Non-motor-driven horizontal axial angular vibration device

By designing a non-motor-driven horizontal axial angular vibration device, whose main shaft is placed horizontally and the driving table surface is driven by the second driving member to perform angular vibration around the parallel rotation axis, the problem that the existing angular vibration table cannot effectively calibrate the angular vibration sensors whose sensitive rotation axis is parallel to the mounting surface, realizing dynamic calibration of these sensors and simulation of the horizontal axial rotation degree of freedom.

CN116067598BActive Publication Date: 2025-06-10ZHEJIANG UNIV
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Patent Information

Application Number
CN202211740278.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-31
Publication Date
2025-06-10
Estimated Expiration
2042-12-31

AI Technical Summary

Technical Problem

The rotation axis of the existing angular vibration table is usually perpendicular to the table surface, and the angular vibration sensor with the sensitive rotation axis parallel to the mounting surface cannot be effectively calibrated, and the product angular vibration environment test of the horizontal axial rotation degree of freedom cannot be simulated.

Method used

A non-motor-driven horizontal axial angular vibration device is designed, and its spindle is placed horizontally, and the second driving member drives the table to angularly vibrate about the parallel rotation axis, realizing dynamic calibration of the angular vibration sensor with the sensitive rotation axis parallel to the mounting surface.

Benefits of technology

Effective calibration of the angular vibration sensor with the sensitive rotation axis parallel to the mounting surface is achieved, which reduces calibration errors and can be used to simulate product angular vibration environment tests that simulate horizontal axial rotation degrees of freedom.

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Abstract

The present invention discloses a non-motor-driven horizontal axial angular vibration device, which comprises a base; a moving component, at least including a tabletop and a main shaft, the axis of the main shaft is horizontally arranged, and both ends of the main shaft are rotatably arranged on the base respectively; a second driving component, arranged in the middle of the main shaft, which comprises a second moving coil assembly installed on the tabletop or the main shaft and a second magnetic circuit assembly cooperating with the second moving coil assembly; the second magnetic circuit assembly is fixed to the base; when an alternating current is applied to the second moving coil assembly, an alternating driving torque is generated on the second moving coil assembly under the action of the air-gap magnetic field generated by the second magnetic circuit assembly, so as to drive the moving component to swing back and forth around the equilibrium position, realizing the angular vibration of the tabletop. In the present invention, the main shaft is horizontally placed and driven by the second driving component located in the middle of the main shaft, so that the tabletop for placing the test equipment makes angular vibration around the rotation axis parallel to it, realizing the excitation of the test equipment with a sensitive rotating shaft parallel to the installation surface.
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Description

Technical Field

[0001] The present invention belongs to the technical field of angular vibration tables, and in particular relates to a non-motor-driven horizontal axial angular vibration device. Background Art

[0002] With the development of modern science and technology, angular vibration sensors are more and more widely used in various fields of national economic life, such as deep sea exploration, resource exploration, aerospace, medical devices, automotive industry, household appliances, etc. Angular vibration sensors need to be calibrated before leaving the factory and calibrated after being used for a certain period of time or repaired. As one of the key devices for dynamically calibrating or calibrating the performance of angular vibration sensors, angular vibration tables have received more and more attention. In addition, angular vibration tables can also be used for angular vibration environment tests of various products.

[0003] Traditional angular vibration tables use DC torque motors as driving elements. The motor torque output shaft is fixedly connected to the main shaft of the moving part. When an alternating current is applied to the DC torque motor, the alternating torque generated by the motor acts on the moving part, thereby causing the moving part to generate angular vibration. Due to the influence of the motor time constant, the working frequency range of this kind of angular vibration table using a DC torque motor is generally below 100 Hz. Moreover, due to the large friction of mechanical bearings and the non-uniform magnetic field inside the motor, even if a brushless DC torque motor is used, the distortion degree of the angular vibration waveform output by the vibration table is relatively large.

[0004] In recent years, in order to overcome the shortcomings of the above-mentioned angular vibration tables with motors as driving elements, non-motor-driven coil-excitation-driven angular vibration tables have gradually been proposed. For example, Chinese Patent No. CN200610099078.9 discloses a non-motor-driven electric angular vibration table. The excitation system of the angular vibration table consists of a base made of pure iron for electrical engineering, the outer wall of the magnetic core, and a magnetic yoke cooperating with the excitation coil. The moving coil skeleton is evenly distributed with wire grooves. The driving wire is tightly wrapped with insulating adhesive paper. After being inserted into the wire grooves on the moving coil skeleton, it is impregnated with high-pressure paint and cured. The wire extends out at both ends of the wire groove and is welded to the braided flexible wire. The main shaft is a hollow cylinder cup structure, and its two ends are respectively connected to the moving coil and the table top. A rubber cylinder is sleeved outside the main shaft, and both ends of the rubber cylinder are adhesively bonded to the support seat and the table top with strong glue respectively. The moving coil is placed between the magnetic core and the magnetic yoke. This kind of angular vibration table generates a magnetic field by the excitation coil, passes an alternating current into the moving coil located in the air-gap magnetic field, and under the electromagnetic coupling action of the moving coil and the magnetic field, the moving coil generates an alternating torque, thereby causing the table top connected to the moving coil to generate angular vibration. The disadvantages of this kind of angular vibration table are as follows: 1) The winding of the moving coil is difficult, the wiring is uneven, and the process is complex; 2) The inertia of the rotating parts is large, and the working frequency range is narrow; 3) Since a rubber cylinder spring is used as the restoring spring of the driving part, the rotation angle range is limited, the angular displacement is small, and the distortion degree of the angular acceleration waveform is large.

[0005] An angular vibration device described in Chinese Patent CN201420503770.3 includes a housing, a tabletop, a main shaft for driving the tabletop to rotate, a first moving coil assembly, a magnetic circuit assembly, an air bearing, and an angular displacement sensor. When this angular vibration device works, an alternating current is passed into the coil, and the coil generates an Ampere force under the action of the magnetic field, so that the first moving coil assembly vibrates back and forth around the equilibrium position under the action of the Ampere force. This angular vibration device solves the problems existing in the above-mentioned angular vibration table. However, the rotation axes of all the above types of angular vibration tables are perpendicular to the tabletop of the angular vibration table or parallel to the acceleration of gravity.

[0006] There are two types of angular vibration sensors: one type has a sensitive rotation axis perpendicular to the mounting surface; the other type has a sensitive rotation axis parallel to the mounting surface, and the mounting surface is generally in a horizontal state. An angular vibration table with a rotation axis perpendicular to the tabletop or parallel to the acceleration of gravity can only be used to calibrate an angular vibration sensor with a sensitive rotation axis perpendicular to the mounting surface. If it is used to calibrate an angular vibration sensor with a sensitive rotation axis parallel to the mounting surface, its mounting surface must be placed perpendicular to the tabletop of the angular vibration table. However, this is inconsistent with its actual working state, and with the influence of additional tooling, it will bring a large calibration error. For an angular vibration sensor with a sensitive rotation axis parallel to the mounting surface, an angular vibration table with a rotation axis parallel to the tabletop must be used. In addition, a product angular vibration environment test for simulating the rotational freedom in the horizontal axis direction also requires an angular vibration table with a rotation axis parallel to the tabletop; at the same time, an angular vibration table with a rotation axis parallel to the tabletop can also be used for dynamic calibration of a linear acceleration sensor in a gravitational field. Currently, there is no calibration angular vibration table with a rotation axis parallel to the tabletop on the market. Summary of the Invention

[0007] In order to overcome the deficiencies of the prior art, the present invention provides a non-motor-driven horizontal axial angular vibration device.

[0008] A non-motor-driven horizontal axial angular vibration device includes

[0009] a base;

[0010] a moving part, at least including a tabletop for placing a test device and a main shaft connected to the tabletop to drive the tabletop to rotate, the axis of the main shaft is horizontally arranged, and both ends of the main shaft are rotatably arranged on the base respectively;

[0011] a second driving part, including a second moving coil assembly associated with the main shaft and / or the tabletop partially penetrating the tabletop and a second magnetic circuit assembly cooperating with the second moving coil assembly; when an alternating current is passed into the second moving coil assembly, under the action of the air gap magnetic field generated by the second magnetic circuit assembly, the second moving coil assembly rotates back and forth around the equilibrium position to drive the tabletop to swing through the main shaft.

[0012] Optionally, the angular vibration device is provided with at least two sets of second driving components, where at least one set of second driving components serves as a power source to drive the moving component to swing back and forth around the equilibrium position, and the remaining second driving components serve as torque compensation.

[0013] Optionally, the second moving coil assembly includes at least one second moving coil unit, and the second moving coil unit includes a semi-circular sheet-shaped second base body and at least one second coil group fixed on the surface of the second base body, and the center of the second base body coincides with the axis of the main shaft.

[0014] Optionally, the second coil group includes a first coil and a second coil wound by a single wire; the first coil and the second coil respectively include an effective wire group located in the air gap magnetic field and a first connecting wire group and a second connecting wire group located outside the air gap magnetic field, each coil has two effective wire groups, and the first and second connecting wire groups are respectively connected to the effective wire groups on both sides; wherein the first connecting wire group is close to the center of the second base body, and the second connecting wire group is far from the center of the second base body; the first and second connecting wire groups are concentric with the second base body, and the wires in the effective wire group all point to the center of the second base body; the current directions of the two effective wire groups in one coil are opposite, and the two effective wire groups in one coil respectively correspond to two adjacent air gap magnetic fields, and the directions of the adjacent air gap magnetic fields are opposite.

[0015] Optionally, the second magnetic circuit assembly includes a first magnetic conductor arranged on the mounting seat, a second magnetic conductor cooperating with the first magnetic conductor, a first magnetic steel arranged on the first magnetic conductor, a second magnetic steel arranged on the second magnetic conductor, and a second air gap formed between the first magnetic steel and the second magnetic steel; the second moving coil assembly is in clearance fit with the first magnetic steel and the second magnetic steel respectively.

[0016] Optionally, there are multiple sets of the second driving components, and the multiple sets of second driving components are symmetrically arranged in the middle of the main shaft, and two adjacent sets of second driving components can share a magnetic conductor.

[0017] Optionally, the number of the first magnetic steels is equal to that of the second magnetic steels, and the first magnetic steels and the second magnetic steels correspond to each other one by one; the structures of the first magnetic steels and the second magnetic steels are the same, and multiple first magnetic steels and second magnetic steels respectively enclose a fan-shaped ring area, and the fan-shaped ring areas enclosed by the first magnetic steels and the fan-shaped ring areas enclosed by the second magnetic steels are arranged coaxially with the main shaft.

[0018] Optionally, the second base body and the tabletop are fixedly connected through a connection structure, and the connection structure includes a first fixing block and a second fixing block; the first fixing block is in a tile shape and has a first connection part connected to the second base body and a second connection part connected to the tabletop. The side of the first fixing block facing the tabletop has an arc surface covering the main shaft, and the center line of the arc surface coincides with the axis of the main shaft; the second fixing block is located at a position of the second base body away from the center line and has a first branch connected to the second base body and a second branch connected to the tabletop.

[0019] Optionally, at least two supports are symmetrically arranged on the base; the electromagnetic drive type horizontal axial angular vibration device further includes a radial air bearing and an axial air bearing. The main shaft is connected to the support through the radial air bearing. The radial air bearing includes an air floating sleeve sleeved on the main shaft and a bearing seat matched with the air floating sleeve. A radial air film is formed between the air floating sleeve and the side wall of the main shaft; the bearing seat is installed on the support; axial air bearings are respectively arranged at both ends of the main shaft. The axial air bearing includes a planar air floating bearing thrusting against the end of the main shaft, a pressing bolt and a support plate matched with it. An axial air film is formed between the planar air floating bearing and the end of the main shaft; the support plate is installed on the support.

[0020] Optionally, a circular grating is provided at the end of the main shaft, and a reading head is provided on the support and is matched with the circular grating to detect the angular displacement signal output by the main shaft and the tabletop; a counterweight ring is arranged at one end of the main shaft away from the circular grating; the second

[0021] The working steps of the second driving component are as follows:

[0022] St1: When no test equipment is placed on the tabletop, according to the design requirements, the center of mass of the moving component is just located on the axis of the main shaft; at this time, the tabletop can be made to stay in a horizontal position, which is set as the balance position of the moving component and the zero position recorded by the circular grating;

[0023] St2: When the test equipment is placed on the tabletop, the center of mass of the moving component will shift upward. When the center of mass of the moving component is above the axis of the main shaft, the gravity of the moving component will generate a deflecting gravity moment, causing the whole moving component to rotate and deviate from the zero position;

[0024] St3: The second driving component as the power source drives the moving component to swing back and forth around the balance position, and the circular grating feeds back the overall angular displacement signal of the moving component to the host computer;

[0025] St4: The host computer calculates the magnitude of the deflecting gravity moment according to the overall angular displacement of the moving component, and outputs a corresponding current to the second moving coil component in the second driving component as torque compensation. The second driving component as torque compensation generates a compensation moment equal in magnitude and opposite in direction to the deflecting gravity moment to compensate the position of the moving component, so that the tabletop is horizontal and returns to the zero position.

[0026] In summary, the present invention has the following beneficial effects:

[0027] 1. The main shaft of the present invention is horizontally placed and driven by a second driving component, so that the table for placing the test equipment makes angular vibration around a rotation axis parallel to it, realizing the excitation of the test equipment (such as an angular vibration sensor) with a sensitive rotating shaft parallel to the installation surface, and further realizing the dynamic calibration of the angular vibration sensor with a sensitive rotating shaft parallel to the installation surface under actual installation conditions, thereby obtaining the amplitude-frequency characteristic and phase-frequency characteristic of this type of sensor, making the angular vibration device of the present invention applicable to the scenario of dynamically calibrating the angular vibration sensor with a sensitive rotating shaft parallel to the installation surface

[0028] 2. By setting at least one group of second driving components as the power source and at least one group of second driving components as torque compensation, through the combination of multiple groups of second driving components, when the test equipment on the table generates a gravitational moment acting on the table and the main shaft due to uneven mass during the operation of the angular vibration device, the second driving component as torque compensation can generate a torque with equal magnitude and opposite direction for compensation, improving the measurement accuracy. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a perspective view of the first embodiment of the present invention.

[0030] Figure 2 It is a sectional view of the first embodiment of the present invention.

[0031] Figure 3 It is Figure 2 The enlarged view of part A in

[0032] Figure 4 It is the schematic diagram of the feedback control component in the first embodiment of the present invention.

[0033] Figure 5 It is a perspective view of the second embodiment of the present invention.

[0034] Figure 6 It is Figure 5 The exploded view of

[0035] Figure 7 It is a sectional view of the second embodiment of the present invention.

[0036] Figure 8 It is Figure 6 The perspective view of the centroid adjustment component in

[0037] Figure 9 It is Figure 8 The sectional perspective view of

[0038] Figure 10 It is a perspective view of the third embodiment of the present invention.

[0039] Figure 11 is Figure 10 the exploded view of

[0040] Figure 12 is the cross-sectional view of the third embodiment of the present invention.

[0041] Figure 13 is Figure 12 the enlarged view at position B in

[0042] Figure 14 is Figure 12 the winding layout diagram of the second coil group in

[0043] Figure 15 is Figure 12 the three-dimensional view of the cooperation between the magnet and the positioning member in

[0044] Figure 16 is Figure 12 the three-dimensional view of the cooperation between the first and second fixing blocks and the second moving coil assembly in

[0045] Figure 17 is the three-dimensional view of the fourth embodiment of the present invention.

[0046] Figure 18 is Figure 17 the exploded view of

[0047] Figure 19 is the cross-sectional view of the fourth embodiment of the present invention. Detailed implementation manners

[0048] In order to enable those skilled in the art to better understand the solution of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0049] Embodiment 1

[0050] Referring to Figure 1 and Figure 2 , a non-motor-driven horizontal axial angular vibration device 10 includes a base 11, a moving member, a table 12, a main shaft 13 and a first driving member 20; the moving member is driven by the first driving member 20 to act, and the moving member at least includes the table 12 and the main shaft 13; the table 12 serves as a working plane for placing test equipment, and a plurality of threaded holes 121 are evenly distributed on the surface for installing test equipment; the axis of the main shaft 13 is horizontally arranged, and the main shaft 13 rotates back and forth under the drive of the first driving member 20, and the main shaft 13 passes through the table 12 and is fixedly connected to the table 12 to drive the table 12 to swing, so that an angular motion output will be generated on the table 12 to excite the test equipment. Among them, the test equipment can be an angular vibration sensor with a sensitive rotating shaft parallel to the installation surface, or other equipment with a sensitive rotating shaft parallel to the installation surface.

[0051] The spindle 13 of the present invention is horizontally placed, and then the table 12 for placing the test equipment rotates around a rotation axis parallel to it to perform angular vibration, realizing the excitation of a test equipment (such as an angular vibration sensor) with a sensitive rotating shaft parallel to the installation surface, so that the angular vibration device 10 of the present invention can be used in the scenario of dynamically calibrating an angular vibration sensor with a sensitive rotating shaft parallel to the installation surface.

[0052] Reference Figure 1 and Figure 2 There are two sets of the first driving components 20, which are respectively installed on the base 11, and the two sets of the first driving components 20 are symmetrically arranged at both ends of the spindle, and output torque to the spindle 13 at the same time, reducing the rotational error of the spindle 13 and improving the driving ability of the angular vibration device 10. Of course, in other embodiments, there is only one set of the first driving components 20, which is associated with one end of the spindle 13, and the other end of the spindle 13 is directly rotatably arranged on the base 11 through a bearing 26 and is driven to rotate by one set of the first driving components 20.

[0053] Reference Figure 1 On both sides of the base 11, side plates 14 are symmetrically arranged to protect the space below the table. A limit block 141 is fixed at the top of the side plate 14. The limit block 141 is arranged below the table 12 and has an appropriate height difference from the table. By setting the limit block, the swing range of the table is limited. Specifically, each side plate is provided with two limit blocks.

[0054] Specifically, reference Figure 2 and Figure 3 The first driving component 20 includes a first moving coil assembly 21 associated with the spindle 13 and a first magnetic circuit assembly 22 cooperating with the first moving coil assembly 21. During operation, an alternating current is passed through the first moving coil assembly 21, and under the action of the air gap magnetic field generated by the first magnetic circuit assembly 22, an alternating driving torque is generated on the first moving coil assembly 21, so that the table 12 swings back and forth around the equilibrium position through the spindle 13, realizing the angular vibration of the table 12, and the table 12 can output angular motion quantities.

[0055] Adopting such a driving method, a uniform torque is generated on the spindle by an energized coil located in a uniform air gap magnetic field, and the table is driven to perform angular vibration through the spindle, avoiding the commutation torque ripple and electromagnetic torque ripple when using a common motor to realize angular vibration, and the distortion degree of the output motion waveform is low.

[0056] Reference Figure 2 and Figure 3, the first moving coil assembly 21 is configured as a whole disc structure, and a step cooperating with the first moving coil assembly 21 is provided on the main shaft 13 to quickly position the first moving coil assembly 21 and limit the position of the first moving coil assembly 21 on the main shaft 13; at the same time, a retaining ring 23 is screwed on the main shaft 13, and the retaining ring 23 cooperates with the step to fix the first moving coil assembly 21.

[0057] Reference Figure 2 and Figure 3 , specifically, the first moving coil assembly 21 includes at least one first moving coil unit. The first moving coil unit includes a disc-shaped first base body 211 and a plurality of first coil groups fixed on the surface of the first base body 211. The first base body 211 is fixedly connected to the main shaft 13. Each first coil group of a single first moving coil unit is connected in parallel or in series. The first coil group includes an effective wire group located in the air gap magnetic field and a connecting wire group located outside the air gap magnetic field. The connecting wire group outside the air gap magnetic field is concentric with the base body, and the effective wire group inside the air gap magnetic field points to the center of the base body. The first moving coil unit used in this patent refers to Chinese Patent No. 201310451020.6.

[0058] Specifically, reference Figure 2 and Figure 3 , the first magnetic circuit assembly 22 includes an inner magnetic conductor seat 221, an outer magnetic conductor seat 222, an inner magnetic steel 223, an outer magnetic steel 224, and a first air gap formed between the inner magnetic steel 223 and the outer magnetic steel 224.

[0059] The inner magnetic conductor seat 221 is installed on the base 11; the outer magnetic conductor seat 222 is installed on the base 11 and is located on the side of the inner magnetic conductor seat 221 away from the table top 12, and a gland 15 for simultaneously pressing the inner and outer magnetic conductor seats is further provided on the base 11 to fix the inner and outer magnetic conductor seats; the inner and outer magnetic conductor seats of the two groups of first magnetic circuit assemblies 22 cooperate with the base 11 to form a U-shaped structure; both ends of the main shaft 13 are respectively mounted on the U-shaped structure to keep the axis horizontal. Specifically, both ends of the main shaft 13 are installed on the inner magnetic conductor seat 221 through radial air bearings 26.

[0060] A plurality of the inner permanent magnets 223 are arranged along the circumferential direction of the main shaft axis and are respectively fixed on the side wall of the inner magnetic guide base 221 away from the table 12; a plurality of the outer permanent magnets 224 are arranged along the circumferential direction of the main shaft axis and are respectively fixed on the side wall of the outer magnetic guide base 222 close to the table 12; the number of the inner permanent magnets 223 is equal to that of the outer permanent magnets, and the inner permanent magnets 223 and the outer permanent magnets 224 are in one-to-one correspondence; the outer magnetic guide base 222, the inner magnetic guide base 221, the inner permanent magnets 223, the outer permanent magnets 224 and the first air gap form a closed magnetic circuit system; all the effective wire groups in each first coil group in the first moving coil assembly 21 are always located in the air gap magnetic field formed between the corresponding inner permanent magnet 223 and the outer permanent magnet 224, and the first moving coil assembly 21 is in clearance fit with the inner permanent magnet 223 and the outer permanent magnet 224 respectively.

[0061] The inner permanent magnets 223 and the outer permanent magnets 224 have the same structure. A plurality of the inner permanent magnets 223 enclose an annular area, and the outer permanent magnets 224 also enclose an annular area. The annular area of the inner permanent magnets 223 is coaxial with the annular area of the outer permanent magnets 224, and the main shaft 13 extends into the annular area.

[0062] The inner permanent magnets 223 and the outer permanent magnets 224 are respectively arranged in a tile shape; there is a gap between adjacent magnets in the circumferential direction. When the number of the outer permanent magnets 224 and the inner permanent magnets 223 changes, the number of the coil groups on the first base 211 also changes simultaneously. The number of both the inner permanent magnets 223 and the outer permanent magnets 224 is a multiple of 2.

[0063] Adopting a permanent magnet type magnetic circuit structure, the excitation coil is omitted, the loss of the excitation system is reduced, the energy conversion efficiency is improved, and the magnetic circuit structure is simple, compact and reliable in operation.

[0064] Reference Figure 2 and Figure 3 As shown in

[0065] Reference Figure 2 and Figure 3, the non-motor-driven horizontal axial angular vibration device 10 further includes: a radial air bearing 26; the radial air bearing 26 is located between the main shaft 13 and the inner magnetic guide seat 221.

[0066] Specifically, the radial air bearing 26 includes an air floating sleeve 261 sleeved on the main shaft 13 and a bearing seat 262 cooperating with the air floating sleeve 261, and the bearing seat 262 is installed on the inner magnetic guide seat 221; the air floating sleeve 261 and the bearing seat 262 are prior arts, and their structures will not be described in detail. A radial air film is formed between the side wall of the air floating sleeve 261 and the main shaft 13, and the radial air film lifts the main shaft 13. Since the viscosity of the gas is extremely small, it can be considered that the friction is very small or there is no friction, and the main shaft realizes full air floating motion, thereby greatly reducing the influence of non-linear friction resistance on the rotation of the main shaft, and thus reducing the distortion degree of the output motion waveform of the angular vibration device 10. In addition, the gas overflowing from the air film of the radial air bearing can also play a role in cooling the first moving coil assembly.

[0067] Reference Figure 2 and Figure 3 , the angular vibration device 10 of the present application further includes an axial air bearing, which is composed of a planar air floating bearing 28, a support plate 291 and a compression bolt 292; planar air floating bearings 28 are respectively arranged at both ends of the main shaft 13, the support plate 291 is fixedly connected to the outer magnetic guide seat 222, and the compression bolt 292 is screwed to the support plate 291 for pressing the planar air floating bearing 28 against the end of the main shaft 13. Specifically, the compression bolt 292 adopts a ball head compression bolt to eliminate the influence of the non-coaxiality between the compression bolt 292 and the main shaft 13, so that the planar air floating bearing 28 always maintains a planar uniform air film contact with the end face of the main shaft 13. The planar air floating bearing 28 is a prior art, and its structure will not be described in detail.

[0068] In this way, an axial air film is formed between the planar air floating bearing and the end of the main shaft, reducing the axial runout of the main shaft, providing the stability of the main shaft movement, and further reducing the distortion degree of the output motion waveform of the angular vibration device 10.

[0069] Reference Figure 2 and Figure 4 , the feedback control of the angular vibration device 10 of the present invention is realized through a feedback control component 70.

[0070] Specifically, the feedback control component 70 includes an angular displacement sensor 71, a feedback unit 72, a signal generator 73, a subtractor 74, a PID controller 75, and a power amplifier 76; the angular displacement sensor consists of a circular grating 31 and a reading head 61; the circular grating 31 is installed on the retaining ring 23 at one end of the main shaft 13 through a fastener, and the reading head 61 is installed on the outer magnetic guide seat 222 on the side corresponding to the circular grating 31 through a reading head mounting block 62. The circular grating 31 and the reading head 61 are existing products, and their structures will not be described in detail. The reading head 61 cooperates with the circular grating 31 to detect the angular displacement signal θ of the rotation of the main shaft 13 and the table 12; this angular displacement signal is input into the feedback unit, and the feedback unit amplifies the input signal to obtain a first output signal, differentiates the input signal first and then amplifies it to obtain a second output signal, and then superimposes the first output signal and the second output signal to obtain the output signal of the feedback unit; the output signal of the feedback unit and the standard signal output by the signal generator are subtracted by the subtractor to obtain a deviation signal. Then, the deviation signal is processed by the PID regulator and output to the power amplifier to drive the movement of the main shaft 13 and the table 12, thereby realizing the feedback control of the angular vibration device 10 and improving and reducing the distortion degree of the output movement quantity waveform of the angular vibration device.

[0071] Reference Figure 2 and Figure 3 , to compensate for the centroid offset generated after adding the circular grating 31 to one end of the main shaft 13, a counterweight ring 32 is provided at the other end of the main shaft 13 away from the circular grating 31. The mass of the counterweight ring 32 is the same as that of the circular grating 31, and the counterweight ring 32 and the circular grating 31 are symmetrically arranged with respect to the main shaft 13 to improve the rotational accuracy of the main shaft 13; specifically, the counterweight ring 32 is installed on the retaining ring 23 through a fastener.

[0072] Reference Figure 2 and Figure 3 , a through first through hole 2221 is provided on the outer magnetic guide seat 222. Through this first through hole 2221 as a viewing window, it is convenient to repair the circular grating 31 and the reading head 61; a end cap 27a for blocking the first through hole 2221 is provided on the side of the outer magnetic guide seat 222 away from the inner magnetic guide seat 221, and the end cap 27a is screwed or connected to the outer magnetic guide seat 222 through a fastener.

[0073] Embodiment 2

[0074] Reference Figures 5 to 7, the difference between this embodiment and the first embodiment is that in this embodiment, a centroid adjustment component 40 is provided on the table 12 or the main shaft 13 to meet the requirements of large loads of this angular vibration device. When the table 12 of this angular vibration device 10 is unloaded, the centroid of the moving parts is adjusted to the axis of the main shaft 13. On the one hand, this can make the moving parts have a smaller moment of inertia, and on the other hand, it can ensure that the table 12 is in the horizontal direction when it is stationary. When a test device with a large mass is placed on the table 12, the centroid of the entire moving parts will move upward, and even reach above the table 12. In this way, not only does the moment of inertia of the moving parts increase, but also the table will become unstable and fall to one side, thus increasing the control difficulty of the angular vibration device. Therefore, by setting the centroid adjustment component 40 below the table, the deviation of the centroid is compensated, and the overall centroid of the moving parts is adjusted to the axis of the main shaft 13, so that the moving parts can continue to maintain a smaller moment of inertia. In addition, the table 12 can be ensured to be in the horizontal direction when it is stationary, the control difficulty of the angular vibration device is reduced, and the distortion degree of the output motion waveform of the table 12 is further reduced.

[0075] Reference Figures 5 to 8 , the centroid adjustment component 40 includes a fixed balance block 41 detachably installed on the table 12 and a plurality of adjustable balance blocks 42 installed on the fixed balance block 41. The fixed balance block is set as a T-shaped structure, and the fixed balance block 41 is arranged at the reverse position of the centroid deviation of the moving parts, so as to adjust the uneven distribution of the overall centroid of the moving parts; in this embodiment, the fixed balance block is arranged on one side surface of the table close to the base, and the fixed balance block 41 has a flange surface 411 connected to the table 12. The adjustable balance block is set as a U-shaped block, and at least part of the structure of the fixed balance block 41 is clamped into the adjustable balance block 42, so that the adjustable balance block 42 can only slide along the length direction of the fixed balance block 41, and the fixed balance block 41 serves as a platform for the movement of the adjustable balance block 42; the adjustable balance block 42 and the fixed balance block 41 are fixed by a plurality of fastening bolts 43 and nuts 44.

[0076] By setting the adjustable balance block on the fixed balance block, when the moving parts are unloaded, the fixed balance block can adjust the centroid of the moving parts to the axis of the main shaft; however, when the table is loaded, the centroid will still shift. At this time, by adjusting the position of the adjustable balance block, the centroid deviation value is finely adjusted, so that the centroid of the moving parts returns to the axis of the main shaft again, further improving the adjustment accuracy of the uneven distribution of the centroid of the moving parts and having higher flexibility. The number and position of the adjustable balance blocks 42 can be adjusted according to the actual working conditions.

[0077] Reference Figure 8 and Figure 9, on one side of the fixed balance block 41, at least one guiding groove 412 is formed in a direction away from the tabletop, and the guiding groove 412 is a T-shaped groove; the large-diameter end of the fastening bolt 43 is located in the guiding groove 412, and the threaded section of the fastening bolt 43 passes through the adjustable balance block 42 and is connected to the nut 44. Tightening the nut 44 can fix the position of the adjustable balance block 42; by setting the guiding groove 412 as a T-shaped groove, when adjusting the position of the adjustable balance block 42, the large-diameter end of the fastening bolt 43 is always located in the T-shaped groove, facilitating the position adjustment of the adjustable balance block 42.

[0078] Reference Figure 8 and Figure 9 , a penetrating groove 413 communicating with the guiding groove 412 is further provided on the fixed balance block 41. The penetrating groove 413 is located at one end of the guiding groove 412 close to the flange surface 411, and the inner diameter of the penetrating groove 413 allows the large-diameter end of the fastening bolt 43 to penetrate, facilitating the assembly of the adjustable balance block 42. At least one transverse groove 421 through which the threaded section of the fastening bolt 43 can pass is further formed on the adjustable balance block 42, and the transverse groove 421 is perpendicular to the guiding groove 412; in this embodiment, two guiding grooves 412 are provided, and the two guiding grooves 412 are arranged in parallel. Among them, two transverse grooves 421 are also provided, and the two transverse grooves 421 are also arranged in parallel, spanning the two guiding grooves 412, so that the four fastening bolts 43 located in the two guiding grooves 412 can respectively pass through the same transverse groove 421 in pairs, keeping the transverse groove 421 perpendicular to the guiding groove 412, thereby preventing the adjustable balance block 42 from shifting.

[0079] Reference Figures 5 to 7 , in this embodiment, two sets of centroid adjustment assemblies 40 are provided. The two sets of centroid adjustment assemblies 40 are arranged at intervals along the length direction of the main shaft 13 and are symmetrically arranged relative to the tabletop. The side plates 14 symmetrically arranged on the base 11 can protect the centroid adjustment assemblies 40. Of course, the number and specific installation positions of the centroid adjustment assemblies 40 can be set according to the actual use conditions.

[0080] Embodiment Three

[0081] Reference Figures 10 to 12, The difference between this embodiment and the first embodiment is that in this embodiment, a second driving component 50 associated with the table 12 and / or the main shaft 13 partially penetrating the table is further provided on the base 11. The second driving component 50 is connected to the base 11 through a mounting seat 55, and the second driving component 50 is located between two groups of first driving components 20; the side plates 14 symmetrically arranged on the base 11 can protect the second driving component 5. The second driving component 50 includes a second moving coil assembly 51 mounted on the table 12 or the main shaft and a second magnetic circuit assembly 52 cooperating with the second moving coil assembly 51; when the angular vibration device 10 works, when a test device with a large mass is installed on the table 12 and a gravitational moment acts on the table 12 and the main shaft 13, when a current is passed through the second moving coil assembly, under the action of the air gap magnetic field generated by the second magnetic circuit assembly, a torque equal in magnitude and opposite in direction to the above-mentioned gravitational moment is generated on the second moving coil assembly for compensation.

[0082] Specifically, referring to Figure 12 and Figure 13 , the second magnetic circuit assembly 52 includes a first magnetic conductor 521, a second magnetic conductor 522, a first permanent magnet 523, a second permanent magnet 524, and a second air gap formed between the first permanent magnet 523 and the second permanent magnet 524.

[0083] The first magnetic conductor 521 and the second magnetic conductor 522 are respectively fixed on the mounting seat 55; a plurality of the first permanent magnets 523 are provided and are respectively fixed on the first magnetic conductor 521; a plurality of the second permanent magnets 524 are provided and are respectively fixed on the side wall of the second magnetic conductor 522 close to the first magnetic conductor 521; the first magnetic conductor 521, the second magnetic conductor 522, the first permanent magnet 523, the second permanent magnet 524, and the second air gap form a closed magnetic circuit system; the positions of the first permanent magnets 523 and the second permanent magnets 524 correspond one by one, and the second moving coil assembly 51 is in clearance fit with the first permanent magnets 523 and the second permanent magnets 524 respectively.

[0084] Referring to Figure 12 , Figure 13 and Figure 15 , the first permanent magnet 523 and the second permanent magnet 524 have the same structure. The first permanent magnet 523 and the second permanent magnet 524 respectively enclose a fan-shaped ring area, and the fan-shaped ring areas formed by a plurality of the first permanent magnets 523 and the fan-shaped ring areas formed by a plurality of the second permanent magnets 524 are coaxially arranged with the main shaft 13. The first permanent magnet 523 and the second permanent magnet 524 are respectively arranged in a tile shape, and there is a gap between adjacent magnets in the circumferential direction.

[0085] Referring to Figure 13 and Figure 15, positioning members 56 are respectively arranged on the outer peripheries of the first magnet 523 and the second magnet 524. The positioning member 56 cooperating with the first magnet 523 is connected to the first magnetic conductor 521 through a fastener, and the positioning member 56 cooperating with the second magnet 524 is connected to the second magnetic conductor 522 through a fastener; the positioning member 56 is set as a partial ring shape, and a clamping block 561 that can be inserted into the gap between adjacent magnets is integrally formed on the positioning member 56, which is used to limit the first magnet 523 or the second magnet 524 to prevent displacement and ensure the stability of the air-gap magnetic field.

[0086] Reference Figures 12 to 14 , the second moving coil assembly 51 is set as a semi-disc structure. The second moving coil assembly 51 includes at least one second moving coil unit. The second moving coil unit includes a semi-circular sheet-shaped second base body 511 and at least one second coil group fixed on the surface of the second base body 511; in this embodiment, there is one second coil group on one second base body, and the second coil group includes a first coil 512a and a second coil 512b wound by a single wire.

[0087] Reference Figure 14 , the first coil 512a is wound by a wire gradually from small to large from the inside to the outside, and the second coil 512b is wound by a wire gradually from large to small from the outside to the inside. All wires are on the surface of the second base body 511. The second coil group starts from the starting end 516 on the inner side of the first coil 512a and ends at the ending end 517 on the inner side of the second coil 512b.

[0088] The first coil 512a includes an effective wire group 513a located in the air-gap magnetic field and a first connecting wire group 514a and a second connecting wire group 515a located outside the air-gap magnetic field. The first coil 512a has two effective wire groups 513a, and the wires in the effective wire group 513a all point to the center of the second base body 511.

[0089] The first connecting wire group 514a, the second connecting wire group 515a and the second base body 511 are concentrically arranged. The first connecting wire group 514a and the second connecting wire group 515a are respectively located between the two effective wire groups 513a, and the first connecting wire group 514a is relatively close to the center of the second base body, and the second connecting wire group 515a is relatively far from the center of the second base body.

[0090] The second coil 512b has the same structure as the first coil 512a, including an effective wire group 513b located in the air-gap magnetic field and a first connecting wire group 514b and a second connecting wire group 515b located outside the air-gap magnetic field.

[0091] The second coil 512b has two effective wire groups 513b, and the wires in the effective wire group 513b all point to the center of the second base body 511.

[0092] The first connecting wire group 514b, the second connecting wire group 515b and the second base body 511 are concentrically arranged. The first connecting wire group 514b and the second connecting wire group 515b are respectively located between two effective wire groups 513b. The first connecting wire group 514b is relatively close to the center of the second base body, and the second connecting wire group 515b is relatively far from the center of the second base body.

[0093] With such a solution, by arranging coils on the semi-disc-shaped second base body, the volume of the moving coil becomes smaller, the weight becomes lighter, the stiffness becomes larger, the rotational inertia of the moving coil is reduced, and the natural frequency of the moving coil is increased.

[0094] Figure 14 The positional relationship between the first coil 512a and the second coil 512b and the first magnet 523 is shown.

[0095] Reference Figure 10 , two effective wire groups in each coil respectively correspond to different first magnets 523, and the magnetic field directions in the second air gaps corresponding to two adjacent first magnets 523 in the circumferential direction are opposite. When current is passed through the coil, since the current directions of the two effective wire groups in one coil are opposite, the Ampere force directions received by these two effective wire groups are the same, and thus torques in the same direction are generated.

[0096] One effective wire group 513a of the first coil 512a and one effective wire group 513b of the adjacent second coil 512b form an Ampere force generating part 518, making the structure of the coil group more compact; the air gap magnetic field directions received by the Ampere force generating part 518 are the same, the current directions of the effective wire group 513a and the effective wire group 513b in the Ampere force generating part 518 are the same, so that the Ampere force generating part 518 receives an Ampere force in a single direction, and thus torques in the same direction are generated.

[0097] Of course, in other embodiments, a second base body 511 has a plurality of second coil groups, and the second coil groups are connected in series or in parallel.

[0098] When the number of second moving coil units is multiple, the multiple second moving coil units are connected in series or in parallel.

[0099] Series connection means that in two adjacent second moving coil units, the coil start point of one second moving coil unit is connected to the coil end point of the other second moving coil unit.

[0100] Parallel connection means that for two adjacent second moving coil units, the coil start point of one second moving coil unit is connected to the start point of the other second moving coil unit, and the coil end point of one second moving coil unit is connected to the end point of the other second moving coil unit.

[0101] The method for manufacturing the above-mentioned second moving coil assembly 51 refers to Chinese Patent CN 201310451020.6.

[0102] Refer to Figure 12 and Figure 13 , a notch 122 is formed on one side of the tabletop 12 facing the base 11, so that a part of the position of the main shaft 13 corresponding to the notch 122 is exposed; a part of the second moving coil assembly 51 is located in the notch 122, and a groove capable of covering a part of the circumferential surface of the main shaft 13 is provided on the second moving coil assembly 51, and the inner wall of the groove fits with the side wall of the main shaft 13, so that the second moving coil assembly 51 can generate a torque relative to the axis of the main shaft 13.

[0103] Refer to Figure 12 and Figure 16 , the second base body 511 and the tabletop 12 are fixedly connected through a connection structure, and the connection structure includes a first fixing block 53 and a second fixing block 54; two first fixing blocks 53 are provided, symmetrically arranged on both sides of the second base body 511 to limit the position of the second base body 511, and the first fixing block 53 is in a tile shape, and an arc surface 531 covering the main shaft 13 is provided on the side facing the tabletop 12 to position the first fixing block 53 so that the center line of the first fixing block 53 coincides with the axis of the main shaft 13; one end of the first fixing block 53 abuts against the second base body 511, and the first fixing block 53 has a first connection part 532 for connecting with the second base body 511 and a second connection part 533 for connecting with the tabletop 12; the first connection part 532 is in a partial ring shape, located at one end of the first fixing block 53 facing the second base body 511, and the first connection part 532 is connected with the second base body 511 through a fastener; the second connection part 533 is formed by the axis of the arc surface 531 extending radially, two are provided, and are symmetrically arranged relative to the first connection part 532, and the second connection part 533 is connected with the tabletop 12 through a fastener.

[0104] Refer to Figure 16 , 4 second fixing blocks 54 are provided, and every two second fixing blocks 54 are set as a group, and the two groups are respectively located at positions far from the center line of the second base body 511, and the two second fixing blocks 54 in one group are symmetrically arranged with respect to the second base body 511; the second fixing block 54 is in an L shape and has a first branch 541 for connecting with the second base body 511 and a second branch 542 for connecting with the tabletop 12, further improving the stability of the second base body 511.

[0105] In this embodiment, refer to Figure 12, two sets of the second driving components 50 are provided, and the two sets of the second driving components 50 share a magnetic conductor 521. The cross-section of the first magnetic conductor 521 is set to an inverted T shape, and the second magnetic conductors 522 of the two sets of the second driving components 50 are symmetrically arranged on both sides of the first magnetic conductor 521, with a compact structure and reduced production costs. Of course, the number of the second driving components 50 is not limited to the example in this embodiment, and each set of the second driving components 50 can be independently arranged at intervals.

[0106] In this embodiment, the specific working principle of the second driving component 50 for torque compensation is as follows:

[0107] S1: When no test equipment is placed on the tabletop, the horizontal axial angular vibration device 10 is recorded as the balanced position when the tabletop is horizontal, and the circular grating records the zero position.

[0108] S2: When the test equipment is placed on the tabletop, the center of mass of the moving part moves upward, resulting in the overall center of mass of the moving part deviating from the spindle axis to above it, generating a deflection moment relative to the axis, so that the overall moving part becomes unstable and deviates from the zero position.

[0109] S3: The circular grating feeds back the overall angular displacement signal of the moving part to the host computer.

[0110] S4: The host computer calculates the magnitude of the deflection moment according to the overall angular displacement of the moving part, outputs a corresponding current to the second moving coil assembly 51, and the second driving component 50 generates a compensation moment equal in magnitude and opposite in direction to the deflection moment to compensate the position of the moving part, so that the tabletop returns to horizontal and returns to the zero position.

[0111] Embodiment 4

[0112] Reference Figure 17 and Figure 19 , the difference between this embodiment and Embodiment 3 is that: in this embodiment, the first driving component 20 is not provided, and at least one set of the second driving components 50 associated with the spindle 13 and / or the tabletop 12 is only provided on the base 11. The second driving component 50 directly drives the spindle 13 to rotate back and forth, so that an angular motion amount will be output on the tabletop 12 to excite the test equipment. In this embodiment, the maximum angular displacement of the second moving coil assembly 51 is determined by the maximum angle that the effective wire group 513 can rotate in the same air-gap magnetic field, and the maximum angular displacement of the second moving coil assembly 51 determines the maximum output amplitude of the tabletop. For the requirements of the output angular amplitude of different angular vibration devices 10 and the design concept of fully utilizing the matrix space to arrange the coils, a moving coil structure with different numbers of coil groups can be designed.

[0113] Reference Figures 17 to 19, two first supports 111 are symmetrically arranged on the base 11, and both ends of the main shaft 13 are respectively supported on the first supports 111 through radial air bearings 26. A second support 112 is further arranged on the side of the first support 111 away from the tabletop. The second support 112 is also fixed on the base 11. A through second through hole 1121 is provided on the second support 112, and a part of the end of the main shaft 13 extends into the second through hole 1121; a end cover 27b for blocking the second through hole 1121 is provided on the side of the second support 112 away from the first support 111, and the end cover 27b is screwed or connected to the second support 112 through a fastener.

[0114] In this embodiment, referring to Figure 19 , there are two groups of the second driving components 50. The two groups of the second driving components 50 share a magnetic conductor 521. The cross-section of the first magnetic conductor 521 is set as an inverted T shape. The second magnetic conductors 522 of the two groups of the second driving components 50 are symmetrically arranged on both sides of the first magnetic conductor 521, with a compact structure and reduced production cost; of course, the number of the second driving components 50 is not limited to the example of this embodiment, and each group of the second driving components 50 can be independently arranged at intervals.

[0115] Furthermore, the angular vibration device 10 is provided with at least two groups of the second driving components. At least one group of the second driving components is passed through an alternating current to drive the main shaft or the tabletop to perform angular vibration, and the remaining second driving components are used as torque compensation; when the angular vibration device 10 works, when a test device is installed on the tabletop 12, the center of mass of the moving part moves upward, and the overall center of mass of the moving part deviates from the axis of the main shaft to above it, generating a gravitational moment acting on the tabletop 12 and the main shaft 13. The second driving component 50 used as torque compensation can generate a torque with equal magnitude and opposite direction for compensation. All the second driving components 50 can be combined in a way of being separately arranged or sharing the first magnetic conductor 521.

[0116] The working principle of the second driving component in this embodiment is as follows:

[0117] St1: When no test device is placed on the tabletop, according to the design requirements, the center of mass of the moving part is just located on the axis of the main shaft; at this time, the tabletop can be made to stay in the horizontal position, which is set as the balance position of the moving part and the zero position recorded by the circular grating.

[0118] St2: When the test device is placed on the tabletop, the center of mass of the moving part will shift upward. When the center of mass of the moving part is above the axis of the main shaft, the gravity of the moving part will generate a deflecting gravitational moment, causing the overall rotation of the moving part to deviate from the zero position.

[0119] St3: The second driving component used as the power source drives the moving part to swing back and forth around the balance position, and the circular grating feeds back the overall angular displacement signal of the moving part to the host computer.

[0120] St4: The host computer calculates the magnitude of the deflection gravity moment based on the overall deflection angular displacement of the moving part, and outputs a corresponding current to the second moving coil assembly in the second driving part used for torque compensation. The second driving part used for torque compensation generates a compensation moment with the same magnitude and opposite direction as the deflection gravity moment to compensate for the position of the moving part, so that the tabletop is horizontal and returns to the zero position.

[0121] The above-described embodiments do not limit the protection scope of the technical solution. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the above embodiments are included in the protection scope of the technical solution.

Claims

1. A non-motor-driven horizontal axial angular vibration device, characterized in that: It includes a base; a moving part, at least including a table for placing a test device and a main shaft connected to the table to drive the table to rotate. The axis of the main shaft is horizontally arranged, and both ends of the main shaft are rotatably arranged on the base; a second driving part, arranged in the middle of the main shaft, which includes a second moving coil assembly installed on the table or the main shaft and a second magnetic circuit assembly cooperating with the second moving coil assembly; the second magnetic circuit assembly is fixed to the base; when an alternating current is applied to the second moving coil assembly, under the action of the air-gap magnetic field generated by the second magnetic circuit assembly, an alternating driving torque is generated on the second moving coil assembly, thereby driving the moving part to swing back and forth around the equilibrium position, realizing the angular vibration of the table; The non-motor-driven horizontal axial angular vibration device is provided with at least two groups of second driving parts, and at least one group of second driving parts is used as a power source to drive the moving part to swing back and forth around the equilibrium position, and the remaining second driving parts are used for torque compensation.

2. A non-motor-driven horizontal axial angular vibration device according to claim 1, characterized in that: The second moving coil assembly includes at least one second moving coil unit, and the second moving coil unit includes a semi-circular second base body and at least one second coil group fixed on the surface of the second base body. The center of the second base body coincides with the axis of the main shaft.

3. A non-motor-driven horizontal axial angular vibration device according to claim 2, characterized in that: The second coil group includes a first coil and a second coil wound by a single wire; the first coil and the second coil respectively include an effective wire group located in the air-gap magnetic field and a first connecting wire group and a second connecting wire group located outside the air-gap magnetic field. Each coil has two effective wire groups, and the first and second connecting wire groups are respectively connected to the effective wire groups on both sides; wherein the first connecting wire group is close to the center of the second base body, and the second connecting wire group is far from the center of the second base body; the first and second connecting wire groups are concentric with the second base body, and the wires in the effective wire groups all point to the center of the second base body; the current directions of the two effective wire groups in each coil are opposite, and the two effective wire groups in each coil respectively correspond to two adjacent air-gap magnetic field positions one by one, and the directions of the adjacent air-gap magnetic fields are opposite; the current directions in the adjacent effective wire groups of the two coils are the same and are located in the same air-gap magnetic field.

4. A non-motor-driven horizontal axial angular vibration device according to claim 1, characterized in that: The second magnetic circuit assembly includes a first magnetic conductor arranged on a mounting seat, a second magnetic conductor cooperating with the first magnetic conductor, a first magnetic steel arranged on the first magnetic conductor, a second magnetic steel arranged on the second magnetic conductor, and a second air gap formed between the first magnetic steel and the second magnetic steel; the second moving coil assembly is in clearance fit with the first magnetic steel and the second magnetic steel respectively.

5. A non-motor-driven horizontal axial angular vibration device according to claim 4, characterized in that: The second driving components are provided in multiple groups, and the multiple groups of second driving components are symmetrically arranged in the middle of the main shaft. Two adjacent groups of second driving components can share a magnetic conductor.

6. A non-motor-driven horizontal axial angular vibration device according to claim 4, wherein: The number of the first magnetic steels and the second magnetic steels is equal, and the first magnetic steels and the second magnetic steels correspond to each other one by one; the structures of the first magnetic steels and the second magnetic steels are the same. A plurality of first magnetic steels and second magnetic steels respectively enclose a fan-shaped ring area. The fan-shaped ring area enclosed by the first magnetic steels, the fan-shaped ring area enclosed by the second magnetic steels and the main shaft are coaxially arranged.

7. A non-motor-driven horizontal axial angular vibration device according to claim 2, wherein: The second base body and the table top are fixedly connected through a connection structure. The connection structure includes a first fixing block and a second fixing block; the first fixing block is in a tile shape and has a first connection part connected to the second base body and a second connection part connected to the table top. One side of the first fixing block facing the table top has an arc surface covering the main shaft, and the center line of the arc surface coincides with the axis of the main shaft; the second fixing block is located at a position of the second base body far from the center line and has a first branch connected to the second base body and a second branch connected to the table top.

8. A non-motor-driven horizontal axial angular vibration device according to claim 1, wherein: At least two supports are symmetrically arranged on the base; the non-motor-driven horizontal axial angular vibration device further includes a radial air bearing and an axial air bearing. The main shaft is connected to the support through the radial air bearing. The radial air bearing includes an air floating sleeve sleeved on the main shaft and a bearing seat matched with the air floating sleeve. A radial air film is formed between the air floating sleeve and the side wall of the main shaft; the bearing seat is installed on the support; axial air bearings are respectively arranged at both ends of the main shaft. The axial air bearing includes a plane air floating bearing thrusting against the end of the main shaft, a pressing bolt and a support plate matched with the plane air floating bearing. An axial air film is formed between the plane air floating bearing and the end of the main shaft; the support plate is installed on the support.

9. A non-motor-driven horizontal axial angular vibration device according to claim 1, wherein: A circular grating is provided at the end of the main shaft, and a reading head for detecting the angular displacement signals output by the main shaft and the table top is provided on the support; a counterweight ring is arranged at one end of the main shaft far from the circular grating; the working steps of the second driving component are as follows: St1: When no test equipment is placed on the table top, according to the design requirements, the center of mass of the moving component is just located on the axis of the main shaft; at this time, the table top can be made to stay in the horizontal position, which is set as the balance position of the moving component and the zero position recorded by the circular grating; St2: When the test equipment is placed on the table top, the center of mass of the moving component will shift upward. When the center of mass of the moving component is above the axis of the main shaft, the gravity of the moving component will generate a deflecting gravity moment, resulting in the overall rotation of the moving component to deviate from the zero position; St3: The second driving component as the power source drives the moving component to swing back and forth around the balance position, and the circular grating feeds back the overall deflection angular displacement signal of the moving component to the host computer; St4: The host computer calculates the magnitude of the deflection gravitational moment based on the overall deflection angular displacement of the moving component, and outputs a corresponding current to the second moving coil assembly in the second driving component used for torque compensation. The second driving component used for torque compensation generates a compensation moment with the same magnitude and opposite direction as the deflection gravitational moment to compensate for the position of the moving component, so that the tabletop is leveled to return to the zero position.

Citation Information

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