then matching the degree of rotation of the air guiding assembly 140.
  • the air guide 141 is The front and rear sides of the moving direction are provided with shielding areas 143, and the air outlet area 142 is located between the two shielding areas 143.
  • the area of the air outlet area 142 of the present application and the area of the air outlet 120c are approximately the same.
  • the air outlet device 100 is in the top air outlet mode and the front air outlet mode among the above three modes.
  • the opening areas of the air outlet 120c close to the bottom and the top respectively are blocked by the blocking area 143 (refer to FIGS. 4 and 6), so that the air outlet angle is more accurate.
  • the air outlet device 100 further includes a driving member 150 installed on the outside of the end cover 122.
  • the air guiding assembly 140 further includes a connecting portion 144 connected to the air guiding portion 141 At the end of the drive member 150, the drive shaft is connected to the connecting portion 144.
  • the driving member 150 of the present application is a driving motor, wherein the air guide device is connected to the inner wall of the end cover 122 through a pivot on the connecting portion 144, and the driving motor is connected to the pivot on the connecting portion 144 in transmission, thereby controlling the driving motor through a program The angle of rotation to achieve the automatic driving of the wind guide assembly 140 to stop at the required position in the above-mentioned mode.
  • the installation position of the driving member 150 of the present application can also be fixed by means of a structure other than the air outlet device 100.
  • the air outlet device 100 of the present application has the function of realizing the above three air outlet modes.
  • at least two air outlets 120c on the air outlet 120 may be provided.
  • the tuyere 120c is correspondingly provided with a wind guide assembly 140.
  • the air outlets 120c shown in the drawings are side-by-side solutions. It is understandable that the number of air outlets 120c can be three or more, and they can be side by side, side by side, side by side, or a combination of multiple arrangements, and
  • Each air guide assembly 140 can be driven and controlled by the driving member 150 alone, thereby meeting more air outlet angle adjustment requirements, or realizing a new mixed air outlet function through different air outlet modes of different air outlets 120c.
  • the present application also proposes an air conditioning device 500.
  • the air conditioning device 500 includes an air supply fan and an air outlet device 100, and the outlet of the air supply fan communicates with the air inlet 120b.
  • the specific structure of the air outlet device 100 refers to the above-mentioned embodiments. Since the air outlet device 100 adopts all the technical solutions of all the above-mentioned embodiments, it has at least all the beneficial effects brought by the technical solutions of the above-mentioned embodiments. This will not be repeated one by one.
  • the air conditioning equipment 500 may be a mobile air conditioner, an integrated or integral air conditioner, or an air purifier, etc., wherein Figures 7 and 8 are examples of mobile air conditioners for the air conditioning equipment 500 having the above-mentioned air outlet device 100. Description.
  • FIG. 7 is a three-dimensional structural diagram of the air conditioning device 500 as a mobile air conditioner
  • FIG. 8 is a schematic diagram of the internal structure of the air conditioning device 500 after the housing 510 is removed.
  • the air conditioning device 500 includes a housing 510 and a central partition plate disposed in the housing 510 Components (not labeled).
  • the middle partition component divides the housing 510 into an upper space and a lower space.
  • the upper space is equipped with an air outlet device 100, a heat exchanger 530 and a blower, in order to simplify the internal structure of the entire mobile air conditioner and save
  • the air duct housing 110 of the air outlet device 100 is also provided with a mounting part 130 integrated with the air outlet 120.
  • the air blower is mounted on the mounting part 130, and the heat exchanger 530 abuts against the mounting part 130. And the cover is arranged on the inlet side of the blower. It can be seen from FIG. 8 that the air outlet 120 in the air outlet device 100 extends from the opening at the top of the housing 510, and the top of the housing 510 is provided with an inclined surface to avoid interference with the air outlet of the air outlet device 100.
  • the mobile air conditioner with the air outlet device 100 can provide users with the modes of front air outlet, oblique air outlet, and top air outlet in the above content, which can provide users with a good Use experience.

Abstract

一种出风装置(100)和空气调节设备(500),其中出风装置(100)包括:风道壳体(110),该风道壳体(110)包括内部形成有风腔(120a)的出风部(120),出风部(120)一侧设置有连通风腔(120a)的进风口(120b),出风部(120)的另一侧设置有连通风腔(120a)的出风口(120c),和导风组件(140),导风组件(140)具有出风孔(1422),导风组件(140)活动安装于出风部(120)并位于出风口(120c)处,导风组件(140)贴近出风部(120)的表面移动,以改变经由出风口(120c)吹出的风的角度。该出风装置(100)风阻小,出风效果好。

Description

出风装置和空气调节设备
本申请要求2019年11月29日申请的申请号为201911218774.0、名称为“出风装置和空气调节设备”、及申请号为201922132569.4、名称为“出风装置和空气调节设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及空调技术领域,特别涉及一种出风装置和具有该出风装置的空气调节设备。
背景技术
空气调节设备现在已是人们家庭生活中比较重要的电器,现有的空气调节设备在出风角度调节时,通常是通过百叶的摆动以将风导向不同的方向,而现有的百叶摆动的出风角度调节方式,容易造成较大的风阻。
发明概述
技术问题
问题的解决方案
技术解决方案
本申请的主要目的是提供一种出风装置,旨在减小空气调节设备出风过程中的风阻。
为实现上述目的,本申请提出的出风装置,包括:
风道壳体,所述风道壳体包括内部形成有风腔的出风部,所述出风部一侧设置有连通所述风腔的进风口,所述出风部的另一侧设置有连通所述风腔的出风口;和
导风组件,所述导风组件具有出风孔,所述导风组件活动安装于所述出风部并位于所述出风口处,所述导风组件贴近所述出风部的表面并可沿着所述出风部的表面移动,以改变经由所述出风口吹出的风的角度。
可选地,所述导风组件收容于所述风腔内并沿所述出风部开设有所述出风口的内表面移动。
可选地,所述出风部上的出风口设置有至少两个,一所述出风口对应设置有一所述导风组件。
可选地,所述出风部包括横截面呈拱形的弧形罩壳、封盖所述弧形罩壳两端的端盖以及封盖所述弧形罩壳侧部开口的底板,所述出风口开设于所述弧形罩壳,所述进风口开设于所述底板,所述导风组件包括面向所述出风口的导风部,所述导风部开设有所述出风孔,所述导风部的横截面形状为与所述弧形罩壳的形状相适配的弧形。
可选地,所述导风部包括遮挡区和出风区,所述出风孔开设于所述出风区。
可选地,所述出风区设置有格栅以形成所述出风孔,所述格栅于所述出风口的长度方向延伸,当所述导风组件沿着所述出风部的表面移动时,由所述进风口进入所述风腔的气流方向与所述底板的板面呈锐角设置,所述格栅的板面与水平面之间的夹角在0度到90度之间。
可选地,所述导风部于其移动方向的前后两侧均设置有遮挡区,所述出风区位于两所述遮挡区之间。
可选地,所述出风装置还包括驱动件,所述驱动件安装于所述端盖的外侧,所述导风组件还包括连接部,所述连接部连接于所述导风部的端部,所述驱动件的驱动轴连接所述连接部。
本申请还提出一种空气调节设备,包括送风风机,还包括如上所述的出风装置,所述送风风机的出口与所述进风口连通。
可选地,所述风道壳体还包括与所述出风部为一体结构的安装部,所述送风风机安装于所述安装部。
本申请技术方案通过在出风部内形成风腔,由进风口进入的气流在风腔内聚集,并且设置导风组件,导风组件为贴近出风部的表面设置,通过导风组件沿着出风部的表面移动,使得出风孔也相对位置改变导致由出风口吹出的风的角度改变,从而可以适应人们不同出风角度的需求,而由于导风组件为贴近出风部的表面并沿着出风部的表面,使得导风组件在导风过程中相当于出风部的壳体的一部分,则蓄积在风腔内的气流所受到的导风组件的风阻非常小,实现出风量最大化。
发明的有益效果
对附图的简要说明
附图说明
为了更清楚地说明本申请实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图示出的结构获得其他的附图。
图1为本申请出风装置的一实施例的立体结构示意图;
图2为图1中出风装置的爆炸结构示意图;
图3为本申请出风装置中的导风组件的立体结构示意图;
图4为本申请出风装置处于前出风模式的剖视图;
图5为本申请出风装置处于斜出风模式的剖视图;
图6为本申请出风装置处于顶出风模式的剖视图;
图7为本申请空气调节设备的立体结构示意图,图中去除接管结构和换热器前的滤网。
图8为图7中空气调节设备的内部结构示意图,图中去除外壳。
附图标号说明:
[Table 1]
标号 名称 标号 名称
500 空气调节设备 120b 进风口
510 外壳 120c 出风口
520 换热器 130 安装部
530 排风风轮 140 导风组件
100 出风装置 141 导风部
110 风道壳体 142 出风区
120 出风部 1421 格栅
121 弧形罩壳 1422 出风孔
122 端盖 143 遮挡区
123 底板 144 连接部
120a 风腔 150 驱动件
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
本申请的实施方式
下面将结合本申请实施例中的附图,对本申请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申请的一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
需要说明,本申请实施例中所有方向性指示(诸如上、下、左、右、前、后......)仅用于解释在某一特定姿态(如附图所示)下各部件之间的相对位置关系、运动情况等,如果该特定姿态发生改变时,则该方向性指示也相应地随之改变。
在本申请中,除非另有明确的规定和限定,术语“连接”、“固定”等应做广义理解,例如,“固定”可以是固定连接,也可以是可拆卸连接,或成一体;可以是机械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连, 可以是两个元件内部的连通或两个元件的相互作用关系,除非另有明确的限定。对于本领域的普通技术人员而言,可以根据具体情况理解上述术语在本申请中的具体含义。
另外,在本申请中如涉及“第一”、“第二”等的描述仅用于描述目的,而不能理解为指示或暗示其相对重要性或者隐含指明所指示的技术特征的数量。由此,限定有“第一”、“第二”的特征可以明示或者隐含地包括至少一个该特征。另外,各个实施例之间的技术方案可以相互结合,但是必须是以本领域普通技术人员能够实现为基础,当技术方案的结合出现相互矛盾或无法实现时应当认为这种技术方案的结合不存在,也不在本申请要求的保护范围之内。
本申请提出一种出风装置100。
请结合参照图1至图3,在本申请实施例中,该出风装置100,包括风道壳体110和导风组件140,其中,风道壳体110包括内部形成有风腔120a的出风部120,出风部120一侧设置有连通风腔120a的进风口120b,出风部120的另一侧设置有连通风腔120a的出风口120c,导风组件140设置有出风孔1422,导风组件140活动安装于出风部120并位于出风口120c处,导风组件140贴近出风部120的表面并可沿着出风部120的表面移动,以改变经由出风口120c吹出的角度。
本申请的出风装置100应用于空气调节设备500,其中出风部120整体沿着一条轴线延伸呈长条形状,进风口120b和出风口120c也在出风部120的长度方向延伸呈一个长形口状,导风组件140也为长形,而与整个出风部120进行适配从而可以干预整个出风口120c的出风角度。导风组件140贴近出风部120的表面并可沿着出风部120的表面移动,即导风组件140可以相对于出风部120的表面滑动,并且,导风组件140可以设置在出风部120的内侧或者出风部120的外侧,即导风组件140可以相对于出风部120的内表面或者外表面滑动。其中驱动导风组件140滑动的方式可以是手动方式或者自动驱动方式,在手动驱动时,可以在导风组件140和出风部120形成例如滑轨和滑槽配合的滑动导向结构的情况下,在导风组件140上设置有拨杆进行拨动其转动,或者在导风组件140和出风部120形成转轴连接的情况下,通过摇柄或者旋钮带动导风组件140相对于导风部141滑动。本申请的进风口120b为对应连接空气调节设备500的中风机的出口或者风道的出口,气 流由进风口120b进入风腔120a并在风腔120a内蓄积,其中导风组件140上设置有出风孔1422,在导风组件140移动过程中,出风孔1422相对于出风口120c或者进风口120b的位置势必产生变化,因而会导致经由出风口120c吹出的角度改变,由出风口120c排出的气流可以实现室内降温,室内净化,或者其他需要的场所场景。
本申请技术方案通过在出风部120内形成风腔120a,由进风口120b进入的气流在风腔120a内聚集,并且设置导风组件140,导风组件140为贴近出风部120的表面设置,通过导风组件140沿着出风部120的表面移动,使得出风孔1422也相对位置改变导致由出风口120c吹出的风的角度改变,从而可以适应人们不同出风角度的需求,而由于导风组件140为贴近出风部120的表面并沿着出风部120的表面,使得导风组件140在导风过程中相当于出风部120的壳体的一部分,则蓄积在风腔120a内的气流所受到的导风组件140的风阻非常小,实现出风量最大化。
本申请将导风组件140收容于风腔120a内并沿出风部120开设有出风口120c的内表面移动。本申请将导风组件140内置于出风部120内,使得导风组件140在导风过程中作为出风部120的内壁面,一方面内置的结构使得灰尘等杂物不易在导风组件140和出风部120之间蓄积,另一方面,内置的结构也使得具有本申请结构的空气调节设备500外形一体性更高更美观。可以理解的是,将导风组件140设置在出风部120的外侧也是可以的,可以使得导风组件140的拆装更容易。
请再次结合参照图1至图3,出风部120包括横截面呈拱形的弧形罩壳121、封盖弧形罩壳121两端的端盖122以及封盖弧形罩壳121侧部开口的底板123,出风口120c开设于弧形罩壳121,进风口120b开设于底板123,导风组件140包括面向所述出风口120c的导风部141,导风部141开设有出风孔1422,导风部141的横截面形状为与弧形罩壳121的形状相适配的弧形。
本申请弧形罩壳121的横截面的圆弧角度大致为270度,而出风口120c的开口角度大致在90度到100度,其中弧形罩壳121、端盖122以及底板123围合形成风腔120a,出风部120整体形状为圆柱沿轴向削掉一部分后的形状,从而风腔120a也具有可使得气流回旋内壁。整个出风部120位于出风装置100的端部,当出风装置100为竖直放置时,出风部120位于顶端。在实际使用过程中,可以知道,由底板 123上的进风口120b吹出的气流将冲向弧形罩壳121,当气流冲击到弧形罩壳121的内壁时,气流被弧形罩壳121的内壁引导至出风孔1422并从出风口120c吹出,可以理解的时,当气流被弧形罩壳121的内壁引导距离越少气流流向改变越少的情况下,气流由出风孔1422吹出的流速越快,显然由于导风组件140的导风部141贴近弧形罩壳121的内壁,可以当做是弧形罩壳121的内壁的一部分,因此气流被导向时过程是平滑的,相较于百叶设置在出风口120c再次阻挡气流而改变气流方向的方式,本申请的风阻会相对小很多,出风量会大很多。需要说明的是,出风部120的形状构造除了以上罗列的实施例外,还可以是其他形状构造,例如椭圆形状、方形或者其他异性形状。
进一步地,在空气调节设备500使用过程中,人们对出风量的需要会因为地域或者使用时段的不同而有不同,比如在想达到快速降温的情况下,需要有大风量大风速,而想要温和的空气调节时,则需要出风量变小,为此本申请导风部141包括遮挡区143和出风区142,当风量需求较大的时候可以将出风区142对应出风口120c,而想要出风量小的时候,可以将遮挡区143覆盖部分出风口120c。
进一步地,本申请在能实现出风量的控制的情况下还可以实现出风角度的控制,请结合参照图4至图6,其中出风区142设置有格栅1421以形成出风孔1422,格栅1421于出风口120c的长度方向延伸,当导风组件140沿着出风部120的内表面移动时,格栅1421的板面与水平面之间的夹角在0度到90度之间。
本申请格栅1421设置有多条,并且均匀间隔设置,每个格栅1421呈扁平的长条状并具有两个相对的表面,相邻格栅1421的两个相对表面之间形成有长条形的出风孔1422,并且将由进风口120b进入风腔120a的初始气流的方向与底板123的板面呈锐角设置(具体可以通过安装在风道壳体110上的蜗壳和蜗舌的角度调整实现),由此可以实现导风组件140沿着出风部120的表面移动时实现前出风、斜出风以及顶出风模式。具体实现过程如下:
请参照图4,图4为本申请出风装置100处于前出风模式时的剖视图,本申请出风装置100实际使用过程中竖直放置,此时,弧形罩壳121将为倾斜朝向使用者的状态,使得出风口120c在使用时,开口朝向是与水平面呈大致40度到50度,而导风部141沿着附图中顺时针方向旋转移动,出风区142大致位于出风口120c的下 部,使得格栅1421的表面与水平面平行,这时格栅1421之间的出风孔1422的通道也是水平设置,并且由于进风口120b进入风腔120a的初始气流呈锐角设置并朝向出风口120c的下部,此时大部分气流可以直接从水平状态的出风孔1422的通道向前吹出(附图4中的箭头为吹出的气流方向),形成出风装置100外部正前方的风量较大且风速较大的气流,可以到达快速的温度调节的效果。
请参照图5,图5为本申请出风装置100处于斜出风模式时的剖视图,在此模式下,导风部141沿着附图中逆时针方向旋转移动,此时出风区142大致位于出风口120c的中部,此时格栅1421之间的出风孔1422的通道为与水平面呈大致45度至60度之间的倾斜状态,由于从进风口120b进入风腔120a的初始气流与底板123的板面呈锐角设置并朝向出风口120c的下部,因此气流将会被风腔120a的内壁导向倾斜状态下的出风孔1422,由此吹出倾斜状态下的气流(如附图5中的箭头方向所指代的气流)。
请参照图6,图6为本申请出风装置100处于顶出风模式时的剖视图,在此模式下,导风部141沿着附图中逆时针方向旋转移动并移动到出风区142大致位于出风口120c的顶部位置,此时格栅1421之间的出风孔1422的通道为与水平面呈大致90度的竖直状态,由于从进风口120b进入风腔120a的初始气流与水平面呈锐角设置并朝向出风口120c的下部,则进入风腔120a后的气流再经过较长的风腔120a内壁引导的情况下并且方向改变较多,导致气流能量消耗较多,这由出风口120c向上吹出的风流速较慢,可以到达无风感的出风效果。
需要说明的是,虽然本申请列举了导风组件140沿着出风部120的内表面移动时,格栅1421的板面与水平面之间的夹角在0度到90度之间的方案,但是为了其他出风角度的调节,在本申请方案的基础上,也可以通过增加出风口120c的开口角度,或者整个出风部120的朝向然后配合导风组件140的旋转程度来实现。
本申请在实现上述三种出风模式的基础上,而为了使得这三种出风模式的出风角度更准确,还进行了以下设计:请结合参照图3至图6,导风部141于其移动方向的前后两侧均设置有遮挡区143,出风区142位于两遮挡区143之间。本申请的出风区142的面积出风口120c的面积大致相当,通过两侧遮挡区143的设置,则出风装置100处于上述三种模式中的顶出风模式和前出风模式时,出风口120c在分 别相应靠近底部和顶部的开口区域会被遮挡区143所遮挡(可参照图4和图6),由此出风角度更为精准。
本申请为了实现出风装置100在上述三个出风模式中自动控制导风组件140,进行了以下结构设计。请再次结合参照图1至图3,出风装置100还包括驱动件150,驱动件150安装于端盖122的外侧,导风组件140还包括连接部144,连接部144连接于导风部141的端部,驱动件150的驱动轴连接连接部144。本申请驱动件150为驱动电机,其中导风装置通过连接部144上的枢轴转动连接于端盖122的内壁,驱动电机与连接部144上的枢轴传动连接,由此通过程序控制驱动电机的旋转角度来实现自动驱动导风组件140停止在上述模式的所需位置。当然本申请的驱动件150安装位置,也可以借助于出风装置100以外的结构进行固定。
本申请的出风装置100在具有实现上述三种出风模式的功能的基础上,在其他实施例中,还可以在出风部120上的出风口120c设置有至少两个,一所述出风口120c对应设置有一导风组件140。其中附图中展示出的出风口120c为左右并排的方案,可以理解的,出风口120c的数量可以三个或者三个以上,并且可以是左右并排或者前后并排或者多种排列方式的组合,并且每一个导风组件140可以单独通过驱动件150驱动控制,由此可以满足更多出风角度调节需求,或者通过不同的出风口120c的不同出风模式实现新的混和出风功能。
请结合参照图7和图8,本申请还提出一种空气调节设备500,该空气调节设备500包括送风风机和出风装置100,送风风机的出口与进风口120b连通。其中该出风装置100的具体结构参照上述实施例,由于本该出风装置100采用了上述所有实施例的全部技术方案,因此至少具有上述实施例的技术方案所带来的所有有益效果,在此不再一一赘述。其中,空气调节设备500可以是移动空调、一体式或者整体式空调、或者空气净化器等,其中图7和图8是以移动空调为例对具有上述出风装置100的空气调节设备500进行举例说明。
图7是空气调节设备500为移动空调的立体结构示意图,图8是空气调节设备500去除外壳510后的内部结构示意图,其中空气调节设备500包括外壳510,以及设置在外壳510内的中隔板组件(未标示),中隔板组件将外壳510分隔成上层空间和下层空间,其中上层空间安装有出风装置100、换热器530以及送风风机, 为了简化整个移动空调的内部结构并节约空间,本申请在出风装置100中风道壳体110还设置有与出风部120为一体结构的安装部130,送风风机安装于安装部130,而换热器530抵靠于安装部130并罩设在送风风机的入口侧。由图8中可以看到,出风装置100中的出风部120由外壳510顶部的开口伸出,并且外壳510顶部设置有倾斜面以避免对出风装置100的出风进行干扰。当实际使用时,这具有该出风装置100的移动空调可以为使用者提供上述内容中的前出风、斜出风以及顶出风多个出风角度的模式,可为使用者提供良好的使用体验。
以上所述仅为本申请的可选实施例,并非因此限制本申请的专利范围,凡是在本申请的发明构思下,利用本申请说明书及附图内容所作的等效结构变换,或直接/间接运用在其他相关的技术领域均包括在本申请的专利保护范围内。

Claims (10)

  1. 一种出风装置,其中,包括:
    风道壳体,所述风道壳体包括内部形成有风腔的出风部,所述出风部一侧设置有连通所述风腔的进风口,所述出风部的另一侧设置有连通所述风腔的出风口;和
    导风组件,所述导风组件具有出风孔,所述导风组件活动安装于所述出风部并位于所述出风口处,所述导风组件贴近所述出风部的表面并可沿着所述出风部的表面移动,以改变经由所述出风口吹出的风的角度。
  2. 如权利要求1所述的出风装置,其中,所述导风组件收容于所述风腔内并沿所述出风部开设有所述出风口的内表面移动。
  3. 如权利要求1所述的出风装置,其中,所述出风部上的出风口设置有至少两个,一所述出风口对应设置有一所述导风组件。
  4. 如权利要求1至3中任意一项所述的出风装置,其中,所述出风部包括横截面呈拱形的弧形罩壳、封盖所述弧形罩壳两端的端盖以及封盖所述弧形罩壳侧部开口的底板,所述出风口开设于所述弧形罩壳,所述进风口开设于所述底板,所述导风组件包括面向所述出风口的导风部,所述导风部开设有所述出风孔,所述导风部的横截面形状为与所述弧形罩壳的形状相适配的弧形。
  5. 如权利要求4所述的出风装置,其中,所述导风部包括遮挡区和出风区,所述出风孔开设于所述出风区。
  6. 如权利要求5所述的出风装置,其中,所述出风区设置有格栅以形成所述出风孔,所述格栅于所述出风口的长度方向延伸,由所述进风口进入所述风腔的气流方向与所述底板的板面呈锐角设置,当所述导风组件沿着所述出风部的表面移动时,所述格栅的板面与水平面之间的夹角在0度到90度之间。
  7. 如权利要求5所述的出风装置,其中,所述导风部于其移动方向的前后两侧均设置有遮挡区,所述出风区位于两所述遮挡区之间。
  8. 如权利要求4所述的出风装置,其中,所述出风装置还包括驱动件,所述驱动件安装于所述端盖的外侧,所述导风组件还包括连接部,所述连接部连接于所述导风部的端部,所述驱动件的驱动轴连接所述连接部。
  9. 一种空气调节设备,包括送风风机,其中,还包括如权利要求1至8中任意一项所述的出风装置,所述送风风机的出口与所述进风口连通。
  10. 如权利要求9所述的空气调节设备,其中,所述风道壳体还包括与所述出风部为一体结构的安装部,所述送风风机安装于所述安装部。
PCT/CN2020/084376 2019-11-29 2020-04-13 出风装置和空气调节设备 WO2021103387A1 (zh)

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