Fan equipment and air conditioning machines

The fan device incorporates a cylindrical duct with an acoustic hole positioned to match the fan's load fluctuation, effectively reducing NZ noise by generating a secondary flow that interferes and cancels out the noise, addressing the noise mitigation challenges in existing fan devices.

JP7681979B2Active Publication Date: 2025-05-23MITSUBISHI HEAVY IND THERMAL SYST
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2021011276
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-01-27
Publication Date
2025-05-23
Estimated Expiration
2041-01-27

AI Technical Summary

Technical Problem

Existing fan devices, such as those in air conditioners and aircraft engines, suffer from noise issues (NZ noise) due to the interaction of fan rotation speed, number of blades, and operating conditions, which are not effectively mitigated by uniform obstacle placement.

Method used

A fan device with a cylindrical duct featuring an acoustic hole positioned at a circumferential location corresponding to the maximum amplitude of the fan's load fluctuation waveform, which generates a secondary flow to interfere with and cancel out the NZ noise.

Benefits of technology

The solution effectively reduces fan device noise by canceling out NZ noise through the strategic placement and design of the acoustic hole, improving both noise reduction and operational efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007681979000001
    Figure 0007681979000001
  • Figure 0007681979000002
    Figure 0007681979000002
  • Figure 0007681979000003
    Figure 0007681979000003
Patent Text Reader

Abstract

To provide a fan device whose noise is further reduced, and an air conditioning machine.SOLUTION: A fan device 100 includes a fan 1 which pressure feeds a fluid by rotating about an axis Ac, a motor 2 which rotates the fan, and a duct 3 which has a cylindrical shape centered at the axis and surrounds the fan from the outside. An acoustic hole H is formed on a wall surface of the duct at a circumferential-direction position corresponding to a position of the maximum amplitude of the waveform of the load fluctuation of the fan that causes NZ noise generated by the fan (noise having a frequency that depends on the product of the rotational speed of the fan and the number of blades of the fan). The NZ noise due to interference between the auxiliary flow flowing through the acoustic hole and the fan cancels the NZ noise inherent to the fan, and it is possible to reduce the noise of the fan device.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present disclosure relates to a fan device and an air conditioning machine. [Background technology]

[0002] For example, outdoor units of air conditioners and engines used in aircraft have a fan device (ducted fan) with a fan installed inside a duct. Rotating the fan creates a fluid flow inside the duct. This flow sends air to the heat exchanger in the case of outdoor units, and sends air to the compressor in the case of engines.

[0003] However, in the above-mentioned fan device, noise (rotation noise) represented by NZ noise may occur. NZ noise is noise having a frequency that depends on the product of the rotation speed of the fan and the number of fan blades. Depending on the operating conditions of the fan device, such noise may develop and cause energy loss or may affect the surrounding environment as an audible problem. Therefore, as exemplified in the following Patent Document 1, a technology has been proposed to cancel out the noise by installing an obstacle with unevenness formed in the circumferential direction on the same axis as the fan. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] U.S. Patent No. 8,777,560 Summary of the Invention [Problem to be solved by the invention]

[0005] However, it is known that the level of the above-mentioned noise varies depending on the arrangement of bends in the duct and other obstacles, etc. Furthermore, the frequency of the noise changes with changes in the operating conditions, etc. For this reason, even if the above-mentioned obstacles are uniformly provided, there is a risk that the noise cannot be sufficiently reduced.

[0006] The present disclosure has been made to solve the above-mentioned problems, and has an object to provide a fan device and an air conditioner with further reduced noise. [Means for solving the problem]

[0007] In order to solve the above problems, a fan device according to the present disclosure includes a fan that compresses and pumps a fluid by rotating about an axis, a motor that rotates the fan, and a cylindrical duct centered on the axis and surrounding the fan from an outer periphery, wherein an acoustic hole is formed in a wall surface of the duct at a circumferential position corresponding to a position of maximum amplitude of a waveform of load fluctuation of the fan that causes NZ noise generated by the fan, and the duct has a cylindrical duct main body, and a bypass flow path whose upstream end branches off from a midway position of the duct main body to the outer periphery of the duct main body and whose downstream end communicates with the acoustic hole. 。 The fan device according to the present disclosure comprises a fan that compresses a fluid by rotating about an axis, a motor that rotates the fan, and a duct that is cylindrical about the axis and surrounds the fan from its outer periphery, wherein an acoustic hole is formed in a wall of the duct at a circumferential position that corresponds to the position of maximum amplitude of a waveform of load fluctuation of the fan that causes NZ noise generated by the fan, and the duct has a first duct located on the upstream side, a second duct arranged spaced apart on the downstream side of the first duct, and a movable duct that is arranged between the first duct and the second duct and supported rotatably about the axis to change the circumferential position of the acoustic hole. Effect of the Invention

[0008] According to the present disclosure, it is possible to provide a fan device and an air conditioner with further reduced noise. [Brief description of the drawings]

[0009] [Figure 1] 1 is a schematic cross-sectional view showing a configuration of an air conditioning machine according to a first embodiment of the present disclosure. [Diagram 2] 1 is a cross-sectional view of a fan device according to a first embodiment of the present disclosure. [Diagram 3] 4 is an explanatory diagram showing a graph illustrating a load fluctuation in the circumferential direction of the fan and the relationship with the circumferential position of the acoustic hole. FIG. [Figure 4] FIG. 11 is a cross-sectional view showing a modified example of the fan device according to the first embodiment of the present disclosure. [Diagram 5] FIG. 11 is a cross-sectional view showing a configuration of a duct according to a second embodiment of the present disclosure. [Figure 6] FIG. 11 is a cross-sectional view showing a first modified example of a duct according to a second embodiment of the present disclosure. [Figure 7] FIG. 11 is a cross-sectional view showing a second modified example of a duct according to a second embodiment of the present disclosure. [Figure 8] FIG. 11 is a cross-sectional view showing a configuration of a duct according to a third embodiment of the present disclosure. [Figure 9] FIG. 11 is a cross-sectional view showing a configuration of a duct according to a fourth embodiment of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] First Embodiment (Air conditioning equipment configuration) Hereinafter, an air conditioning machine 90 and a fan unit 100 according to a first embodiment of the present disclosure will be described with reference to Fig. 1 to Fig. 3. The air conditioning machine 90 is an outdoor unit of an air conditioner. As shown in Fig. 1, the air conditioning machine 90 mainly includes a heat exchanger 200, a fan unit 100, and a housing 300.

[0011] The heat exchanger 200 is part of the refrigeration cycle, and exchanges heat between the refrigerant and air compressed by the fan device 100 (described later). This changes the temperature and phase state of the refrigerant, and the refrigerant is sent to an indoor unit (not shown). The indoor unit changes the room temperature by further exchanging heat between the indoor air and the refrigerant. The heat exchanger 200 is surrounded by a housing 300.

[0012] (Fan unit configuration) The fan device 100 is provided on the upper part of the housing 300. The fan device 100 pressurizes and sends air, thereby forming an air flow that passes around the heat exchanger 200 in the housing 300. The fan device 100 has a fan 1, a motor 2, a motor support 21, and a duct 3.

[0013] As shown in FIG. 2, the fan 1 has a cylindrical boss 11 centered on an axis Ac, and a plurality of blades 10 that protrude radially from the outer circumferential surface of the boss 11 and are arranged at intervals in the circumferential direction. The blades 10 are twisted from one side to the other side in the direction of the axis Ac as they move from the inside to the outside in the radial direction. As a result, when the fan 1 is rotated around the axis Ac, an air flow is generated in the direction of the axis Ac. In this embodiment, an example will be described in which an air flow (main stream Fm) is generated from one side (the heat exchanger 200 side) to the other side (the fan device 100 side) in the direction of the axis Ac by rotating the fan 1. In the following description, the side from which the air flows is simply called the "upstream side," and the side from which the air flows is simply called the "downstream side."

[0014] The motor 2 is provided to rotate the fan 1 about the axis Ac. The motor 2 has an output shaft extending on the axis Ac, and this output shaft is fixed to a boss 11 of the fan 1. In addition, the motor 2 is supported and fixed to the inner wall surface of the duct 3, which will be described later, by a motor support part 21.

[0015] The duct 3 is cylindrical and covers the fan 1 and the motor 2 from the outer periphery. More specifically, the duct 3 is cylindrical and centered on the axis Ac. The space inside the duct 3 is a flow path F for air to flow. The inner diameter of the duct 3 (flow path F) is constant over the entire area in the direction of the axis Ac. One or more acoustic holes H are formed in the wall surface of the duct 3 upstream of the fan 1. The acoustic holes H penetrate the wall surface of the duct 3 in the radial direction. Note that only two acoustic holes H are shown in the example of FIG. 2, but the number of acoustic holes H can be changed depending on the design and specifications. The shape of the acoustic holes H can be a circle, a rectangle, or a polygon. The acoustic holes H are formed in an area on the fan 1 side beyond the diameter of the fan 1, based on the most upstream edge S of the fan 1.

[0016] The position of the acoustic hole H in the circumferential direction relative to the axis Ac is determined by the waveform of the load fluctuation when the fan 1 is driven. Here, as shown in FIG. 3, a load fluctuation wave extending in the circumferential direction is formed at the periphery of the fan 1. In other words, the load fluctuation is equivalent to the pressure fluctuation of the air flowing around the fan 1. The load fluctuation is a standing wave, and in the example of FIG. 3, the amplitude is maximum at a certain position P in the circumferential direction. The waveform of the load fluctuation is determined by conditions such as obstacles before and after the duct 3 and bends in the flow path. It is known that the occurrence of such load fluctuation causes noise (NZ noise) by the fan 1. NZ noise is noise in a frequency band that depends on the product of the number of blades 10 of the fan 1 and the rotation speed of the fan 1.

[0017] As described above, since the load fluctuation wave is a standing wave, it is possible to cancel the load fluctuation wave that causes the NZ noise by superimposing an acoustic wave that is in the opposite phase to the standing wave. Therefore, the above acoustic hole H is formed at a circumferential position corresponding to the position P of the maximum amplitude of the load fluctuation waveform. The load fluctuation waveform can be obtained by various analysis tools or measurements using an actual machine. The position of the acoustic hole H is determined through such analysis and measurements.

[0018] (Action and effect) Next, the operation of the fan device 100 according to this embodiment will be described. As shown in Fig. 2, a mainstream Fm is formed in the flow path F of the duct 3 by rotating the fan 1. The load fluctuation of the fan 1 caused by this mainstream Fm generates the NZ sound. Meanwhile, an air flow (side flow Fs) is also formed from the acoustic hole H toward the inside of the flow path F by accompanying this mainstream Fm. This side flow Fs passes through the acoustic hole H and interferes with the fan 1, generating the NZ sound that is in a phase different from the above-mentioned NZ sound.

[0019] The acoustic hole H is formed at a circumferential position corresponding to the position P of maximum amplitude of the waveform of the load fluctuation of the fan 1, which causes the NZ noise. Therefore, the NZ noise is cancelled out by the sound generated by the acoustic hole H, and the noise of the fan device 100 can be reduced. In particular, in this embodiment, it is possible to reduce noise simply by forming the acoustic hole H in the duct 3. Therefore, noise can be easily reduced by subsequently forming the acoustic hole H in an existing duct 3.

[0020] Furthermore, according to the above configuration, since the acoustic hole H is formed closer to the fan 1 than the diameter of the fan 1 with respect to the most upstream edge S of the fan 1, the secondary flow Fs generated from the acoustic hole H can be made to smoothly and stably reach the vicinity of the fan 1. This makes it possible to further effectively reduce the noise of the fan device 100.

[0021] The first embodiment of the present disclosure has been described above. Various changes and modifications can be made to the above configuration without departing from the gist of the present disclosure. For example, in the first embodiment, a configuration in which air is guided from the outside of the duct 3 through the acoustic hole H has been described. However, the form of the duct 3 is not limited to this, and a configuration shown in FIG. 4 can be adopted as a modified example. In the example of the figure, the duct 3 has a cylindrical duct body 31 and a bypass flow path 32 provided on the outer periphery of the duct body 31. The upstream end of the bypass flow path 32 branches off from the middle position of the duct body 31 (flow path F) through the bypass hole H2, and the downstream end communicates with the flow path F in the duct body 31 again through the acoustic hole H.

[0022] According to the above configuration, a portion of the air can be supplied to the acoustic hole H without impairing the air flow rate in the entire duct 3. Therefore, it is possible to avoid a decrease in performance of the fan device 100 due to the formation of the acoustic hole H. Also, it is possible to reduce the possibility of changes in the temperature and humidity of the fluid compared to when other fluids are supplied from the acoustic hole H. This makes it possible to suitably apply the fan device 100 to machinery that requires management of temperature, humidity, etc.

[0023] Second Embodiment Next, a second embodiment of the present disclosure will be described with reference to FIG. 5. The same components as those in the first embodiment are denoted by the same reference numerals, and detailed description will be omitted. In this embodiment, the configuration of the duct 3B is different from that in the first embodiment. As shown in FIG. 5, the duct 3B has a first duct 31B, a second duct 32B, a movable duct 33B, and a connection portion 4.

[0024] The first duct 31B and the second duct 32B are arranged coaxially with the axis Ac as the center. The first duct 31B is arranged on the upstream side, and the second duct 32B is arranged downstream and spaced apart from the first duct 31B. The diameter dimensions of the first duct 31B and the second duct 32B are the same. (Note that "same" here means substantially the same, and design tolerances and manufacturing errors are allowed. The same applies to the following explanations.)

[0025] The movable duct 33B is provided between the first duct 31B and the second duct 32B. A recess R that is radially recessed and extends circumferentially is formed on the downstream edge of the first duct 31B and the upstream edge of the second duct 32B. The movable duct 33B is fitted into the recess R from the outer periphery. The movable duct 33B is guided by the recess R and can rotate around the axis Ac. Furthermore, an acoustic hole H that penetrates the wall surface in the radial direction is formed on the wall surface of the movable duct 33B. In other words, the circumferential position of the acoustic hole H can be changed by rotating the movable duct 33B.

[0026] One example of a configuration for rotating the movable duct 33B is a mechanism using a magnet and a coil. In this configuration, a magnet is embedded in the wall of the movable duct 33B, and a coil is disposed on the outer periphery of the movable duct 33B. When electricity is applied to the coil, an electromagnetic force is generated between the magnet and the coil. This electromagnetic force makes it possible to rotate the movable duct 33B. Alternatively, a configuration for rotating the movable duct 33B by a motor or an artificial muscle can be adopted.

[0027] The connection portion 4 connects the first duct 31B and the second duct 32B in the direction of the axis Ac. In this embodiment, the connection portion 4 is located on the inner peripheral side of the movable duct 33B. In addition, a plurality of connection portions 4 are arranged at intervals in the circumferential direction. The above-mentioned acoustic hole H faces the flow path F from the gap between these connection portions 4.

[0028] According to the above configuration, the circumferential position of the acoustic hole H can be changed by rotating the movable duct 33B. This makes it possible to adjust the phase of the sound generated from the acoustic hole H after the fact, even if a change occurs in the load fluctuation of the fan that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100. That is, as described with reference to FIG. 3 in the first embodiment, the circumferential position of the acoustic hole H can be adjusted in accordance with the change in the position P of the maximum amplitude of the waveform of the load fluctuation. This makes it possible to further effectively reduce the noise of the fan device 100.

[0029] Furthermore, according to the above configuration, the first duct 31B and the second duct 32B are connected to each other by providing the connecting portion 4. This makes it possible to avoid a decrease in the strength of the entire duct 3 caused by providing the movable duct 33B at a midpoint of the duct 3. As a result, it is possible to ensure the durability of the fan device 100 for a long period of time.

[0030] The second embodiment of the present disclosure has been described above. Various changes and modifications can be made to the above configuration without departing from the gist of the present disclosure. For example, in the second embodiment, an example in which the connection portion 4 is located on the inner periphery side of the movable duct 33B has been described. However, as a first modified example, as shown in FIG. 6, it is also possible to configure the connection portion 4B to be located on the outer periphery side of the movable duct 33B. In this case, the above-mentioned recess R is formed on the inner periphery side of the first duct 31B and the second duct 32B.

[0031] According to this configuration, since the connection portion 4B is provided on the outer periphery of the movable duct 33B, no protrusions or steps are formed on the inner periphery of the movable duct 33B, which allows the fluid to circulate more smoothly and stably inside the duct 3C.

[0032] 7 shows a duct 3D as a second modified example, which does not include the above-mentioned connecting portion 4 (4B). In this case, by rotating the movable duct 33D between the first duct 31D and the second duct 32D, the circumferential position of the acoustic hole H can be set with a high degree of freedom without being hindered by the connecting portion 4.

[0033] <Third embodiment> Next, a third embodiment of the present disclosure will be described with reference to FIG. 8. The same reference numerals are used for the same configurations as those of the above-mentioned embodiments, and detailed description will be omitted. As shown in FIG. 8, a duct 3E according to this embodiment has a duct body 31E and an intermediate duct 32E. The duct body 31E is cylindrical with the axis Ac at its center. A recess R is formed on the inner peripheral surface of the duct body 31E, which is recessed toward the outer peripheral side and extends in the circumferential direction. Furthermore, an adjustment hole Hc is formed at a position overlapping with the recess R in the axis Ac direction. In this embodiment, an example in which the shape of the adjustment hole Hc is circular is described, but the shape of the adjustment hole Hc may be rectangular or polygonal.

[0034] A cylindrical intermediate duct 32E centered on the axis Ac is fitted into the recess R from the inner periphery side. That is, the intermediate duct 32E has smaller outer dimensions than the duct main body 31E. On the other hand, the inner diameter of the intermediate duct 32E is the same as the inner diameter of the duct main body 31E. An acoustic hole H is formed in the intermediate duct 32E. The acoustic hole H is formed at a position corresponding to (overlapping) the above-mentioned adjustment hole Hc in the direction of the axis Ac. In this embodiment, the acoustic hole H is circular like the adjustment hole Hc. Note that the acoustic hole H can also be rectangular or polygonal. The intermediate duct 32E is guided by the recess R to be able to rotate around the axis Ac.

[0035] According to the above configuration, the overlapping area of ​​the acoustic hole H and the adjustment hole Hc changes by rotating the intermediate duct 32E. In other words, the opening area of ​​the acoustic hole H can be adjusted. This changes the flow rate of the secondary flow Fs flowing through the acoustic hole H, thereby adjusting the amplitude of the sound generated from the acoustic hole H. As a result, even if there is a change in the load fluctuation of the fan that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100, the amplitude of the sound generated from the acoustic hole H can be adjusted ex post. This makes it possible to more precisely control or reduce the noise of the fan device 100.

[0036] The third embodiment of the present disclosure has been described above. Note that various changes and modifications can be made to the above configuration without departing from the gist of the present disclosure.

[0037] <Fourth embodiment> Next, a fourth embodiment of the present disclosure will be described with reference to Fig. 9. Note that the same components as those in the above-described embodiments are denoted by the same reference numerals, and detailed description thereof will be omitted. As shown in Fig. 9, a duct 3F according to this embodiment has a first duct 31F, a second duct 32F, and a movable duct 33F.

[0038] The first duct 31F and the second duct 32F are arranged coaxially with the axis Ac as the center. The first duct 31F is arranged on the upstream side, and the second duct 32F is arranged on the downstream side of the first duct 31F and spaced apart from it. The first duct 31F and the second duct 32F have the same diameter.

[0039] The movable duct 33F is provided between the first duct 31B and the second duct 32B. A recess R that is recessed in the radial direction and extends in the circumferential direction is formed on the downstream edge of the first duct 31B and the upstream edge of the second duct 32B. The movable duct 33B is fitted into the recess R from the inner circumferential side. The movable duct 33F is guided by the recess R so that it can rotate about the axis Ac.

[0040] The movable duct 33F has an inner movable duct 331 located on the inner circumferential side, and an outer movable duct 332 covering the inner movable duct 331 from the outer circumferential side. An acoustic hole H is formed in the wall surface of the inner movable duct 331, penetrating the wall surface in the radial direction. An adjustment hole Hc is formed in the wall surface of the outer movable duct 332. The acoustic hole H and the adjustment hole Hc are circular. It is also possible for the acoustic hole H and the adjustment hole Hc to be rectangular or polygonal. The acoustic hole H and the adjustment hole Hc are formed at positions corresponding to (overlapping) each other in the direction of the axis Ac. Furthermore, the inner movable duct 331 is capable of rotating relatively to the outer movable duct 332 around the axis Ac.

[0041] According to the above configuration, first, the circumferential position of the acoustic hole H can be changed by rotating the entire movable duct 33F. This allows the phase of the sound generated from the acoustic hole H to be adjusted. Furthermore, the overlapping area of ​​the acoustic hole H and the adjustment hole Hc changes by rotating the outer movable duct 332. In other words, the opening area of ​​the acoustic hole H can be adjusted. This allows the amplitude as well as the phase of the sound generated by the acoustic hole H to be adjusted. As a result, even if there is a change in the load fluctuation of the fan that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100, the phase and amplitude of the sound generated from the acoustic hole H can be adjusted ex post. As a result, it is possible to control or reduce the noise of the fan device 100 more precisely.

[0042] The fourth embodiment of the present disclosure has been described above. Note that various changes and modifications can be made to the above configuration without departing from the gist of the present disclosure.

[0043] As a common feature among the embodiments, in each of the above embodiments, an example has been described in which the fan device 100 is applied to the air-conditioning machine 90. However, the application of the fan device 100 is not limited to the air-conditioning machine 90, and the fan device 100 can also be suitably applied to turbofan engines and other rotating machines.

[0044] <Additional Notes> The fan device 100 and the air conditioning machine 90 described in each embodiment can be understood, for example, as follows.

[0045] (1) A fan device 100 according to a first embodiment includes a fan 1 which rotates about an axis Ac to pump a fluid, a motor 2 which rotates the fan 1, and a duct 3 which is cylindrical and centred on the axis Ac and surrounds the fan 1 from its outer periphery, and an acoustic hole H is formed in the wall of the duct 3 at a circumferential position which corresponds to a position P of maximum amplitude of a waveform of load fluctuation of the fan 1 which causes the NZ noise generated by the fan 1.

[0046] According to the above configuration, a sound different from the NZ sound is generated by the fluid flowing into the duct 3 through the acoustic hole H. The acoustic hole H is formed at a circumferential position corresponding to the position P of the maximum amplitude of the waveform of the load fluctuation of the fan 1 that causes the NZ sound. Therefore, the NZ sound is cancelled out by the sound generated by the acoustic hole H, and the noise of the fan device 100 can be reduced.

[0047] (2) In the fan device 100 according to the second aspect, the acoustic hole H is formed from the most upstream edge S of the fan 1 toward the fan 1 more toward the fan 1 than the diameter of the fan 1.

[0048] According to the above configuration, since the acoustic hole H is formed closer to the fan 1 than the diameter of the fan 1, the acoustic components generated at the acoustic hole H can smoothly and stably reach the vicinity of the fan 1. This makes it possible to further effectively reduce the noise of the fan device 100.

[0049] (3) In the fan device 100 of the third aspect, the duct 3 has a cylindrical duct body 31 and a bypass flow path 32 whose upstream end branches off from a position midway through the duct body 31 and whose downstream end communicates with the acoustic hole H.

[0050] According to the above configuration, the acoustic hole H is in communication with the downstream end of the bypass flow path 32. Furthermore, the upstream end of the bypass flow path 32 branches off from a midway position of the duct main body 31. This allows a portion of the fluid to be supplied to the acoustic hole H without impairing the flow rate of the fluid in the entire duct 3. Therefore, it is possible to avoid a decrease in performance of the fan device 100 due to the formation of the acoustic hole H.

[0051] (4) In the fan device 100 of the fourth aspect, the duct 3B has a first duct 31B located on the upstream side, a second duct 32B arranged at a distance downstream of the first duct 31B, and a movable duct 33B arranged between the first duct 31B and the second duct 32B and supported rotatably around the axis Ac to change the circumferential position of the acoustic hole H.

[0052] According to the above configuration, the circumferential position of the acoustic hole H can be changed by rotating the movable duct 33B. This makes it possible to adjust the phase of the sound generated by the acoustic hole H after the fact even if a change occurs in the load fluctuation of the fan 1 that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100.

[0053] (5) In the fan device 100 according to the fifth aspect, the duct 3B further has connection portions 4 that connect the first duct 31B and the second duct 32B in the direction of the axis Ac and are arranged at intervals in the circumferential direction.

[0054] According to the above configuration, the first duct 31B and the second duct 32B are connected to each other by the connection portion 4. This makes it possible to avoid a decrease in the strength of the entire duct 3B due to the provision of the movable duct 33B.

[0055] (6) In the fan device 100 according to the sixth aspect, the connection portion 4B is provided on the outer periphery side of the movable duct 33C.

[0056] According to the above-mentioned configuration, since the connection portion 4B is provided on the outer periphery side of the movable duct 33C, no protrusions or steps are formed on the inner periphery side of the movable duct 33C, which allows the fluid to circulate more smoothly and stably inside the duct 33C.

[0057] (7) In the fan device 100 of the seventh aspect, the movable duct 33F includes an inner movable duct 331 in which the acoustic hole H is formed, and an outer movable duct 332 that covers the inner movable duct 331 from the outer circumferential side and has an adjustment hole Hc formed at a position in the direction of the axis Ac corresponding to the acoustic hole H, and that can change the opening area of ​​the acoustic hole H by rotating around the axis Ac.

[0058] According to the above configuration, the circumferential position of the acoustic hole H can be changed by rotating the entire movable duct 33F. This allows the phase of the sound generated from the acoustic hole H to be adjusted. Furthermore, the overlapping area of ​​the acoustic hole H and the adjustment hole Hc changes by rotating the outer movable duct 332. In other words, the opening area of ​​the acoustic hole H can be adjusted. This allows the amplitude as well as the phase of the sound generated from the acoustic hole H to be adjusted. As a result, even if there is a change in the load fluctuation of the fan 1 that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100, the phase and amplitude of the sound generated from the acoustic hole H can be adjusted ex post.

[0059] (8) In the fan device 100 of the eighth aspect, the duct 3E includes a duct main body 31E in which the acoustic hole H is formed, and an intermediate duct 32E that is arranged on the inner peripheral side of the duct main body 31E and has an adjustment hole Hc formed at a position in the direction of the axis Ac corresponding to the acoustic hole H, and is supported rotatably around the axis Ac to change the opening area of ​​the acoustic hole H.

[0060] According to the above configuration, the overlapping area of ​​the acoustic hole H and the adjustment hole Hc changes by rotating the intermediate duct 32E. In other words, the opening area of ​​the acoustic hole H can be adjusted. This makes it possible to adjust the amplitude of the sound generated from the acoustic hole H. As a result, even if there is a change in the load fluctuation of the fan 1 that causes the NZ sound, or even if the behavior of the NZ sound is unknown immediately after the manufacture of the fan device 100, the amplitude of the sound generated from the acoustic hole H can be adjusted ex post.

[0061] (9) An air conditioning machine 90 according to a ninth aspect includes a fan unit 100, and a heat exchanger 200 that exchanges heat between a fluid pumped by the fan unit 100 and a refrigerant.

[0062] According to the above configuration, the noise of the air conditioner 90 can be further reduced. [Explanation of symbols]

[0063] 100 Fan Unit 1 Fan 2 Motors 3, 3B, 3C, 3D, 3E, 3F Duct 4,4B Connection 10 Feather 11 Boss 21 Motor support 31,31E Duct body 31B, 31C, 31D, 31F First Duct 32B, 32C, 32D, 32F Second duct 32E Intermediate duct 33B, 33C, 33D, 33F Movable duct 32 Bypass flow path 90 Air Conditioning Machine 200 heat exchanger 300 Housing 331 Inner Movable Duct 332 Outer Movable Duct AC axis F flow path Fm mainstream Fs side stream H acoustic hole H2 Bypass hole Hc adjustment hole R recess S edge

Claims

1. A fan that rotates about an axis to pump a fluid; A motor for rotating the fan; a duct having a cylindrical shape centered on the axis and surrounding the fan from an outer periphery side; Equipped with an acoustic hole is formed in a wall surface of the duct at a circumferential position corresponding to a position of maximum amplitude of a waveform of load fluctuation of the fan that causes NZ noise generated by the fan; The duct is A cylindrical duct body; a bypass flow passage having an upstream end branching off from a midpoint of the duct body toward the outer periphery of the duct body and having a downstream end communicating with the acoustic hole; A fan device having the above structure.

2. A fan that rotates about an axis to pump a fluid; A motor for rotating the fan; a duct having a cylindrical shape centered on the axis and surrounding the fan from an outer periphery side; Equipped with an acoustic hole is formed in a wall surface of the duct at a circumferential position corresponding to a position of maximum amplitude of a waveform of load fluctuation of the fan that causes NZ noise generated by the fan; The duct is A first duct located on the upstream side; a second duct disposed downstream of and spaced from the first duct; a movable duct disposed between the first duct and the second duct and supported rotatably about the axis to change a circumferential position of the acoustic hole; A fan device having the above structure.

3. The fan unit according to claim 2 , wherein the duct further includes connection portions that connect the first duct and the second duct in the axial direction and are arranged at intervals in the circumferential direction.

4. The fan device according to claim 3 , wherein the connection portion is provided on an outer periphery of the movable duct.

5. The movable duct is an inner movable duct having the acoustic hole formed therein; an outer movable duct that covers the inner movable duct from the outer periphery side, has an adjustment hole formed at a position in the axial direction corresponding to the acoustic hole, and is capable of changing the opening area of ​​the acoustic hole by rotating about the axis; The fan device according to claim 2 , further comprising:

6. The fan device according to claim 1 , wherein the acoustic hole is formed on a side closer to the fan than a diameter of the fan from an edge on an upstream side of the fan.

7. The duct is A cylindrical duct body; a bypass flow passage having an upstream end branching off from a midway position of the duct body and a downstream end communicating with the acoustic hole; The fan device according to claim 1 , further comprising:

8. A fan device according to any one of claims 1 to 7; a heat exchanger for exchanging heat between the fluid pumped by the fan device and a refrigerant; An air conditioning machine equipped with:

Citation Information

Patent Citations

  • Finger guard for blower

    JP2001280294A

  • Ducted fan

    JP2003083296A

  • Silencer and moving body

    JP2020204298A

  • Method and apparatus for controlling tonal noise from subsonic fans

    US8777560B2

  • Method for reducing noise of air conditioner, fan unit and apparatus, pressure pulsation reducer of refrigeration cycle unit, pressure pulsation reducer of pump unit and pressure pulsation reducing method of apparatus

    WO2004031660A1