Blower testing device

By designing a hair dryer testing device, which combines a testing frame, a first testing platform, a pad, a fixing fixture, and a wind force testing module, the problem of low testing efficiency of hair dryers is solved. This achieves automated and reusable wind force testing, improving testing efficiency and accuracy.

WO2026097929A1PCT designated stage Publication Date: 2026-05-15SHENZHEN HANYANG TECH CO LTD
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
SHENZHEN HANYANG TECH CO LTD
Filing Date
2025-07-21
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing technologies for hair dryer testing are not very efficient, especially for the testing of hair dryer impellers on outdoor yard robots, which lacks reusable standard testing methods, thus affecting production efficiency.

Method used

A hair dryer testing device was designed, including a testing frame, a first testing platform, a pad, a fixing clamp, and a wind force testing module. The hair dryer housing is fixed on the testing platform by the fixing clamp, and the wind force testing module is set to correspond to the air outlet of the hair dryer housing to realize automated wind force testing.

Benefits of technology

It improves the efficiency and accuracy of hair dryer wind force detection, allows for repeated testing, reduces manual intervention, and enhances the automation level of the testing.

✦ Generated by Eureka AI based on patent content.

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    Figure CN2025109210_15052026_PF_FP_ABST
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Abstract

A blower testing device, comprising a testing frame (1), a first testing table (2), spacer posts (3), fixtures (4), and airflow strength measurement modules (5), wherein the spacer posts (3) are fixedly arranged on the table top of the first testing table (2); each fixture (4) is arranged at one end of the corresponding spacer post (3), and the fixtures (4) are used for fixing a blower housing; the first testing table (2) and the airflow strength measurement modules (5) are arranged on the testing frame (1); the measurement direction of each airflow strength measurement module (5) is arranged opposite to the direction of an air blowing port of the blower housing; the airflow strength measurement modules (5) is configured to measure airflow strength when a blower is started. In this way, the airflow strength testing efficiency for the blower is improved. The blower testing device further measures the profile, flatness, and roundness of an impeller.
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Description

A hair dryer detection device Technical Field

[0001] This application relates to the field of hair dryer detection technology, and in particular to a hair dryer detection device. Background Technology

[0002] Outdoor garden robots are equipped with various components or structures, each with a corresponding function. For example, the blower on the robot's front can clean up small objects like fallen leaves and grass clippings in the outdoor environment. Before a garden robot with a blower leaves the factory, the blower's airflow needs to be tested to ensure it meets expectations. However, there is currently no method that can both repeatedly test and improve testing efficiency. Furthermore, the blower's components also present testing challenges. For instance, the impeller on the robot's front generates airflow by rotating to clean leaves and other small objects in a specific area. However, due to the complexity of the manufacturing process, the produced impellers may not meet standard specifications. Current testing methods are mostly based on manual measurement or lack a reusable standard testing method, affecting testing efficiency and consequently, the efficiency of installing the impeller onto the outdoor garden robot.

[0003] Therefore, those skilled in the art urgently need to find a new technical solution for a hair dryer detection device to solve the above problems. Technical issues

[0004] The embodiments of this application aim to provide a hair dryer detection device, which can solve the technical problem of low detection efficiency in the prior art. Technical solutions

[0005] The technical problem solved by the embodiments of this application is addressed by the following technical solution:

[0006] This application discloses a hair dryer testing device, comprising a testing frame, a first testing platform, a pad column, a fixing fixture, and a wind force testing module;

[0007] The pad column is fixedly installed on the table surface of the first testing platform, and the fixing clamp is installed at one end of the pad column. The fixing clamp is used to fix the blower housing.

[0008] The first testing platform and the wind force detection module are mounted on the testing frame. The detection direction of the wind force detection module is set opposite to the direction of the air outlet of the hair dryer housing. The wind force detection module is used to detect the wind force after the hair dryer is started. Beneficial effects

[0009] The aforementioned hair dryer testing device includes a testing frame, a first testing platform, a support column, a fixing clamp, and a wind force detection module. The support column is fixedly mounted on the surface of the first testing platform, and the fixing clamp is located at one end of the support column, used to fix the hair dryer housing. The first testing platform and the wind force detection module are mounted on the testing frame, with the detection direction of the wind force detection module opposite to the direction of the air outlet of the hair dryer housing. The wind force detection module is used to detect the wind force after the hair dryer is started. Thus, the hair dryer is fixed on the first testing platform by the fixing clamp on the support column of the first testing platform. When the hair dryer is started, the wind force value of the hair dryer can be detected by the wind force detection module on the testing frame. In this way, the testing device can be reused for testing, and automatic testing can be completed through the first testing platform, improving the efficiency of hair dryer wind force detection. Attached Figure Description

[0010] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.

[0011] Figure 1 is a schematic diagram of the structure of an embodiment of the hair dryer detection device disclosed in this application;

[0012] Figure 2 is a schematic diagram of the structure of the fixing clamp in the hair dryer detection device disclosed in the embodiment of this application at an angle;

[0013] Figure 3 is a schematic diagram of the fixed clamp in the hair dryer detection device disclosed in the embodiment of this application from another angle;

[0014] Figure 4 is a schematic diagram of the structure of the clamping block in the hair dryer detection device disclosed in the embodiment of this application;

[0015] Figure 5 is a schematic diagram of the structure of an embodiment of the hair dryer detection device disclosed in this application;

[0016] Figure 6 is a schematic diagram of another embodiment of the hair dryer detection device disclosed in this application;

[0017] Figure 7 is a schematic diagram of another embodiment of the hair dryer detection device disclosed in this application;

[0018] Figure 8 is a schematic diagram of the connecting component in the hair dryer detection device disclosed in the embodiments of this application.

[0019] Attached are the icon symbols and their corresponding meanings:

[0020] 1. Testing frame; 2. First testing platform; 3. Support column; 4. Fixing fixture; 401. Clamping component; 4011. Clamping part; 4012. Clamping space; 4013. Second connecting hole; 4014. Fourth connecting hole; 402. Operating component; 4021. Third connecting hole; 4022. Movable plate; 403. First fixed base; 4031. First connecting hole; 5. Wind power detection module; 501. Electronic scale; 502. Testing plate; 6. Clamping block; 601. Fixing component; 6011. Fixing bolt; 6012. Fixing screw; 6013. Fixing block; 7. Fixing plate; 8. Hair dryer testing device; 9. Hair dryer housing; 10. Second testing platform; 1001. Second fixing... 10011, Fixing hole; 100111, First fixing hole; 100112, Second fixing hole; 1002, Detection block; 10021, Back side; 10022, Arc-shaped part; 10023, Fixing part; 1003, Detection bracket; 10031, First connecting rod; 10032, Second connecting rod; 1004, Detector; 10041, Insertion part; 11, Impeller; 12, Connecting part; 1201, Operating part; 1202, First sleeve part; 1203, Second sleeve part; 12031, First sleeve body; 12032, Second sleeve body; 1204, Sleeving gap; 1205, Connecting part; 13, Pad; 14, Impeller detection device. The best embodiment of the present invention

[0021] To facilitate understanding of this application, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. It should be noted that when an element is described as being "fixed to" another element, it can be directly on the other element, or one or more intermediate elements may exist between them. When an element is described as being "connected" to another element, it can be directly connected to the other element, or one or more intermediate elements may exist between them. The terms "upper," "lower," "inner," "outer," "vertical," and "horizontal," etc., used in this specification to indicate orientation or positional relationships are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this application and simplifying the description. They do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as limiting this application.

[0022] Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Words such as "comprising" or "including" mean that the element or object preceding the word encompasses the elements or objects listed after the word and their equivalents, without excluding other elements or objects. Words such as "connected" or "linked" are not limited to physical or mechanical connections but can include electrical connections, whether direct or indirect. Unless otherwise defined, the features such as "parallel," "perpendicular," and "identical" used in the embodiments of this application include strictly defined "parallel," "perpendicular," and "identical," as well as cases where "generally parallel," "generally perpendicular," and "generally identical" include a certain margin of error. For example, "generally" as described above may indicate that the difference between the compared objects is within 10% or 5% of the average value of the compared objects. Unless otherwise specified in the embodiments of this application, the quantity of a component or element is implied; it means that the component or element may be one or more, or can be understood as at least one. "At least one" means one or more, and "more" means at least two.

[0023] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the application. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items.

[0024] Furthermore, the technical features involved in the different embodiments of this application described below can be combined with each other as long as they do not conflict with each other. Obviously, the described embodiments are only a part of the embodiments of this application, not all of them. All other embodiments obtained by those skilled in the art based on the described embodiments of this application without creative effort are within the scope of protection of this application.

[0025] As shown in Figures 1 and 2, the blower wind force detection device in the blower detection device 8 disclosed in this application includes: a detection frame 1, a first detection platform 2, a pad column 3, a fixing clamp 4, and a wind force detection module 5.

[0026] The pad column 3 is fixedly installed on the table surface of the first testing table 2, and the fixing clamp 4 is installed at one end of the pad column 3. The fixing clamp 4 is used to fix the blower housing 9.

[0027] The first testing platform 2 and the wind force detection module 5 are mounted on the testing frame 1. The detection direction of the wind force detection module 5 is set opposite to the direction of the air outlet of the hair dryer housing 9. The wind force detection module 5 is used to detect the wind force after the hair dryer is started.

[0028] The support pillars 3 can be cylindrical in shape, and their number can be set according to requirements. They are distributed at different positions on the table surface of the first testing platform 2. To increase the stability of fixing the blower housing 9, support pillars 3 can be set on one side of the table surface relative to the first testing platform 2, such as setting support pillars 3 on all three sides of the table surface. Support pillars 3 are not set on the side near the wind force detection module 5 (to avoid affecting the wind force detection of the blower housing 9). One end of the fixing clamp 4 is set on the end face of the support pillar 3, and the other end is used to fix the blower with other components. The blower is a component set on the front of the garden robot. During the testing process, only the blower housing 9 with the blower motor can be tested. An impeller 11 is provided inside the blower housing 9, and a corresponding impeller 11 is located on the back of the blower housing 9. When driven by the motor, the impeller 11 can rotate to generate flowing air; the detection frame 1 may include a first detection frame 1 and a second detection frame 1. The two detection frames 1 can be integrated or not integrated. The structure on which the first detection frame 1 is mounted can be a wind force detection module 5, and the structure on which the second detection frame 1 is mounted can be a first detection platform 2. The frame structure of the second detection frame 1 can raise the entire platform of the first detection platform 2. The platform of the first detection platform 2 can be a mounting plate with a positioning groove specially set for the positioning and installation of the housing; the center of the detection surface of the wind force detection module 5 is directly opposite the air outlet of the air blower in the blower. When the blower is started, the air force of the air outlet can blow towards the detection surface of the detection module. The electronic scale 501 in the detection module can convert the wind force value into a readable pressure value;

[0029] In this embodiment, the hair dryer is fixedly mounted on the first detection platform 2 by the fixing clamp 4 set on the pad column 3 on the first detection platform 2 of the detection frame 1. When the hair dryer is started, the wind force value of the hair dryer can be detected by the wind force detection module 5 set on the detection frame 1. In this way, the detection device can be reused for detection during the detection process, and automatic detection is completed through the first detection platform 2, thereby improving the wind force detection efficiency of the hair dryer.

[0030] As shown in Figure 1, in one embodiment, the pads 3 are distributed on the table surface of the first detection table 2, and one fixing clamp 4 is provided on each pad 3. The fixing clamps 4 on the pads 3 together fix the hair dryer housing 9.

[0031] Among them, the table surface of the first testing table 2 can be distributed and set on the table surface of the first testing table 2, and each pad post 3 is provided with a fixing clamp 4 for fixing the hair dryer housing 9 on the end body away from the table surface.

[0032] In this embodiment, multiple fixing clamps 4 can work together to fix the blower housing of the hair dryer, improving the stability of the hair dryer during the blowing test process.

[0033] As shown in Figures 2 and 3, in one embodiment, the fixing fixture 4 includes a clamping member 401 and an operating member 402. The operating member 402 is movably connected to the clamping member 401. When the operating member 402 is in different directions relative to the first detection table 2, the blower is in different active states.

[0034] The clamping member 401 has a clamping space 4012 inside, through which the structure used to fix the hair dryer housing 9 can be clamped. The operating member 402 is movably connected to the clamping member 401. The handle of the operating member 402 can fit the user's hand. When the operating member 402 is perpendicular to the table surface of the first detection table 2, the hair dryer is in a fixed interactive state. When the operating member 402 is parallel to the table surface of the first detection table 2, the hair dryer is in a non-fixed state. The operating member 402 also has operating ends on both sides, and the operating ends on both sides are mounted on the clamping member 401.

[0035] This embodiment changes the movement state of the hair dryer on the first detection table 2 by precisely controlling the direction of the operating component 402, which can achieve a certain degree of automated control and improve detection efficiency. When detection is required, the hair dryer is fixed, and when detection is not required, the hair dryer is removed from the table.

[0036] As shown in Figures 2 and 3, in one embodiment, the clamping member 401 includes clamping portions 4011 arranged symmetrically with each other, and a clamping space 4012 is formed between the clamping portions 4011.

[0037] Among them, the clamping part 4011 in the clamping member 401 can be similar to an arched part. After the two clamping parts 4011 are symmetrically arranged, a clamping space 4012 is formed between the two clamping parts 4011. The joint position of the two clamping parts 4011 is a fixed connection point. As the operating part moves, the entire clamping part 4011 can be driven, and the components of the clamping space 4012 in the clamping part 4011 can also be driven.

[0038] In this embodiment, the clamping space 4012 formed by the symmetrically arranged clamping parts 4011 can stably clamp the component to be clamped.

[0039] As shown in Figures 1 and 2, in one embodiment, the hair dryer detection device 8 further includes a clamping block 6, on which a fixing member 601 is provided, and the fixing member 601 is clamped in the clamping space 4012 of the clamping member 401.

[0040] The clamping block 6 can be configured as a square structure, with a groove at the bottom that fits the blower housing. This groove can directly abut against the blower housing of the blower. The volume of the fixing member 601 on the clamping block 6 is just right to fit the size of the clamping space 4012. In addition, the clamping block 6 can be a UV block made of soft material. The soft material setting can protect the blower housing 9 when the clamping block 6 presses the blower housing.

[0041] The design of the clamping block 6 and the fixing member 601 in this embodiment can ensure that the hair dryer remains fixed during the test, avoiding detection errors caused by the shaking or movement of the hair dryer. In other words, a stable testing environment helps to improve the accuracy and reliability of wind power detection. Since the design of the clamping block 6 and the fixing member 601 enables the testing device to firmly fix the hair dryer housing 9, multiple tests can be performed continuously, improving testing efficiency.

[0042] As shown in Figures 2 and 3, in one embodiment, the fixing clamp 4 further includes a first fixing seat 403. One end of the first fixing seat 403 is fixedly connected to the end face of the pad post 3. The first fixing seat 403 is provided with a first connecting hole 4031. The end of the clamping member 401 is provided with a second connecting hole 4013 corresponding to the first connecting hole 4031. The clamping member 401 is movably connected to the first fixing seat 403 through the first connecting hole 4031 and the second connecting hole 4013.

[0043] The fixing clamp 4 is provided with a first fixing seat 403, which can be a hollow seat structure. A fixing member 601 (such as a fixing screw 6012) is provided on the plate surface of the first fixing seat 403 near the end face of the pad 3. The fixing member 601 fixes the first fixing seat 403 to the end face of the pad 3. A first connecting hole 4031 is provided on the end of the first fixing seat 403 away from the pad 3, and a second connecting hole 4013 is provided on the end of the clamping member 401. The holes of the first connecting hole 4031 and the second connecting hole 4013 are in a corresponding relationship. An external through-hole can be inserted into the first connecting hole 4031 and the second connecting hole 4013 at the same time, and the clamping member 401 is fixedly connected to the first fixing seat 403 in the fixing clamp 4. Through the cooperation of the first connecting hole 4031 and the second connecting hole 4013, the clamping member 401 can be controlled by the fixing clamp 4 to change the activity state of the hair dryer by changing the fixing clamp 4.

[0044] It should be noted that the first connecting hole 4031 provided on the first fixing base 403 and the second connecting hole 4013 provided on the clamping member 401 can both be two;

[0045] In this embodiment, the first fixed base 403 is an important component of the clamp. Its main function is to provide a stable and robust support base. By being fixedly connected to the end face of the pad column 3, the first fixed base 403 can ensure the stability and reliability of the entire clamp during use.

[0046] As shown in Figures 2 and 3, in one embodiment, the operating member 402 is provided with a movable plate 4022, one end of the movable plate 4022 is provided with a third connecting hole 4021, and the clamping member 401 is provided with a fourth connecting hole 4014 corresponding to the third connecting hole 4021 at a position spaced apart from the second connecting hole 4013. The clamping member 401 is movably connected to the operating member 402 through the third connecting hole 4021 and the fourth connecting hole 4014.

[0047] The clamping member 401 has a fourth connecting hole 4014 at the position of the second connecting hole 4013, while the operating member 402 has a third connecting hole 4021 at its end. The third connecting hole 4021 and the fourth connecting hole 4014 are corresponding. An external through-hole can be inserted through both the third connecting hole 4021 and the fourth connecting hole 4014 at the same time. The clamping member 401 and the operating member 402 in the fixed fixture 4 are movably connected. More specifically, the operating member 402 is provided with a movable plate 4022 (there can be two movable plates 4022, which are symmetrically arranged). One end of the movable plate 4022 has a third connecting hole 4021 corresponding to the fourth connecting hole 4014. The other end of the movable plate 4022 is fixedly connected to the main body of the operating member 402. After the operating member 402 moves the movable plate 4022 as a whole, the other end of the movable plate 4022 can move the clamping member 401.

[0048] It should be noted that the fourth connecting hole 4014 provided on the clamping member 401 and the third connecting hole 4021 provided on the clamping member 401 can both be two;

[0049] The design of the third connecting hole 4021 and the fourth connecting hole 4014 in this embodiment enables a movable connection between the clamping member 401 and the operating member 402. This connection allows the clamping member 401 to move relative to the operating member 402 within a certain range. The movable connection design enables the clamping member 401 to quickly and accurately cooperate with the operating member 402, improving clamping efficiency and shortening the detection time.

[0050] As shown in Figures 2 and 3, in one embodiment, the fixing member 601 includes a fixing bolt 6011, a fixing screw 6012, and a fixing block 6013. The fixing bolt 6011 passes through the clamping space 4012 and is fixed to the clamping member 401 by the fixing screw 6012. The fixing block 6013 is disposed at the end of the fixing bolt 6011 and abuts against the clamping block 6.

[0051] The fastener 601 can be fixed to the clamping member 401 by means of a fastener 6011, a fastener 6012, and a fastener block 6013. A fastener block 6013 is provided at the end of the fastener 6011. The fastener block 6013 can abut against one end or a plane of the clamping block 6. The number of fastener screws 6012 is not limited and can be set at multiple positions of the fastener 6011. As shown in Figure 2, two fastener screws 6012 are set to snap and fix the fastener screws 6012.

[0052] In this embodiment, the fixing member 601 provided in the clamping member 401 can cooperate with the clamping block 6 to fix the hair dryer housing 9 of the hair dryer, thereby further improving the accuracy and reliability of the detection environment.

[0053] As shown in Figure 1, in one embodiment, the testing frame 1 is provided with a fixing plate 7, and the wind power testing module 5 includes an electronic scale 501. The fixing plate 7 is used to press down on the electronic scale 501 and fix the electronic scale 501 to the testing frame 1.

[0054] The sensor in the electronic scale 501 can identify the pressure value received by the detection surface, and thus determine the wind force value in the hair dryer. A fixing plate 7 is provided on the detection frame 1 and at the top of the electronic scale 501. The mounting holes on the surface of the fixing plate 7 are provided with fixing screws 6012, which can press the end of the electronic scale downward on the surface of the fixing plate 7 to prevent the electronic scale 501 from falling off the detection frame 1.

[0055] As shown in Figure 1, in one embodiment, the wind power detection module 5 further includes a detection disk 502, the center of the detection surface of the detection disk 502 being set opposite to the direction of the air outlet of the blower housing 9.

[0056] One side of the detection plate 502 is opposite to the air outlet of the blower housing 9, and the other side of the detection plate 502 is in contact with the electronic scale 501. A coordinate line is set at the center of the detection plate 502. The coordinate line is used to align with the position of the air outlet. In addition, the detection plate 502 can be set as an aluminum disc.

[0057] In this embodiment, the detection plate 502, which is set opposite to the air outlet of the hair dryer housing, can accurately determine the detection position corresponding to the air outlet and the wind force value in the air outlet.

[0058] As shown in Figures 5 to 8, an impeller detection device 14 in a hair dryer detection device 8 disclosed in this application embodiment includes a second detection platform 10, a second fixed base 1001, a detection block 1002, a detection bracket 1003 and a detection meter 1004 disposed on the second detection platform 10.

[0059] The second fixed seat 1001 is movably connected to the bearing in the impeller 11;

[0060] The detection block 1002 is disposed at the bottom of the impeller 11, and the surface of the detection block 1002 is configured with an arc structure. The detection block 1002 is used to detect whether the contour of the impeller 11 meets the standard.

[0061] The detector 1004 is provided at a certain height on the detection bracket 1003. The detector 1004 is used to detect whether the flatness and roundness of the impeller 11 when it rotates meet the standard.

[0062] The second fixed base 1001 can be hexagonal in shape, with a mounting hole at its bottom near the surface of the second testing table 10. The second fixed base 1001 can be fixedly connected to the surface of the second testing table 10 through the mounting hole. A fixing hole 10011 is provided at one position (e.g., a fixing hole 10011 is provided on one side of the second fixed base 1001). The fixing hole 10011 is for the bearing component to pass through. After passing through the fixing hole 10011, the bearing component passes through the center of the impeller 11, allowing the impeller 11 to rotate 360 ​​degrees relative to the second fixed base 1001. The testing block 1002 is installed at the bottom of the impeller 11, and its surface arc structure can contact the rotating impeller 11 (through rotation). The contact of the impeller 11 can detect whether its profile conforms to the ideal profile. The bottom of the impeller 11 is provided with a mounting hole, through which the detection block 1002 can be fixedly connected to the surface of the second detection table 10. The detection bracket 1003 is a frame set on the surface of the second detection table 10, which mainly sets the detection gauge 1004 in the corresponding detection position. The detection gauge 1004 is called a lever dial indicator, lever gauge or reference gauge. It is a measuring instrument that uses a lever-gear transmission mechanism or a lever-screw transmission mechanism to convert dimensional changes into pointer angular displacement and indicate the length dimension value. Multiple detection gauges 1004 can be set on the outer side near the impeller 11 to determine whether the flatness and roundness of the rotating impeller 11 conform to the ideal plane and ideal circle.

[0063] In this embodiment, the contour, flatness and roundness of the entire moving impeller 11 are fully inspected by the inspection block 1002 and the inspection meter 1004 set on the second inspection table 10. No manual measurement is required (the inspection can be completed automatically by rotating the impeller 11 which is connected to the second fixed seat 1001). At the same time, the inspection device can repeat the inspection, which does not affect the inspection efficiency or the installation efficiency.

[0064] As shown in Figure 6, in one embodiment, a fixing hole 10011 is provided at a position of the second fixing base 1001. The fixing hole 10011 includes a first fixing hole 100111 and a second fixing hole 100112 that are interconnected. The first fixing hole 100111 is nested within the second fixing hole 100112.

[0065] The fixing hole 10011 is designed to pass through the bearing component. After the bearing component is passed through, part of the structure will be movably connected to the impeller 11. Two fixing holes 10011 with different hole diameters are provided in the fixing hole 10011 to adapt to the column structure provided on the bearing component, such as two interlocking cylinders on the bearing component. The second fixing hole 100112 is located inward compared to the first fixing hole 100111.

[0066] This embodiment, through the nested design of the first fixing hole 100111 and the second fixing hole 100112, can increase the stability of the bearing component in the entire movable connection, and the stability of the subsequent movable connection with the impeller 11 can also be further improved.

[0067] As shown in FIG7, in one embodiment, the detection block 1002 includes a back side portion 10021, an arc-shaped portion 10022, and a fixing portion 10023. The back side portion 10021 is arranged along the arc of the arc-shaped portion 10022. The arc-shaped portion 10022 abuts against the outer contour of the impeller 11. The fixing portion 10023 is spaced apart from the arc-shaped portion 10022 and abuts against the arc-shaped portion 10022.

[0068] The back side portion 10021 and the arc-shaped portion 10022 can be integrally formed. The back side portion 10021 is provided on the side of the arc-shaped portion 10022 near the second fixing seat 1001. An arc-shaped mechanism that abuts against the outer contour of the impeller 11 is formed on the surface of the arc-shaped portion 10022. A fixing portion 10023 is provided at intervals in the arc-shaped portion 10022. The fixing portion 10023 is used to fix the outer shell of the impeller 11 on the arc-shaped portion 10022.

[0069] In this embodiment, because the arc-shaped portion 10022 fits tightly with the outer contour of the impeller 11, it can ensure that the detection block 1002 can accurately capture any deformation or wear of the impeller 11 during the detection process. The close contact also helps to reduce detection errors and improve the accuracy and reliability of the detection results.

[0070] As shown in Figure 7, in one embodiment, the detection bracket 1003 includes a first connecting rod 10031 and a second connecting rod 10032. The first connecting rod 10031 and the second connecting rod 10032 are connected by a connector 12, and the detection meter 1004 and the second connecting rod 10032 are connected by the connector 12.

[0071] Among them, two sets of first connecting rods 10031 and second connecting rods 10032 can be set on the table surface of the second testing table 10 on the testing bracket 1003. Both the first connecting rods 10031 and the second connecting rods 10032 are rod structures. The first connecting rods 10031 and the second connecting rods 10032 can form a connection of 90 degrees or close to 90 degrees through the connecting piece 12. After the test meter 1004 is connected to the connecting piece 12 of the second connecting rod 10032, the fixed connection of the test meter 1004 and the second connecting rod 10032 can be realized.

[0072] In this embodiment, the first connecting rod 10031 and the second connecting rod 10032 are connected by the connector 12 to form a stable support structure. The stable support structure provides stable support for the detector 1004, ensuring the accuracy and reliability of the detection process. The modular design of the support makes the connection between the various components simple and quick. During installation, the various components can be assembled by connecting the connector 12. When maintenance or replacement of components is required, the components can be easily disassembled and reassembled, reducing maintenance costs and time. The stable support structure and flexible connection design enable the detector 1004 to be positioned more accurately on the target, thereby improving the accuracy of the detection.

[0073] [Correction 01.12.2025 based on Rule 91] As shown in FIG8, in one embodiment, the connector 12 includes an operation part 1201, a first sleeve part 1202 and a second sleeve part 1203. The operation part 1201 and the first sleeve part 1202 are in the same setting direction, and the operation part 1201 and the second sleeve part 1203 are in different setting directions.

[0074] The operating part 1201 can be configured to be operated by the user's hand, such as a flat structure. The user can control the tightness of the second fitting part 1203 by rotating the structure. A fitting space is opened in the middle area of ​​the first fitting part 1202 and the second fitting part 1203. The different setting directions of the first fitting part 1202 and the second fitting part 1203 can ensure that the two parts are in different installation positions. The operating part 1201 and the first fitting part 1202 are in the same setting direction, which can increase the horizontal installation distance of the first fitting part 1202.

[0075] [Correction 01.12.2025 according to Rule 91] As shown in FIG8, in one embodiment, the second sleeve part 1203 includes a first sleeve body 12031 and a second sleeve body, the first sleeve body 12031 abutting against the first sleeve part 1202, and the second sleeve body 12032 abutting against the operation part 1201.

[0076] The second sleeve part 1203 includes a first sleeve body 12031 and a second sleeve body 12032 which can be symmetrically arranged. The two symmetrically arranged sleeve bodies can form an installation space in the second sleeve part 1203. The plate surface of the first sleeve body 12031 abuts against the first sleeve part 1202, and the plate surface of the second sleeve body 12032 abuts against the operating part 1201.

[0077] The contact between the first sleeve 12031 and the first sleeve part 1202, and the contact between the second sleeve 12032 and the operating part 1201 in this embodiment, form a stable support structure, which helps to ensure the stability of the entire structure. Designing the first sleeve 12031 and the second sleeve 12032 to contact the first sleeve part 1202 and the operating part 1201 respectively helps to achieve a reasonable division of functional areas and improve the overall installation efficiency.

[0078] [Correction 01.12.2025 according to Rule 91] As shown in FIG8, in one embodiment, a fitting gap 1204 is formed between the first fitting body 12031 and the second fitting body 12032, and the fitting gap 1204 decreases when the operating member rotates in the direction of the first fitting body 12031.

[0079] The first set body 12031 and the second set body 12032 form a set gap 1204 which can be adjusted by rotating the operating component. For example, the set gap 1204 becomes smaller after rotating clockwise.

[0080] In this embodiment, the size of the sleeve gap 1204 is adjusted by rotating the operating component, making the operation process more intuitive and convenient. Users can adjust the entire structure simply by rotating the component.

[0081] [Correction 01.12.2025 according to Rule 91] As shown in FIG8, in one embodiment, a connecting part 1205 is provided between the operating part 1201 and the first sleeve part 1202, and the connecting part 1205 is disposed in the sleeve gap 1204 between the first sleeve body 12031 and the second sleeve body 12032.

[0082] The connecting part 1205 can simultaneously connect the first set of devices 12031, the second set of devices 12032 and the operating component, and the first set of devices 12031, the second set of devices 12032 and the operating component form a whole;

[0083] In this embodiment, the connector 12 forms the integrity of the entire structure.

[0084] [Correction 01.12.2025 according to Rule 91] As shown in Figures 5, 7 and 8, in one embodiment, the bottom of the detector 1004 is provided with a plug-in part 10041. After the plug-in part 10041 is inserted into the first sleeve part 1202, the detector 1004 is fixedly connected to the detector bracket 1003.

[0085] Among them, a plug-in part 10041 adapted to the installation space in the first set part 1202 is provided on the bottom of the detector 1004. After the plug-in part 10041 is inserted into the first set part 1202, the detector 1004 is fixedly set on the detector bracket 1003.

[0086] The plug-in design of the plug-in part 10041 and the first sleeve part 1202 in this embodiment can prevent the detector 1004 from falling off or loosening due to vibration or external force during use; the plug-in design reduces the number of connection points, thereby reducing the probability of failure due to connection point failure.

[0087] As shown in Figure 7, in one embodiment, a support pad 13 is provided on the bottom surface of the detection platform away from the platform surface, and the support pad 13 is distributed at the four corners of the bottom surface.

[0088] Among them, pads 13 can be set at the four corners of the ground of the second testing table 10. The pads 13 include connecting parts 1205 and supporting parts. The connecting parts 1205 are connected to the ground, and the supporting parts are placed on the plane after being connected to the connecting parts 1205.

[0089] In this embodiment, the pad 13 not only increases the vertical height of the second testing platform 10 relative to the ground (making it easier for manual operation in a suitable position), but also prevents damage to the bottom surface of the second testing platform 10.

[0090] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and not to limit them; under the concept of this application, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of different aspects of this application as described above, which are not provided in detail for the sake of brevity; although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A hair dryer detection device, wherein, Includes a testing frame, a first testing platform, support columns, fixing fixtures, and a wind force testing module; The pad column is fixedly installed on the table surface of the first testing platform, and the fixing clamp is installed at one end of the pad column. The fixing clamp is used to fix the blower housing. The first testing platform and the wind force detection module are mounted on the testing frame. The detection direction of the wind force detection module is set opposite to the direction of the air outlet of the hair dryer housing. The wind force detection module is used to detect the wind force after the hair dryer is started.

2. The hair dryer detection device according to claim 1, wherein, The pads are distributed on the table surface of the first testing platform, and each pad is equipped with a fixing clamp. The fixing clamps on the pads together fix the hair dryer housing.

3. The hair dryer detection device according to claim 2, wherein, The fixing fixture includes a clamping component and an operating component. The operating component is movably connected to the clamping component. When the operating component is in different directions relative to the first detection table, the blower is in different active states.

4. The hair dryer detection device according to claim 3, wherein, The clamping member includes clamping portions arranged symmetrically to each other, and a clamping space is formed between the clamping portions.

5. The hair dryer detection device according to claim 4, wherein, The hair dryer detection device further includes a clamping block, on which a fixing member is provided, and the fixing member is clamped in the clamping space of the clamping member.

6. The hair dryer detection device according to claim 3, wherein, The fixing clamp further includes a first fixing seat, one end of which is fixedly connected to the end face of the pad post. The first fixing seat is provided with a first connecting hole, and the end of the clamping member is provided with a second connecting hole corresponding to the first connecting hole. The clamping member is movably connected to the first fixing seat through the first connecting hole and the second connecting hole.

7. The hair dryer detection device according to claim 6, wherein, The operating component is provided with a movable plate, one end of which is provided with a third connecting hole. The clamping component is provided with a fourth connecting hole corresponding to the third connecting hole at a position spaced apart from the second connecting hole. The clamping component is movably connected to the operating component through the third connecting hole and the fourth connecting hole.

8. The hair dryer detection device according to claim 5, wherein, The fixing component includes a fixing bolt, a fixing screw, and a fixing block. The fixing bolt passes through the clamping space and is fixed to the clamping component by the fixing screw. The fixing plate is disposed at the end of the fixing bolt and abuts against the clamping block.

9. The hair dryer detection device according to claim 1, wherein, The testing frame is equipped with a fixing plate, and the wind power testing module includes an electronic scale. The fixing block is used to press down on the electronic scale and fix it to the testing frame.

10. The hair dryer detection device according to claim 9, wherein, The wind power detection module also includes a detection plate, the center of which is positioned opposite to the direction of the air outlet of the blower housing.

11. The hair dryer detection device according to claim 1, wherein, It also includes a first testing platform, a first fixed base, a testing block, a testing bracket, and a testing meter disposed on the first testing platform; The first fixed seat is movably connected to the bearing in the impeller; The detection block is disposed at the bottom of the impeller, and the surface of the detection block is configured with an arc structure. The detection block is used to detect whether the profile of the impeller meets the standard. The measuring instrument is installed at a certain height on the testing bracket. The measuring instrument is used to detect whether the flatness and roundness of the impeller when it rotates meet the standard.

12. The hair dryer detection device according to claim 11, wherein, A connecting hole is provided at a position of the first fixing base. The connecting hole includes a first connecting hole and a second connecting hole that are interconnected, with the first connecting hole nested within the second connecting hole.

13. The hair dryer detection device according to claim 11, wherein, The detection block includes a back side, an arc-shaped part, and a fixing part. The back side is arranged along the arc shape of the arc-shaped part, and the arc-shaped part abuts against the outer contour of the impeller. The fixing part is spaced apart from the arc-shaped part and abuts against the arc-shaped part.

14. The hair dryer detection device according to claim 11, wherein, The detection bracket includes a first connecting rod and a second connecting rod, which are connected by a connector. The detector and the second connecting rod are also connected by a connector.

15. The hair dryer detection device according to claim 14, wherein, The connector includes an operating part, a first sleeve part, and a second sleeve part. The operating part and the first sleeve part are in the same orientation, and the operating part and the second sleeve part are in different orientations.

16. The hair dryer detection device according to claim 15, wherein, The second sleeve part includes a first sleeve body and a second sleeve body, the first sleeve body abutting against the first sleeve part, and the second sleeve body abutting against the operating part.

17. The hair dryer detection device according to claim 16, wherein, A fitting gap is formed between the first sleeve and the second sleeve, and the fitting gap decreases when the operating member rotates toward the first sleeve.

18. The hair dryer detection device according to claim 17, wherein, A connecting part is provided between the operating part and the first sleeve part, and the connecting part is disposed in the sleeve gap between the first sleeve body and the second sleeve body.

19. The hair dryer detection device according to claim 15, wherein, The bottom of the detector is provided with a plug-in part. After the plug-in part is inserted into the first sleeve part, the detector is fixedly connected to the detection bracket.

20. The hair dryer detection device according to claim 11, wherein, The testing platform has support blocks on its bottom surface away from the platform surface, and the support blocks are distributed at the four corners of the bottom surface.