Air purifiers, air purification methods, air purification systems
The air purifier design with a close intake and outlet port and diffusion member prevents viral transmission by creating a localized purification zone, addressing the inefficiencies of conventional purifiers.
Patent Information
- Application Number
- JP2022557333
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-16
- Filing Date
- 2021-09-27
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2041-09-27
AI Technical Summary
Conventional air purifiers are ineffective in preventing person-to-person transmission of viruses and droplets due to the wide distribution of purified air, which can infect individuals downwind of an infected person.
An air purifier design with an intake port and outlet port positioned close together, utilizing a diffusion member to disperse air over a wide angle, ensuring air circulation between individuals, thereby preventing the spread of viruses.
The design effectively prevents person-to-person viral transmission by creating a localized air purification zone around the purifier, ensuring purified air circulates between individuals without spreading to others.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an air purifier, an air purification method, and an air purification system. [Background technology]
[0002] An air purifier is a device that removes dust, pollen, viruses, etc. from the air to supply clean air. Known types include those that draw in air and pass it through a filter to blow out clean air, and those that add ions to the purified air to enhance the cleaning effect.
[0003] Generally, the technical challenge for air purifiers is to purify a wide space with a single air purifier. Patent Document 1 discloses a structure suitable for drawing in polluted air over a wide area. Patent Document 2 discloses a structure capable of distributing purified air over a wide area. Non-Patent Document 1 shows the concept of creating a flow of air circulating throughout a room by blowing and drawing in air, thereby removing dust from a distance. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 6724220 [Patent Document 2] Japanese Patent Application Laid-Open No. 2017-133829 [Non-patent literature]
[0005] [Non-Patent Document 1] SHARP Air Purifier Brochure (KC-J50 / FU-J50 / FU-J30) Summary of the Invention [Problem to be solved by the invention]
[0006] In 2020, the spread of the novel coronavirus became a global social issue. Epidemics of infectious diseases have occurred many times, most notably the plague 100 years ago, and the risk of infectious disease outbreaks is increasing every year in today's globalized world with increasing traffic of people and goods. Like the influenza virus, the novel coronavirus is believed to be transmitted through droplets produced by sneezing or other such events. Because tiny droplets travel with air currents, keeping the air clean is an effective way to prevent infection. For this reason, there is a demand for air purifiers that can effectively remove droplets and viruses floating in the air.
[0007] As mentioned above, conventional air purifiers are generally suited to purifying a wide area indoors, and the purified air is blown out with great force and reaches far away. The air blown out from the air purifier returns to the air purifier, entraining the air in the room, thereby removing droplets and viruses and purifying the air over a wide area.
[0008] However, with conventional air purifiers that purify a wide area indoors, there is a risk that droplets and viruses emitted by an infected person may reach and infect people downwind of the infected person when multiple people gather in the same room. In other words, conventional air purifiers have the problem of not being suitable for preventing person-to-person transmission of viruses.
[0009] The present invention has been made in consideration of the above problems, and aims to provide an air purifier, an air purification method, and an air purification system that are suitable for preventing person-to-person viral infection. [Means for solving the problem]
[0010] In order to solve the above problems, the present invention provides: a housing provided with an intake port for drawing in outside air; a filter housed in the housing for purifying air; a blower member housed in the housing for blowing out air; a drive unit for rotating the air blower member; a diffusion member provided in the housing as an outlet for blowing out air purified by the filter to the outside, The housing is cylindrical, has the intake port on a side surface, and houses the filter, which is cylindrical and concentric with the housing and has a smaller diameter than the housing. The air blowing member is attached to the upper end of the filter. Height By providing the diffusion member at the upper end of the housing, the intake port and the outlet port are adjacent to each other. They are placed close together. , To provide an air purifier characterized in that air sucked in from the intake port passes through the filter and is purified, then passes through the inside of the filter and is guided to the air blowing member, sent to the diffusion member by the air blowing member, diffused by the diffusion member, blown out, and circulated to the intake port.
[0011] The present invention also provides The air purifying method is characterized in that the air purifier is placed between people. The present invention also provides An air purifying system is provided in which a plurality of the above air purifiers are distributed. 。 [Effects of the Invention]
[0012] According to the present invention, it is possible to provide an air purifier, an air purification method, and an air purification system that are suitable for preventing person-to-person viral infection. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a cross-sectional view showing the configuration of an air purifier according to a first embodiment of the present invention. [Figure 2] 2A and 2B show the configuration of a diffusion member of the air purifier according to the first embodiment, with FIG. 2A being an enlarged cross-sectional view of a hole in the diffusion member, and FIG. 2B being an enlarged partial view of the inner surface of the diffusion member. [Figure 3] FIG. 3A is a cross-sectional view showing the configuration of an air purifier according to a second embodiment of the present invention, and FIG. 3B is a partially enlarged view of FIG. 3A. [Figure 4] FIG. 4A is a diagram showing the inside of the housing of the air purifier according to the second embodiment as viewed from above, and FIG. 4B is a diagram showing a modified example of the support plate that supports the diffuser guide in the second embodiment. [Figure 5] FIG. 5 is a cross-sectional view showing a modified example of the housing in the second embodiment. [Figure 6] FIG. 6A is a diagram showing an air purification system according to a third embodiment of the present invention, and FIG. 6B is a diagram showing a modified example of the air purification system according to the third embodiment. [Figure 7] FIG. 7A is a cross-sectional view showing the configuration of an air purifier according to a fourth embodiment of the present invention, and FIG. 7B is a partially enlarged view of FIG. 7A. [Figure 8] FIG. 8 is a top view of the inside of the diffusion member of the air purifier according to the fourth embodiment. [Figure 9] FIG. 9A is a cross-sectional view showing the configuration of an air purifier according to a fifth embodiment of the present invention, and FIG. 9B is a view of the inside of a diffusion member of the air purifier according to the fifth embodiment as seen from above. [Figure 10] FIG. 10A is a cross-sectional view showing the configuration of an air purifier according to a sixth embodiment of the present invention, and FIG. 10B is a view of the inside of the housing of the air purifier according to the sixth embodiment as seen from above. DETAILED DESCRIPTION OF THE INVENTION
[0014] The object of the present invention is achieved by an air purifier having a function of purifying the air mainly in the vicinity of the air purifier, which is achieved by dispersing air over a wide angle from the air outlet of the air purifier and by placing the air intake close to the air outlet.
[0015] The conceptual design requirements for an air purifier with such functionality are explained in detail below. An air purifier is a device that draws in air, cleans it with a filter, and then blows it out. The filter removes only a small amount of impurities, so the amount of air blown out from the air purifier is essentially equal to the amount of air drawn in. If the air blowing and suction points in an air purifier are simplified as a single point each, the air flow outside the air purifier can be modeled as a potential flow from the blowing point to the suction point. In this potential flow, when the radius (the distance from the center of gravity of the two points) becomes sufficiently large compared to the distance between the blowing and suction points, the velocity at the radial position decreases inversely proportional to the cube of the radius. When the radius becomes small and roughly equal to or less than the distance between the blowing and suction points, a near-field occurs, where large velocities are generated due to the influence of the positions of the blowing and suction points. Assuming a finite room, the first design requirement is to minimize the near-field by placing the suction and blowing ports as close together as possible. The second design requirement is to prevent jets from forming at the outlet. When air is blown out into a large space, it often becomes a jet that travels in a straight line in a specific direction, reaching farther than the previous potential flow. To prevent jets from forming, the air is blown out by diffusing the flow over a wide angle.
[0016] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An air purifier according to each embodiment of the present invention will be described with reference to the accompanying drawings. (First embodiment) FIG. 1 is a cross-sectional view showing the configuration of an air purifier according to a first embodiment of the present invention. The air purifier 1 shown in FIG. 1 comprises a filter 2, a fan 3, a drive unit 4, a partition member 5, a housing 6 that houses these components, and a diffusion member 7.
[0017] The housing 6 has a cylindrical shape with one end closed, and is made up of a side wall 6a and a bottom wall 6b. A large number of micro-holes 8 penetrating the side wall 6a are formed over the entire surface of the side wall 6a, allowing air outside the housing 6 to be drawn in.
[0018] The filter 2 has a cylindrical shape with a smaller diameter than the housing 6, and is arranged concentrically with the side wall 6a inside the housing 6. The filter 2 is made of a porous material such as bundled glass fibers, and purifies the air, i.e., removes dust, pollen, viruses, etc. from the air. However, the type and configuration of the filter 2 are not limited to this.
[0019] The fan 3 blows the air inside the housing 6 upward, and is disposed near the upper end of the filter 2.
[0020] The drive unit 4 comprises a motor 10 that drives the fan 3 via a rotating shaft 9, and a power supply 11 that supplies power to the motor 10. The drive unit 4 is disposed inside the filter 2 in the housing 6, and the rotating shaft 9 of the fan 3, the filter 2, and the side wall 6a are concentric. The power supply 11 may be either a power outlet type or a battery type.
[0021] The partition member 5 is made of an annular plate member that extends horizontally from the upper end of the filter 2 to the side wall 6a of the housing 6 and closes from above the space formed between the filter 2 and the side wall 6a. The partition member 5 prevents air that has passed through the filter 2 and air that has not passed through the filter 2 from mixing together inside the housing 6.
[0022] The diffusion member 7 is made of a porous material with a hollow hemispherical shape. Numerous holes 12 are formed throughout the entire surface of the diffusion member 7. As shown in FIGS. 2(a) and 2(b), the holes 12 are hexagonal through-holes tapering from the outer surface 7a of the diffusion member 7 to the inner surface 7b, and are arranged in a honeycomb pattern on the diffusion member 7. A diffusion member 7 having such a configuration allows the air inside the housing 6, delivered by the fan 3, to be blown out in a uniform flow rate in the direction perpendicular to the curved surface of the diffusion member 7. To further enhance this effect, a porous resistor may be further provided on the inner surface 7b of the diffusion member 7. This configuration of the diffusion member 7 is merely an example, and is not intended to be limiting.
[0023] With the above configuration, in the air purifier 1 according to this embodiment, the fan 3 is rotated by the drive unit 4, and air around the air purifier 1 is drawn in through the side wall 6a of the housing 6. This air passes through the filter 2, where dust, pollen, viruses, etc. are removed, i.e., the air is purified. The purified air is then sent upward by the fan 3, diffused through the diffusion member 7, and blown out to the outside of the air purifier 1. In this way, the air purifier 1 according to this embodiment can purify the surrounding air.
[0024] In the air purifier 1 according to this embodiment, the side wall 6a of the housing 6 forms the air inlet, the diffusing member 7 forms the air outlet for purified air, and the air inlet and the air outlet are adjacent to each other. In other words, the air purifier 1 satisfies the first design requirement mentioned above, that is, that the air inlet and the air outlet be as close as possible to each other. Furthermore, in air purifier 1 according to this embodiment, purified air is blown out by diffusing member 7 with a uniform flow rate in the direction perpendicular to the curved surface of diffusing member 7. This satisfies the second design requirement of preventing the generation of a jet flow that moves straight in a specific direction at the blowout section.
[0025] By satisfying the first and second design requirements, the air purifier 1 according to this embodiment creates a circulation flow of air from the air outlet to the air inlet around the air purifier 1, i.e., it can purify the air in the vicinity of the air purifier 1. As a result, the air purifier 1 according to this embodiment can effectively prevent person-to-person transmission of viruses without allowing droplets or viruses generated by an infected person to reach and infect people downwind of the infected person, as is the case with conventional air purifiers. Specifically, for example, if the air purifier 1 is placed between two people, the air purifier 1 can locally purify the air between them, i.e., the two people are separated by purified air sandwiched between the air purifier 1, thereby effectively preventing viral transmission.
[0026] (Second embodiment) FIG. 3A is a cross-sectional view showing the configuration of an air purifier according to a second embodiment of the present invention. Regarding the air purifier 15 shown in FIG. 3A, the same components as those in the first embodiment are denoted by the same reference numerals and the description thereof will be omitted, and different components will be described. As shown in Figure 3A, the air purifier 15 of this embodiment comprises a filter 2, a support rod 13 for the filter 2, a housing 14 that houses the filter 2 and the support rod 13, a rotating shaft 9, a drive unit 4, and legs 16 that support the housing 14.
[0027] The housing 14 has a hollow, flattened spherical shape, and more specifically, a cross section along the central axis has a rounded rectangular shape consisting of two sides (upper and lower sides) of equal length and two semicircles. A large number of micro-holes 8 are formed in the central portions of the upper wall 14a and the lower wall 14b (the upper and lower surfaces of the flattened sphere) of the housing 14, penetrating the upper wall 14a and the lower wall 14b, making it possible to draw in air from outside the housing 14. In addition, a circular opening 17 for passing the rotation shaft 9 is also provided in the center of the lower wall 14b. The semicircular portion 14c (side surface of the flattened sphere) of the housing 14 has the same configuration as the diffusing member 7 of the first embodiment, and a large number of hexagonal holes 12 are formed in a honeycomb pattern over the entire surface of the semicircular portion 14c. The cylindrical filter 2 is rotatably housed in the housing 14 .
[0028] Ring-shaped plate members 18, 18 having the same diameter as the filter 2 are attached to the upper and lower ends of the filter 2. As shown in FIGS. 3A and 4A, the plate member 18 on the upper end side of the filter 2 is fixed to the rotary shaft 9 via four support rods 13, and the plate member 18 on the lower end side of the filter 2 is similarly fixed. With this configuration, when the rotary shaft 9 is rotated by the drive unit 4, the filter 2 can be rotated integrally with the rotary shaft 9. Then, centrifugal force generated by the rotation of the filter 2 can send the air inside the housing 14 radially outward.
[0029] The legs 16 are made up of four rod-shaped members extending downward from the bottom wall 14b of the housing 14. The drive unit 4 is located at the center of these four rod-shaped members. By using the legs 16 to support the housing 14, the legs 16 do not interfere with the air outside the housing 14 being sucked in through the micro-holes 8 in the bottom wall 14b of the housing 14.
[0030] As shown in FIG. 3B , a diffuser guide 19 for regulating the airflow within the housing 14 is provided between the filter 2 and the semicircular portion 14c of the housing 14. The diffuser guide 19 is made up of multiple plate-shaped circular members of different horizontal widths that are equally spaced vertically. Each plate-shaped circular member extends horizontally from the filter 2 toward the semicircular portion 14c of the housing 14, with its outer edge inclined so as to be approximately perpendicular to the semicircular portion 14c. The diffuser guide 19 configured in this manner allows the air purified by the filter 2 to be uniformly guided over the entire inner surface of the diffusing member 7.
[0031] 4A , each of the plate-shaped annular members constituting the diffuser guide 19 is supported by four support plates 21 that are installed between the upper wall 14a and the lower wall 14b of the housing 14. The four support plates 21 are arranged at a predetermined angle from a direction perpendicular to the outer peripheral surface of the filter 2 when viewed from above. In other words, the four support plates 21 are arranged obliquely so as to follow the direction in which air is blown out from the filter 2.
[0032] With the above configuration, in the air purifier 15 according to this embodiment, when the filter 2 is rotated by the drive unit 4, the air inside the filter 2 rotates together with the filter 2, generating centrifugal force, which creates a radially outward airflow from the inner surface of the filter 2 to the outer surface. As a result, air around the air purifier 15 is drawn in through the upper wall 14a and the lower wall 14b of the housing 14. This air is purified as it passes through the filter 2. The purified air is then guided by the diffuser guide 19 to the semicircular portion 14c of the housing 14. At this time, the purified air flow blown out from the rotating filter 2 has a swirling component, but the diffuser guide 19 adjusts the air flow rate so that it can be evenly guided to the semicircular portion 14c of the housing 14. The purified air that reaches the semicircular portion 14c is then diffused through the semicircular portion 14c and blown out of the air purifier 15. In this way, the air purifier 15 according to this embodiment can purify the surrounding air.
[0033] Here, in the air purifier 15 according to this embodiment, the upper wall 14a and the lower wall 14b of the housing 14 form the air intake port, and the semicircular portion 14c forms the air outlet port for purified air, and the air intake port and the air outlet port are adjacent to each other, thereby satisfying the first design requirement. Furthermore, in the air purifier 15 according to this embodiment, the purified air is blown out by the semicircular portion 14c with a uniform flow rate in the direction perpendicular to the curved surface of the semicircular portion 14c, and therefore the second design requirement is also satisfied.
[0034] The air purifier 15 according to this embodiment satisfies the first and second design requirements, and can achieve the same effects as the air purifier 1 according to the first embodiment. In particular, in air purifier 15 according to this embodiment, filter 2 serves as the air blowing mechanism, and therefore the volume occupied by the air blowing mechanism within housing 14 can be reduced compared to air purifier 1 according to the first embodiment, which includes fan 3 as the air blowing mechanism. Furthermore, typical air purifiers are designed to reduce the speed at which air passes through the filter to reduce pressure loss. In air purifier 15 according to this embodiment, purified air exiting the side of filter 2 is directly guided to semicircular portion 14c of housing 14, thereby maintaining a low air speed. Therefore, the first and second design requirements can be satisfactorily met.
[0035] In air purifier 15 according to the present embodiment, the configuration of support plate 21 that supports diffuser guide 19 inside housing 14 is not limited to that described above. For example, a wing-shaped support plate 22 shown in Fig. 4B can be used instead of support plate 21. Fig. 4B is a diagram showing a modified example of support plate 21 that supports diffuser guide 19 inside housing 14 in air purifier 15 according to the second embodiment.
[0036] 4B is disposed, similarly to support plate 21, at a predetermined angle from the direction perpendicular to the outer peripheral surface of filter 2 when viewed from above, so as to align with the direction in which air is blown out from filter 2. When viewed from rotation shaft 9, outer portion 22a of support plate 22 is bent radially outward and becomes thinner toward the outer tip. With this shape, support plate 22 can guide the air blown out from rotating filter 2 and remove the swirling component contained in the air.
[0037] Furthermore, inner portion 22b of support plate 22 has a blunt shape when viewed from rotation axis 9. In air purifier 15 according to this embodiment, by changing the rotation speed of filter 2, the volume of air blown out from filter 2 increases or decreases, and the direction in which air is blown out from filter 2 also changes. Even when the direction in which air is blown out from filter 2 changes, by making inner portion 22b of support plate 22 blunt in shape, it is possible to effectively prevent air from separating at inner portion 22b and impeding the flow of air.
[0038] It should be noted that in air purifier 15 according to this embodiment, the configuration of housing 14 is not limited to that described above. For example, housing 23 shown in Fig. 5 can be used instead of housing 14. Fig. 5 is a diagram showing a modified example of housing 14 in air purifier 15 according to the second embodiment.
[0039] The housing 23 shown in FIG. 5 is similar to the housing 14 described above, except that the radius of the circular bottom wall 14b, which is concentric with the upper wall 14a, is larger than the radius of the circular top wall 14a. Specifically, the cross section of the housing 23 along the central axis has a shape consisting of parallel upper and lower sides and two approximately semicircular shapes connecting these, with the lower side being longer than the upper side. Furthermore, no micro-holes 8 are formed in the lower wall 14b, and air outside the housing 23 can be drawn in only through the numerous micro-holes 8 in the upper wall 14a. A diffuser guide 19 (not shown) is also provided within the housing 6.
[0040] By using a housing 23 having such a configuration, the purified air blown out from the upper part of the semicircular portion 14c can circulate in a small circle, as shown in FIG. 5, and the purified air blown out from the lower part of the semicircular portion 14c can circulate in a large circle, thereby effectively purifying the air around the air purifier 15, especially the air above it.
[0041] (Third embodiment) FIG. 6A is a diagram showing an air purification system according to a third embodiment of the present invention. As shown in FIG. 6A, the air purification system 25 comprises a floor-mounted arrangement of multiple air purifiers 15 according to the second embodiment, which are capable of locally purifying the air around the air purifier. By distributing multiple air purifiers 15 among multiple people in a space where people gather, the air between them can be locally purified, separating them with purified air between them, sandwiched between the air purifiers 15. This prevents the generation of air circulation throughout the room, reducing the risk of viral infection for people downstream of an infected person. In other words, while conventional air purifiers that purify a wide area of a room often reach unoccupied ceilings and corners of a room, the air purification system 25 of this embodiment can purify only spaces where people gather. The air purifier 15 has an expanded airflow path, increasing the cross-sectional area of the path, ensuring a larger volume of air to be purified in spaces where people gather, thereby efficiently reducing person-to-person viral transmission.
[0042] In addition, in the air purification system 25 of this embodiment, it is of course possible to use multiple air purifiers 15 instead of the air purifier 1 of the first embodiment described above, or multiple air purifiers 30, 35, and 40 of the fourth to sixth embodiments described below.
[0043] Furthermore, in the air purification system 25 according to this embodiment, the arrangement of the multiple air purifiers 15 is not limited to being floor-standing. Fig. 6B is a diagram showing a modified example of the air purification system 25 according to the third embodiment. As shown in Fig. 6B, a configuration may be adopted in which a holding member 26 for suspending and holding the air purifier 15 is provided above a space where people gather, and multiple air purifiers 15 are suspended from this holding member 26, thereby achieving the same effect as the floor-standing arrangement described above.
[0044] (Fourth embodiment) FIG. 7A is a cross-sectional view showing the configuration of an air purifier according to a fourth embodiment of the present invention. Regarding the air purifier 30 shown in FIG. 7A, the same components as those in the first and second embodiments are denoted by the same reference numerals and description thereof will be omitted, and only the different components will be described. As shown in FIG. 7A, air purifier 30 comprises filter 2, centrifugal fan 31 arranged above filter 2, drive unit 32 that drives centrifugal fan 31, partition member 5, housing 6 that houses these, and diffusion member 7.
[0045] The air purifier 1 according to the first embodiment employs an axial-flow fan 3. In contrast, the air purifier 30 according to the present embodiment employs a centrifugal fan 31, which is advantageous for increasing air flow rate and reducing noise. The centrifugal fan 31 rotates as an annular rotor equipped with multiple blades 31a (see FIG. 8 ) arranged along the direction of rotation, causing the air between the blades 31a to rotate and generate centrifugal force, inducing a flow of air from the inside to the outside of the rotor. A gap 33 is provided between the centrifugal fan 31 and the partition member 5 to prevent the rotating centrifugal fan 31 from contacting the partition member 5.
[0046] Like the drive unit 4 in the first embodiment, the drive unit 32 comprises a motor that drives the centrifugal fan 31 and a power supply that supplies power to the motor. The drive unit 32 is disposed above the centrifugal fan 31, and the center of rotation of the centrifugal fan 31, the filter 2, and the side wall 6a are concentric.
[0047] The diffusion member 7 has a hollow, flattened spherical shape, similar to the housing 14 in the second embodiment. Unlike the second embodiment, the upper surface of the diffusion member 7 is closed by an airtight upper wall 34, and a drive unit 32 is fixed to the inner surface of the upper wall 34. The lower surface of the diffusion member 7 is open, and the diffusion member 7 is attached to the upper end of the housing 6.
[0048] As shown in Fig. 7B, a diffuser guide 19 similar to that of the second embodiment is provided inside the diffusion member 7 between the centrifugal fan 31 and the semicircular portion 7c of the diffusion member 7. As shown in Fig. 8, the diffuser guide 19 is supported by the wing-shaped support plate 22 shown in Fig. 4B described above as a modification of the second embodiment.
[0049] With the above configuration, in the air purifier 30 according to this embodiment, the centrifugal fan 31 is rotated by the drive unit 32, and air around the air purifier 30 is drawn in through the side wall 6a of the housing 6. This air is purified by passing through the filter 2. The purified air (hereinafter also referred to as "purified air") is then guided upward by the centrifugal fan 31 and sent out from the inside to the outside of the centrifugal fan 31, i.e., radially outward. This purified air is guided by the diffuser guide 19 and reaches the semicircular portion 7c of the diffusing member 7. Note that the flow of purified air sent out from the rotating centrifugal fan 31 contains a swirling component. However, the support plate 22 effectively removes the swirling component, and the diffuser guide 19 uniformly decelerates the air flow and guides it to the semicircular portion 7c of the diffusing member 7. The purified air that reaches the semicircular portion 7c is then diffused through the semicircular portion 7c and blown out of the air purifier 30. In this way, the air purifier 30 according to this embodiment can purify the surrounding air.
[0050] Here, in the air purifier 30 according to this embodiment, the side wall 6a of the housing 6 forms the air intake port, and the semicircular portion 7c of the diffusion member 7 forms the air outlet port for purified air, and the air intake port and the air outlet port are adjacent to each other, thereby satisfying the first design requirement. Furthermore, in the air purifier 30 according to this embodiment, the purified air is blown out by the semicircular portion 7c with a uniform flux in the direction perpendicular to the curved surface of the semicircular portion 7c, so the second design requirement is also satisfied.
[0051] The air purifier 30 according to this embodiment satisfies the first and second design requirements, and can achieve the same effects as the air purifier 1 according to the first embodiment. In particular, the air purifier 30 of this embodiment employs a centrifugal fan 31 as the blowing mechanism, thereby achieving a larger air flow rate, i.e., improved cleaning capacity and lower noise, compared to the air purifier 1 of the first embodiment, which is equipped with an axial fan 3.
[0052] (Fifth embodiment) FIG. 9A is a cross-sectional view showing the configuration of an air purifier according to a fifth embodiment of the present invention. Regarding the air purifier 35 shown in FIG. 9A, the same components as those in the fourth embodiment are denoted by the same reference numerals and the description thereof will be omitted, and the different components will be described. As shown in FIG. 9B, air purifier 35 includes diffuser guide 36 and a shell (guide member) 37 instead of diffuser guide 19 in air purifier 30 according to the fourth embodiment.
[0053] The diffuser guide 36 is formed by cutting out each of the plate-like circular members that make up the diffuser guide 19 at the same location when viewed from above, specifically from near the rear side of any one of the support plates 22 to between the second and third support plates 22, and more specifically by cutting out an area of approximately 135 degrees when viewed from the center, to form a C-shape.
[0054] The shell 37 is formed by bending a plate-like member with a gentle U-shape into a shell shape. The shell 37 is arranged in such a way as to cover the cut-out portions of each of the plate-like annular members that make up the diffuser guide 36. In detail, as shown in Fig. 9B, one end of the shell 37 is arranged near the inner end of any of the support plates 22 described above, and the other end of the shell 37 is arranged near the outer end of each of the plate-like annular members.
[0055] With the above configuration, the air purifier 35 according to this embodiment can achieve the same effects as the air purifier 30 according to the fourth embodiment.
[0056] In particular, in the air purifier 35 according to this embodiment, the purified air sent out by the centrifugal fan 31 traveling toward the shell 37 is guided by the shell 37 in the rotation direction of the centrifugal fan 31 and directed to the diffuser guide 36, specifically, to the notched ends of each plate-shaped annular member. The purified air is thus guided by each plate-shaped annular member, diffused through the semicircular portion 7c of the diffusing member 7, and blown out of the air purifier 35. In this way, the air purifier 35 can guide the purified air traveling toward the shell 37 to the diffuser guide 19 without loss and blow it out of the air purifier 35. This also prevents air from flowing behind the shell 37 when viewed from the center of rotation of the centrifugal fan 31. Therefore, when air purifier 35 is placed near a wall, a chair back, or the like, by positioning the wall, chair back, or the like on the rear side of shell 37, it is possible to effectively prevent purified air from colliding with the wall, chair back, or the like, causing airflow in an unintended direction and resulting in the spread of viruses.
[0057] (Sixth embodiment) FIG. 10A is a cross-sectional view showing the configuration of an air purifier according to a sixth embodiment of the present invention. Regarding the air purifier 40 shown in FIG. 10A, the same components as those in the second and fifth embodiments are denoted by the same reference numerals and description thereof will be omitted, and different components will be described. An air purifier 40 shown in FIG. 10A is an air purifier according to a modified example of the second embodiment shown in FIG. 5, to which the diffuser guide 36, shell 37, and support plate 22 described in the fifth embodiment are applied.
[0058] With the above configuration, the air purifier 40 according to this embodiment can achieve the same effects as the air purifier 15 according to the second embodiment.
[0059] Furthermore, similar to the air purifier 35 according to the fifth embodiment, when the air purifier 40 according to this embodiment is placed near a wall, a chair back, or the like, it can effectively prevent the purified air from colliding with the wall, chair back, or the like, causing air to flow in an unintended direction, which would result in the spread of viruses.
[0060] As described above, according to the above-described embodiments, it is possible to realize an air purifier, an air purification method, and an air purification system that are suitable for preventing person-to-person viral infection. [Explanation of symbols]
[0061] 1, 15, 30, 35, 40 Air Purifier 2. Filter 3 Fans 4, 32 Drive unit 6, 14, 23 cabinets 7 Diffusion material 8 micropores 9 Rotation Axis 10 motors 11 Power supply 12 holes 13 Support rod 16 legs 18 Plate-shaped member 19, 36 Diffuser Guide 21, 22 Support plate 25 Air Purification System 31 Centrifugal fan 31a Centrifugal fan blades 37 Shell
Claims
1. a housing provided with an intake port for drawing in outside air; a filter housed in the housing for purifying air; a blower member housed in the housing for blowing out air; a drive unit for rotating the air blower member; a diffusion member provided in the housing as an outlet for blowing out air purified by the filter to the outside, The housing is cylindrical, has the air inlet on a side surface, contains the cylindrical filter concentric with the housing and having a smaller diameter than the housing, has the air blowing member at the height of an upper end of the filter, and has the diffusion member at the upper end of the housing, so that the air inlet and the air outlet are disposed adjacent to each other and in contact with each other, This air purifier is characterized in that air drawn in through the intake port passes through the filter to be purified, then passes through the inside of the filter and is guided to the air blowing member, sent to the diffusion member by the air blowing member, diffused by the diffusion member, blown out, and circulated to the intake port.
2. The air blowing member is a fan, The air purifier according to claim 1 , wherein the diffusion member has a hollow hemispherical shape.
3. The air blowing member is a centrifugal fan, the diffusion member is a hollow flattened sphere that houses the centrifugal fan, 2. The air purifier according to claim 1, wherein an upper surface of the diffusion member is closed to prevent air from passing through.
4. An air purifier as described in Claim 3, characterized in that a diffuser guide is provided between the centrifugal fan and the diffusion member for guiding the air purified by the filter to the entire inner surface of the diffusion member.
5. The air purifier according to claim 4, characterized in that the diffuser guide is made up of a plurality of plate-shaped circular members arranged at intervals in the vertical direction, and the plate-shaped circular members extend horizontally and have outer edges that are inclined so as to be perpendicular to the diffusion member.
6. The plurality of plate-shaped annular members have a C-shape with the same portion cut out when viewed from above, The air purifier according to claim 5, characterized in that the cutout portions of the plurality of plate-shaped circular members are provided with guide members that guide the purified air sent radially outward in the rotational direction of the blower member and lead it to the plurality of plate-shaped circular members.
7. 7. The air purifier according to claim 1, wherein the diffusion member has hexagonal through holes formed in a honeycomb pattern, the hexagonal through holes tapering from the outer surface of the diffusion member to the inner surface of the diffusion member.
8. An air purification method, comprising placing the air purifier according to any one of claims 1 to 7 between people.
9. An air purification system comprising a plurality of air purifiers according to any one of claims 1 to 7 arranged in a distributed manner.
Citation Information
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