WIFI throughput testing apparatus

By using adjustment components and scale lines in the WIFI throughput testing device, the distance between the antenna under test and the accompanying antenna can be precisely adjusted, solving the problem of inaccurate distance adjustment in the prior art and improving the accuracy and compatibility of the test results.

CN224596617UActive Publication Date: 2026-08-04WUHAN ZHICHUANG SHUANGYI TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WUHAN ZHICHUANG SHUANGYI TECH CO LTD
Filing Date
2025-09-12
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

In existing technologies, adjusting the distance between the product under test and the accompanying antenna based on experience is difficult to achieve the optimal transmission coupling point, resulting in poor accuracy of WIFI throughput test results.

Method used

A WIFI throughput testing device is used, including a support component, an antenna mount, and an adjustment component. The adjustment component has scale lines on its surface, which can be adjusted in different directions to precisely adjust the distance between the antenna under test and the accompanying antenna, adapting to the differences in antenna design positions of different products.

Benefits of technology

By precisely adjusting the distance between the accompanying antenna and the antenna under test, the accuracy of WIFI throughput test results was improved, and the compatibility problem of different product antenna design positions was solved.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application belongs to the technical field of WIFI testing devices, specifically providing a WIFI throughput testing device. The WIFI throughput testing device includes a support component, an adjusting component, and an antenna mount. The support component supports the product under test with an antenna to be tested. The adjusting component has a connecting part for fixed connection with the antenna mount. The antenna mount is used to install the auxiliary antenna. The adjusting component is connected to the support component and its position relative to the support component is adjustable to adjust the distance between the connecting part and the antenna under test. Multiple adjusting components are available, with at least two adjustable components capable of position adjustment in different directions. The surface of the adjusting component is provided with a first scale line. Based on the first scale line, the distance between the auxiliary antenna and the antenna under test can be precisely adjusted to achieve the optimal transmission coupling point, thereby improving the accuracy of the WIFI throughput test results. Furthermore, the position of the antenna mount can be flexibly adjusted to solve the compatibility problem of different antenna design positions for different products.
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Description

Technical Field

[0001] This application belongs to the technical field of WIFI testing devices, specifically relating to a WIFI throughput testing device. Background Technology

[0002] In the manufacturing process of products with Wi-Fi functionality, it is often necessary to test the product's Wi-Fi throughput to determine whether the wireless transmission rate meets standards. Wi-Fi throughput refers to the amount of data successfully transmitted by a Wi-Fi network per unit of time. During testing, the product under test (TBT) and a companion antenna are typically placed together in a shielded enclosure, allowing the TBT's antenna to wirelessly connect with the companion antenna to transmit data, thus achieving the Wi-Fi throughput test. Different types of TBT products often require different distances from the companion antenna for Wi-Fi throughput testing. However, currently, the distance is generally adjusted based on experience, making it difficult to achieve the optimal transmission coupling point, resulting in poor accuracy of the Wi-Fi throughput test results. Utility Model Content

[0003] The purpose of this application is to provide a WIFI throughput testing device, which aims to solve the technical problem in the prior art that it is difficult to adjust the distance between the product under test and the antenna under test to the optimal transmission coupling point by relying on experience, thus resulting in poor accuracy of WIFI throughput test results.

[0004] To achieve the above objectives, the technical solution adopted in this application is: a WIFI throughput testing device, including a support component, an antenna mount, and an adjusting component. The support component is used to support the product under test with an antenna under test. The antenna mount is used to install a companion antenna that cooperates with the antenna under test. The adjusting component has a connecting part for fixed connection with the antenna mount. The adjusting component is connected to the support component and its position relative to the support component is adjustable to adjust the distance between the connecting part and the antenna under test. There are multiple adjusting components, and at least two adjusting components can be adjusted in different directions. The surface of the adjusting component is provided with at least one set of first scale lines for length measurement, and the arrangement direction of multiple first scale lines in the set of first scale lines is the same as the position adjustment direction of the adjusting component.

[0005] Furthermore, the adjusting member has a first end and a second end at opposite ends in its position adjustment direction. The first end can move to one side of the support assembly, and the second end can move to the other side of the support assembly. Both the first end and the second end have connecting parts.

[0006] Furthermore, there are two sets of first scale lines, with the two sets of first scale lines arranged side by side, and the values ​​corresponding to the two sets of first scale lines are arranged in opposite directions from small to large.

[0007] Furthermore, the support assembly includes a base, a support member, and a test bench. The base is connected to the test bench via the support member. The test bench is located above the base and spaced apart from it. The side of the test bench facing away from the base is used to support the product to be tested. An accommodating space is formed between the test bench and the base. The adjusting member is at least partially located within the accommodating space. The connecting part can extend out of the accommodating space and connect to the antenna mount.

[0008] Furthermore, the plurality of adjusting components include a first adjusting component and a second adjusting component. The first adjusting component is connected to the side of the base facing the test bench and can be adjusted in position along a first direction. The second adjusting component is connected to the side of the first adjusting component facing away from the base and can be adjusted in position along a second direction, which is different from the first direction.

[0009] Furthermore, the first adjusting member is provided with a first strip hole extending along a first direction, the second adjusting member is provided with a second strip hole extending along a second direction, and the base is provided with a first threaded hole; the WIFI throughput testing device also includes a first threaded fastener, which passes through the second strip hole and the first strip hole in sequence and is threadedly connected to the first threaded hole.

[0010] Furthermore, there are two first strip holes, arranged side by side with intervals; there are two second strip holes, arranged side by side with intervals; there are four first threaded holes and four first threaded fasteners, each threadedly connected to one of the four first threaded holes; two first threaded fasteners pass through two second strip holes and share one first strip hole, while the other two first threaded fasteners pass through two second strip holes and share another first strip hole.

[0011] Furthermore, the test platform has two sets of second scale lines on the side surface facing away from the base. In one set of second scale lines, the arrangement direction of multiple second scale lines is consistent with the first direction, and in the other set of second scale lines, the arrangement direction of multiple second scale lines is consistent with the second direction.

[0012] Furthermore, the antenna mount is provided with a connection hole, one of which is a through hole and the other of which is a second threaded hole; the WIFI throughput testing device also includes a second threaded fastener, which passes through the through hole and is threadedly connected to the second threaded hole.

[0013] Furthermore, the antenna mount is provided with multiple mounting holes for mounting the accompanying antenna.

[0014] Compared with existing technologies, the beneficial effects of the WIFI throughput testing device provided in this application are as follows: During use, the product under test with the antenna under test is placed on a support assembly, the antenna mount is fixedly connected to the connecting part of the adjustment component, and a secondary antenna is installed on the antenna mount. The position of the adjustment component relative to the support assembly is adjusted to adjust the distance between the antenna under test and the secondary antenna on the antenna mount connected to the connecting part. After adjustment, the secondary antenna and the antenna under test are wirelessly connected and transmit data to each other to perform WIFI throughput testing. Since at least one set of first scale lines is provided on the surface of the adjustment component, and the arrangement direction of multiple first scale lines in one set is the same as the position adjustment direction of the adjustment component, the distance between the secondary antenna and the antenna under test can be precisely adjusted according to the first scale lines to achieve the optimal transmission coupling point, thereby improving the accuracy of the WIFI throughput test results. Furthermore, since there are multiple adjustment components, and at least two adjustment components can be adjusted in different directions, the position of the antenna mount can be flexibly adjusted according to the position of the antenna under test of the product under test, so that the antenna mount is fixedly connected to the adjustment component that meets the requirements, solving the compatibility problem of different antenna design positions for different products. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the structure of the WIFI throughput testing device provided in the embodiments of this application; Figure 2 for Figure 1 The diagram shown is a structural schematic of the WIFI throughput testing device after the test stand and support components have been removed. Figure 3 for Figure 2 The diagram shown is an exploded view of the WIFI throughput testing device.

[0017] 10. Support assembly; 11. Test stand; 111. Second scale line; 12. Base; 121. First threaded hole; 13. Support component; 14. Accommodation space; 20. Adjusting component; 21. Connecting part; 22. First scale line; 201. First adjusting component; 2011. First strip hole; 202. Second adjusting component; 2021. Second strip hole; 30. Antenna mount; 31. Mounting hole; 32. Connection hole; 40. Second threaded fastener; 50. First threaded fastener; 60. Accompanying antenna. Detailed Implementation

[0018] The embodiments of this application are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.

[0019] In the description of this application, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and 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 a limitation of this application.

[0020] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0021] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0022] Combination Figure 1 and Figure 2As shown in the figure, this application provides a WIFI throughput testing device, including a support component 10, an adjusting component 20, and an antenna mount 30. The support component 10 is used to support the product under test with an antenna under test. The antenna mount 30 is used to install a companion antenna 60 that cooperates with the antenna under test. The adjusting component 20 has a connecting part 21 for fixed connection with the antenna mount 30. The adjusting component 20 is connected to the support component 10 and its position relative to the support component 10 is adjustable to adjust the distance between the connecting part 21 and the antenna under test. There are multiple adjusting components 20, and at least two adjusting components 20 can be adjusted in different directions. At least one set of first scale lines 22 for length measurement is provided on the surface of the adjusting component 20, and the arrangement direction of multiple first scale lines 22 in the set of first scale lines 22 is the same as the position adjustment direction of the adjusting component 20.

[0023] In use, the product under test with the antenna under test is placed on the support assembly 10, the antenna mount 30 is fixedly connected to the connecting part 21 of the adjusting member 20, and the auxiliary antenna 60 is installed on the antenna mount 30. The position of the adjusting member 20 relative to the support assembly 10 is adjusted to adjust the distance between the antenna under test and the auxiliary antenna 60 on the antenna mount 30 connected to the connecting part 21. After adjustment, the auxiliary antenna 60 and the antenna under test are wirelessly connected and transmit data to each other to perform WIFI throughput testing. Since the surface of the adjusting member 20 is provided with at least one set of first scale lines 22 for length measurement, and the arrangement direction of multiple first scale lines 22 of one set of first scale lines 22 is the same as the position adjustment direction of the adjusting member 20, the distance between the auxiliary antenna 60 and the antenna under test can be accurately adjusted according to the first scale lines 22 to achieve the optimal transmission coupling point, thereby improving the accuracy of the WIFI throughput test results. In addition, since there are multiple adjusting members 20, and at least two adjusting members 20 can be adjusted in different directions, the position of the antenna holder 30 can be flexibly adjusted according to the position of the antenna under test of the product under test, so that the antenna holder 30 is fixedly connected to the connecting part 21 of the adjusting member 20 that meets the requirements, thus solving the compatibility problem of different antenna design positions of different products.

[0024] The WIFI throughput testing device provided in this embodiment can be applied to the WIFI throughput testing of various products under test, such as routers, optical modems, repeater APs, power banks, portable WIFI devices, etc. The antenna under test can be an external antenna or an internal antenna.

[0025] The range and scale value of a set of first scale lines 22 can be determined according to actual needs. For example, the range of a set of first scale lines 22 can be 25cm, and the scale value is the distance between each two adjacent first scale lines 22, which can be 0.5cm, which can meet the WIFI throughput testing needs of most products on the market.

[0026] The number of adjusting components 20 is not limited; it can be two, three, four, or more. When there are three or more adjusting components 20, the adjustment directions of each adjusting component 20 can be different, or some adjusting components 20 can have the same adjustment direction. When there are two adjusting components 20, one adjusting component 20 can be used for position adjustment in the front-back direction, and the other adjusting component 20 can be used for position adjustment in the left-right direction. When there are four adjusting components 20, one adjusting component 20 can be used for position adjustment in the front-back direction, one adjusting component 20 can be used for position adjustment in the left-right direction, one adjusting component 20 can be used for position adjustment in the left-front-right-rear direction, and one adjusting component 20 can be used for position adjustment in the right-front-left-right direction.

[0027] In some embodiments, such as Figure 2 As shown, the adjusting member 20 has a first end and a second end at opposite ends in its position adjustment direction. The first end can move to one side of the support component 10, and the second end can move to the other side of the support component 10. Both the first end and the second end have a connecting part 21. In use, the position of the antenna mount 30 can be flexibly adjusted according to the position of the antenna under test of the product under test, so that the antenna mount 30 is fixedly connected to the first end or the second end of the adjusting member 20, solving the compatibility problem of different antenna design positions of different products. For example, if the position adjustment direction of one of the adjusting members 20 is the front-back direction, with the first end in front of the second end, when the antenna under test of the product under test is located at the front of the product under test, the antenna mount 30 is fixedly connected to the first end; conversely, when the antenna under test of the product under test is located at the rear of the product under test, the antenna mount 30 is fixedly connected to the second end. When the product under test has antennas under test at both the front and rear, one antenna mount 30 can be connected to each of the first end and the second end according to the test requirements, and a test antenna 60 can be installed on both the antenna mount 30 at the first end and the antenna mount 30 at the second end.

[0028] In some embodiments, such as Figure 2As shown, there are two sets of first scale lines 22 on an adjusting component 20. The two sets of first scale lines 22 are arranged side by side, and the values ​​corresponding to the two sets of first scale lines 22 are arranged in opposite directions from small to large. For ease of explanation, assume that the movement direction of one adjusting component 20 is back-to-back, the first end of the adjusting component 20 is in front of the second end, the two sets of first scale lines 22 of the adjusting component 20 are spaced apart in the left-right direction, and the range of each set of first scale lines 22 is 25cm. The values ​​corresponding to the first scale lines 22 on the left side of the two sets of first scale lines 22 are arranged from small to large in the direction from front to back, that is, from 1 to 25 from front to back. The values ​​corresponding to the first scale lines 22 on the right side of the two sets of second scale lines 111 are arranged from small to large in the direction from back to front, that is, from 1 to 25 from back to front. When the antenna mount 30 is installed at the first end, as the adjusting member 20 moves forward to increase the distance between the auxiliary antenna 60 and the antenna under test, the left set of first scale lines 22 starts reading from 1, while the right set starts reading from 25. Therefore, reading from the left set of first scale lines 22 is more direct and convenient. Conversely, when the antenna mount 30 is installed at the second end, as the adjusting member 20 moves backward to increase the distance between the auxiliary antenna 60 and the antenna under test, the right set of first scale lines 22 starts reading from 1, while the left set starts reading from 25. Therefore, reading from the right set of first scale lines 22 is more direct and convenient.

[0029] In some embodiments, such as Figure 1As shown, the support assembly 10 includes a base 12, a support member 13, and a test platform 11. The base 12 is connected to the test platform 11 via the support member 13. The test platform 11 is located above the base 12 and spaced apart from it. The side of the test platform 11 facing away from the base 12 is used to support the product to be tested. A receiving space 14 is formed between the test platform 11 and the base 12. The adjusting member 20 is at least partially located within the receiving space 14, and the connecting part 21 can extend out of the receiving space 14 to connect with the antenna mount 30. By forming a receiving space 14 between the base 12 and the test platform 11, when WIFI throughput testing is not required, the adjusting member 20 can be at least partially stored within the receiving space 14, thereby reducing the overall size of the WIFI throughput testing device and making it easier to carry and store. The adjusting member 20 can be completely housed within the receiving space 14, or only partially housed within the receiving space 14, depending on the size of the adjusting member 20. For example, assuming that the position adjustment direction of one of the adjusting members 20 is the front-back direction, when the size of the adjusting member 20 in the front-back direction is less than or equal to the size of the base 12 and the test platform 11 in the front-back direction, the adjusting member 20 can be completely housed within the receiving space 14. When the size of the adjusting member 20 in the front-back direction is greater than the size of the base 12 and the test platform 11 in the front-back direction, the adjusting member 20 can only be partially housed within the receiving space 14, with at least one of its first end and second end extending outside the receiving space 14.

[0030] Specifically, both the base 12 and the test platform 11 are flat structures, offering advantages such as simple structure, easy manufacturing, and low production cost. The flat structure of the test platform 11 allows it to stably support most products with WIFI functionality on the market. The base 12 and test platform 11 can be square, rectangular, or circular in shape. Both the base 12 and test platform 11 can be made of anti-static bakelite with a thickness greater than or equal to 1cm, reducing static electricity generation and providing wear resistance and resistance to deformation. The support member 13 can be columnar, with its two ends connected to the base 12 and test platform 11 respectively. Multiple support members 13 are spaced apart along the edges of the base 12 and test platform 11 to stably support the test platform 11. The support members 13 are connected to the base 12 and the test platform 11 via screws.

[0031] In some embodiments, such as Figure 2As shown, the multiple adjusting components 20 include a first adjusting component 201 and a second adjusting component 202. The first adjusting component 201 is connected to the side of the base 12 facing the test platform 11 and can be adjusted in a first direction. The second adjusting component 202 is connected to the side of the first adjusting component 201 facing away from the base 12 and can be adjusted in a second direction, which is different from the first direction. Since the second adjusting component 202 is located above the first adjusting component 201, i.e., at different heights, the second adjusting component 202 will not interfere with the movement of the first adjusting component 201, and the first adjusting component 201 will not interfere with the movement of the second adjusting component 202, ensuring that the first adjusting component 201 and the second adjusting component 202 can move smoothly and unimpeded in the first and second directions, respectively, for position adjustment. Specifically, both the first adjusting member 201 and the second adjusting member 202 are rectangular flat plate structures, so that the first adjusting member 201 can be stably placed on the base 12, and the second adjusting member 202 can be stably placed on the first adjusting member 201.

[0032] The angle formed between the first direction and the second direction can be determined according to actual needs. For example, Figure 2 The angle between the first direction and the second direction shown is 90°, meaning the first direction is perpendicular to the second direction. The first direction is left-right, with the first end of the first adjusting member 201 located to the left of its second end. The second direction is front-back, with the first end of the second adjusting member 202 located in front of its second end. When the left side of the product under test has an antenna to be tested, an antenna mount 30 can be installed at the first end of the first adjusting member 201. When the right side of the product under test has an antenna to be tested, an antenna mount 30 can be installed at the second end of the first adjusting member 201. When the front of the product under test has an antenna to be tested, an antenna mount 30 can be installed at the first end of the second adjusting member 202. When the rear of the product under test has an antenna to be tested, an antenna mount 30 can be installed at the second end of the second adjusting member 202. When the front, rear, left and right sides of the product under test all have antennas under test, antenna mounts 30 can be installed on the first and second ends of the first adjusting member 201 and the first and second ends of the second adjusting member 202, depending on the test requirements, and a companion antenna 60 can be installed on each antenna mount 30.

[0033] Specifically, the two sets of first scale lines 22 on the first adjusting member 201 are spaced apart in the front-to-back direction. The values ​​corresponding to the first scale lines 22 on the front side are arranged from right to left, i.e., from 1 to 25. The values ​​corresponding to the first scale lines 22 on the rear side are arranged from left to right, i.e., from 1 to 25. When the antenna mount 30 is installed at the first end (left end) of the first adjusting member 201, as the first adjusting member 201 moves to the left to increase the distance between the auxiliary antenna 60 and the antenna under test, the first scale lines 22 on the rear side are read from 1, while the first scale lines 22 on the front side are read from 25. Therefore, the reading of the first scale line 22 on the rear side is more direct and convenient. Conversely, when the antenna mount 30 is installed at the second end, i.e. the right end, of the first adjustment member 201, as the first adjustment member 201 moves to the right to increase the distance between the accompanying antenna 60 and the antenna under test, the first set of first scale lines 22 located on the front side of the two sets of first scale lines 22 starts reading from 1, while the first set of first scale lines 22 located on the right side of the two sets of first scale lines 22 starts reading from 25. Therefore, the reading of the first set of first scale lines 22 located on the front side is more direct and convenient.

[0034] In some embodiments, such as Figure 1As shown, the test platform 11 has two sets of second scale lines 111 on its surface facing away from the base 12. In one set, multiple second scale lines 111 are arranged in the same direction as the first direction, while in the other set, multiple second scale lines 111 are arranged in the same direction as the second direction. When adjusting the distance between the antenna under test and the auxiliary antenna 60, not only can the position of the adjusting component 20 be adjusted to precisely adjust the distance between the antenna under test and the auxiliary antenna 60 according to the first scale line 22 on the adjusting component 20, but the position of the product under test on the support component 10 can also be precisely adjusted according to the second scale line 111 on the support component 10, thereby precisely adjusting the distance between the antenna under test and the auxiliary antenna 60. By simultaneously setting the first scale line 22 and the second scale line 111, the adjustment range can be increased, thus meeting the WIFI throughput testing requirements of most products on the market. For example, the distance between the antenna under test and the accompanying antenna 60 needs to be 30cm, while the range of a set of first scale lines 22 is 25cm. In this case, the distance can be adjusted by 25cm through the first scale line 22 on the adjusting component 20, and by 5cm through the second scale line 111 on the supporting component 10. The sum of the two will reach 30cm. The range and division value of a set of second scale lines 111 can be determined according to actual needs. For example, the range of a set of second scale lines 111 can be 21cm, and the division value, that is, the distance between each two adjacent first scale lines 22, can be 0.5cm, which can meet the WIFI throughput testing requirements of most products on the market. Multiple second scale lines 111 in one set of second scale lines 111 are arranged at intervals along a first direction. This set of second scale lines 111 is used in conjunction with the first scale line 22 on the first adjusting member 201 to increase the spacing adjustment range in the first direction. Multiple second scale lines 111 in another set of second scale lines 111 are arranged at intervals along a second direction. This set of second scale lines 111 is used in conjunction with the first scale line 22 on the second adjusting member 202 to increase the spacing adjustment range in the second direction.

[0035] In some embodiments, combined with Figure 2 and Figure 3As shown, the first adjusting member 201 is provided with a first strip hole 2011, which extends along a first direction; the second adjusting member 202 is provided with a second strip hole 2021, which extends along a second direction; the base 12 is provided with a first threaded hole 121; and the WIFI throughput testing device also includes a first threaded fastener 50, which passes through the second strip hole 2021 and the first strip hole 2011 in sequence and is then threadedly connected to the first threaded hole 121. When it is necessary to adjust the position of the first adjusting member 201 or the second adjusting member 202, loosen the first threaded fastener 50. At this time, the second adjusting member 202 can move along the length direction of the second strip hole 2021, i.e., the second direction, to achieve position adjustment, and the first adjusting member 201 can move along the length direction of the first strip hole 2011, i.e., the first direction, to achieve position adjustment. After the position adjustment is completed, tighten the first threaded fastener 50 to fix the first adjusting member 201 and the second adjusting member 202 on the base 12 to prevent the first adjusting member 201 and the second adjusting member 202 from moving, stabilize the distance between the antenna under test and the auxiliary antenna 60, and thus ensure the accuracy of the WIFI throughput test results.

[0036] In some embodiments, such as Figure 3As shown, there are two first strip holes 2011 and two second strip holes 2021, arranged side by side. There are four first threaded fasteners 50 and four first threaded holes 121, each threadedly connected to one of the four first threaded holes 121. Two first threaded fasteners 50 pass through two second strip holes 2021 and share one first strip hole 2011, while the other two first threaded fasteners 50 pass through two second strip holes 2021 and share another first strip hole 2011. Specifically, the two first strip holes 2011 arranged side by side means that they are spaced apart along a direction perpendicular to their length. When the second direction is perpendicular to the first direction, the two first strip holes 2011 are spaced apart along the second direction. The two second strip holes 2021 are arranged side by side, meaning that the two second strip holes 2021 are spaced apart along a direction perpendicular to the length direction of the second strip holes 2021. When the second direction is perpendicular to the first direction, the two second strip holes 2021 are spaced apart along the first direction. By opening two first strip holes 2011 in the first adjusting member 201 and inserting two first threaded fasteners 50 into each first strip hole 2011, rotation of the first adjusting member 201 in the horizontal direction can be prevented. Therefore, when the first threaded fasteners 50 are loosened to adjust the position of the first adjusting member 201, the first adjusting member 201 can be ensured to move stably along the first direction without deviating from the direction. Similarly, by opening two second strip holes 2021 in the second adjusting member 202 and inserting two first threaded fasteners 50 into each second strip hole 2021, the second adjusting member 202 can be prevented from rotating in the horizontal direction. Thus, when the first threaded fasteners 50 are loosened to adjust the position of the second adjusting member 202, the second adjusting member 202 can be guaranteed to move stably along the second direction without deviating from the direction.

[0037] In some embodiments, such as Figure 3 As shown, the antenna mount 30 has a connecting hole 32, which is a through hole. The connecting part 21 is a second threaded hole. The WIFI throughput testing device also includes a second threaded fastener 40, which passes through the through hole and is threadedly connected to the second threaded hole, thereby realizing a detachable connection between the antenna mount 30 and the connecting part 21. Of course, in some other embodiments, the connecting part 21 can be a through hole, and the connecting hole 32 can be a second threaded hole. The connecting part 21 can also be other structures, such as a snap fastener, a magnet, etc. When the connecting part 21 is a snap fastener, the connecting part 21 is fastened to the antenna mount 30; when the connecting part 21 is a magnet, the connecting part 21 is magnetically attracted to the antenna mount 30.

[0038] In some embodiments, such as Figure 1As shown, the antenna mount 30 has multiple mounting holes 31 for mounting the auxiliary test antennas 60. By providing multiple mounting holes 31 in the antenna mount 30, the number of auxiliary test antennas 60 can be adjusted to meet the WIFI throughput testing needs of different products under test. The number of antenna mounts 30 is not limited; the figure shows 10 mounting holes 31, meaning one antenna mount 30 can mount 1-10 auxiliary test antennas 60, which can meet the WIFI throughput testing needs of most products on the market.

[0039] In some embodiments, the WIFI throughput testing device further includes a shielded enclosure, within which the support assembly 10, adjustment component 20, and antenna mount 30 are all housed. By placing the support assembly 10, adjustment component 20, antenna mount 30, and the product under test within the shielded enclosure, external interference can be shielded during WIFI throughput testing, thereby improving the accuracy of the WIFI throughput test results. The product under test and the accompanying antenna 60 can be connected to a signal processing system outside the shielded enclosure via a signal transmission line, and the WIFI throughput of the antenna under test can be detected by the signal processing system.

[0040] It should be noted that the above are merely preferred embodiments of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the scope of protection of this application.

Claims

1. A WIFI throughput testing device, characterized in that, The device includes a support assembly, an antenna mount, and an adjustment component. The support assembly supports the product under test (DUT) with an antenna under test. The antenna mount is used to mount a companion antenna that cooperates with the DUT. The adjustment component has a connecting portion for fixed connection with the antenna mount. The adjustment component is connected to the support assembly and is positionally adjustable relative to the support assembly to adjust the distance between the connecting portion and the DUT. There are multiple adjustment components, with at least two adjustment components capable of being adjusted in different directions. The surface of the adjustment component is provided with at least one set of first scale lines for length measurement, and the arrangement direction of multiple first scale lines in one set of first scale lines is the same as the position adjustment direction of the adjustment component.

2. The WIFI throughput testing device according to claim 1, characterized in that: The adjusting member has a first end and a second end at opposite ends in its position adjustment direction. The first end can move to one side of the support component, and the second end can move to the other side of the support component. Both the first end and the second end have the connecting portion.

3. The WIFI throughput testing device according to claim 2, characterized in that: There are two sets of the first scale lines, which are arranged side by side, and the values ​​corresponding to the two sets of the first scale lines are arranged in opposite directions from small to large.

4. The WIFI throughput testing device according to claim 1, characterized in that: The support assembly includes a base, a support member, and a test platform. The base is connected to the test platform via the support member. The test platform is located above the base and spaced apart from the base. The side of the test platform facing away from the base is used to support the product to be tested. An accommodating space is formed between the test platform and the base. The adjusting member is at least partially located within the accommodating space. The connecting part can extend out of the accommodating space and connect to the antenna mount.

5. The WIFI throughput testing device according to claim 4, characterized in that: The plurality of adjusting components include a first adjusting component and a second adjusting component. The first adjusting component is connected to the side of the base facing the test platform and is capable of position adjustment along a first direction. The second adjusting component is connected to the side of the first adjusting component facing away from the base and is capable of position adjustment along a second direction, which is different from the first direction.

6. The WIFI throughput testing device according to claim 5, characterized in that: The first adjusting member is provided with a first strip hole extending along the first direction; the second adjusting member is provided with a second strip hole extending along the second direction; the base is provided with a first threaded hole; the WIFI throughput testing device further includes a first threaded fastener, which passes through the second strip hole and the first strip hole in sequence and is threadedly connected to the first threaded hole.

7. The WIFI throughput testing device according to claim 6, characterized in that: The number of first strip holes and the number of second strip holes are both two, with two first strip holes arranged side by side and two second strip holes arranged side by side and two second strip holes arranged side by side and two second strip holes. The number of first threaded holes and the number of first threaded fasteners are both four, with four first threaded fasteners threadedly connected to four first threaded holes respectively. Two first threaded fasteners pass through two second strip holes and share one first strip hole, while the other two first threaded fasteners pass through two second strip holes and share another first strip hole.

8. The WIFI throughput testing device according to claim 5, characterized in that: The test platform has two sets of second scale lines on the side facing away from the base. In one set of second scale lines, the arrangement direction of multiple second scale lines is the same as the first direction, and in the other set of second scale lines, the arrangement direction of multiple second scale lines is the same as the second direction.

9. The WIFI throughput testing device according to any one of claims 1-8, characterized in that: The antenna mount is provided with a connection hole, one of which is a through hole and the other of which is a second threaded hole; the WIFI throughput testing device also includes a second threaded fastener, which passes through the through hole and is threadedly connected to the second threaded hole.

10. The WIFI throughput testing device according to any one of claims 1-8, characterized in that: The antenna mount is provided with multiple mounting holes for mounting the accompanying antenna.