Capsule isolation system enabling wave field reshaping

By combining interference modules, wave shaping modules, and vibration isolation modules, the problem of difficult isolation of vibration waves under complex vibration source backgrounds is solved, achieving a highly efficient vibration isolation effect, which is suitable for the vibration reduction needs of various vibration sources and protected objects.

CN121611718BActive Publication Date: 2026-04-07TIANJIN UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2026-01-30
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing vibration reduction and isolation methods are difficult to effectively isolate various forms of vibration waves in complex vibration source backgrounds, leading to problems such as increased track construction costs, equipment damage, and human discomfort.

Method used

By combining interference modules, wave-shaping modules, and vibration isolation modules, multiple vibration isolation mechanisms are employed, including interference capsule buffering, wave-shaping capsule reshaping, and vibration isolation capsule isolation, to achieve buffering, reshaping, and vibration isolation of elastic waves.

Benefits of technology

It improves vibration isolation efficiency under complex vibration source backgrounds, meets the vibration reduction design requirements of different vibration sources and protected objects, and reduces the impact of vibration on buildings and people.

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Abstract

This invention provides a capsule-based vibration isolation system capable of wavefield reshaping, belonging to the field of vibration isolation devices. It includes: an interference module comprising at least one interference capsule configured to buffer elastic waves generated by a vibration source to obtain a first elastic wave; a wave-shaping module comprising at least one wave-shaping capsule located further from the vibration source than the interference capsule, configured to reshape the wavefield of the first elastic wave to obtain a second elastic wave; and a vibration isolation module comprising at least one isolation capsule located further from the vibration source than the wave-shaping capsule, configured to isolate the second elastic wave.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of vibration isolation devices, and more particularly, to a capsule vibration isolation system capable of wave field reshaping. BACKGROUND

[0002] With the gradual improvement of urban construction and the accelerated development of urban agglomeration, traditional highway transportation no longer meets people's needs, and the mileage of rail transportation such as high-speed rail, subway, etc. has increased significantly, which has led to vibration becoming a problem that cannot be ignored. In addition, with the increase of population and building density, the vibration hazards generated by various heavy industrial equipment operation are also increasing. Vibration can cause structural safety hazards to buildings and can cause serious consequences such as reduced life and error overrun for high-precision equipment. In addition, vibration has a great impact on human comfort.

[0003] However, the vibration reduction and isolation methods all have original defects or are not suitable for the current development form of reduced vibration isolation field due to increased building and population density. The vibration reduction method based on the vibration source will lead to increased track construction cost and reduced vibration source plant capacity; in the vibration reduction method based on the propagation path, the vibration reduction trench is prone to collapse, and the ground retaining wall is not effective; and in the current environment, the vibration source background is complex, and the vibration isolation method is difficult to effectively isolate various forms of vibration waves.

[0004] Therefore, it has become a technical problem to be solved to provide an efficient vibration reduction and isolation method suitable for the current complex vibration source background. SUMMARY

[0005] Therefore, the present application provides a capsule vibration isolation system capable of wave field reshaping.

[0006] One aspect of an embodiment of the present application provides a capsule vibration isolation system capable of wave field reshaping, comprising: an interference module, the interference module comprising at least one interference capsule, the interference capsule being configured to buffer the elastic waves generated by the vibration source to obtain first elastic waves; a wave shaping module, the wave shaping module comprising at least one wave shaping capsule, the wave shaping capsule being farther away from the vibration source than the interference capsule, the wave shaping capsule being configured to reshape the wave field of the first elastic waves to obtain second elastic waves; a vibration isolation module, the vibration isolation module comprising at least one vibration isolation capsule, the vibration isolation capsule being farther away from the vibration source than the wave shaping capsule, the vibration isolation capsule being configured to isolate the second elastic waves.

[0007] According to an embodiment of the present application, the inside of the plastic wave capsule comprises at least one magnet arranged fixedly on the inner surface of the plastic wave capsule, and a magnetic single pendulum arranged fixedly on a suspension through a non-metal chain, the suspension being fixed to the inside of the plastic wave capsule; wherein the at least one magnet is arranged to generate a magnetic field under the control of a far infrared control signal; the magnetic single pendulum is arranged to swing based on a target frequency under the action of the magnetic field, and is arranged to modulate the target frequency band of the first elastic wave based on the frequency of the swing, change the resonance peak of the first elastic wave based on the damping of the swing, and change the phase of the first elastic wave based on the angle of the swing, so as to reshape the wave field of the first elastic wave.

[0008] According to an embodiment of the present application, the inside of the plastic wave capsule is filled with inert gas, and the plastic wave capsule and the inert gas form a gas spring configured to dissipate the energy of the first elastic wave to perform vibration isolation processing on the first elastic wave.

[0009] According to an embodiment of the present application, the plastic wave module further comprises a gas compressor and a plurality of first pneumatic valves, the gas compressor being connected to the plurality of first pneumatic valves respectively, and the first pneumatic valves being connected to the plastic wave capsule; wherein the first pneumatic valves are arranged to control the gas pressure in the inside of the plastic wave capsule during the process that the gas compressor inputs inert gas into the inside of the plastic wave capsule, and the plastic wave capsule and the inert gas with different pressures form gas springs with different stiffnesses, and the gas springs with different stiffnesses are arranged to perform vibration isolation processing on the first elastic wave.

[0010] According to an embodiment of the present application, the inside of the vibration isolation capsule is filled with hydraulic cementitious material, and the hydraulic cementitious material is arranged to hinder the transmission of the second elastic wave to perform vibration isolation processing on the second elastic wave.

[0011] According to an embodiment of the present application, the vibration isolation module further comprises a gas extraction pump and a plurality of gas extraction valves, the gas extraction pump being connected to the plurality of gas extraction valves respectively, and the gas extraction valves being connected to the vibration isolation capsule; a grouting pump and a plurality of grouting valves, the grouting pump being connected to the plurality of grouting valves respectively, and the grouting valves being connected to the vibration isolation capsule; wherein the gas extraction valves are arranged to control the gas pressure in the inside of the vibration isolation capsule during the process that the gas extraction pump extracts gas in the inside of the vibration isolation capsule, so that the grouting pump injects hydraulic cementitious material into the inside of the vibration isolation capsule; and the grouting valves are arranged to control the injection speed of the hydraulic cementitious material during the process that the grouting pump injects the hydraulic cementitious material into the inside of the vibration isolation capsule, so as to form hard material blocks with different specifications, and the hard material blocks with different specifications are arranged to perform vibration isolation processing on the second elastic wave.

[0012] According to an embodiment of the present application, the inside of the interference capsule is filled with air and high polymer particles, and the high polymer particles are arranged to dissipate the impact energy of the elastic wave generated by the vibration source based on friction and collision, so as to perform buffering processing on the elastic wave generated by the vibration source.

[0013] According to an embodiment of the present application, the interference module further comprises: an air compressor and a plurality of second pneumatic valves, the air compressor is connected to the plurality of second pneumatic valves respectively, and the second pneumatic valves are connected to the interference capsule; wherein the second pneumatic valves are configured to control the gas pressure in the interference capsule during the process of the air compressor inputting inert gas and polymer particles into the interference capsule, so as to form polymer particles with different filling rates, and the polymer particles with different filling rates are configured to buffer the elastic waves generated by the vibration source.

[0014] According to an embodiment of the present application, the capsule vibration isolation system further comprises: a first wave characteristic sensor, the first wave characteristic sensor is closer to the vibration source than the plastic wave capsule, and the first wave characteristic sensor is configured to collect a first wave characteristic signal of the first elastic wave; a second wave characteristic sensor, the second wave characteristic sensor is farther away from the vibration source than the vibration isolation capsule, and the second wave characteristic sensor is configured to collect a second wave characteristic signal of the elastic wave after being processed by the vibration isolation module; and a controller configured to receive the first wave characteristic signal and the second wave characteristic signal, and generate a far-infrared control signal based on the wave characteristic parameters of the first wave characteristic signal and / or the second wave characteristic signal.

[0015] According to an embodiment of the present application, the at least one magnet comprises a first magnet, a second magnet and a third magnet, the magnetic single pendulum comprises a first vibrator, a second vibrator and a third vibrator, and the plastic wave capsule is a columnar capsule, wherein the first vibrator is connected to the lower end of the first magnet through a non-metal chain, the second vibrator is connected to the lower end of the first vibrator through a non-metal chain, the third vibrator is connected to the lower end of the second vibrator through a non-metal chain, the first magnet is fixedly arranged at the lower end of the suspension, the second magnet is fixedly arranged at the inner lower surface of the columnar capsule, the third magnet is fixedly arranged at the inner side surface of the columnar capsule, the first magnet and the second magnet are arranged symmetrically along the axis of the columnar capsule, and the magnetic force of the first magnet and the second magnet on the magnetic single pendulum is greater than the magnetic force of the third magnet on the magnetic single pendulum.

[0016] According to an embodiment of the present application, the interference module, the plastic wave module and the vibration isolation module are combined to isolate the vibration, the elastic wave generated by the vibration source is buffered by the interference module, the buffered elastic wave is subjected to wave field reshaping by the plastic wave module, and the reshaped elastic wave is subjected to vibration isolation by the vibration isolation module, so as to solve the problem of how to efficiently isolate the vibration under the complex vibration source background, the elastic wave is blocked based on multiple vibration isolation mechanisms, the single method of reflecting the elastic wave is changed into the combined vibration isolation method of multiple capsules and multiple mechanisms, and the high freedom and high flexibility of the capsule can more easily meet the vibration reduction design requirements of different vibration sources and protected objects, thereby improving the vibration isolation efficiency in different vibration isolation scenes. BRIEF DESCRIPTION OF DRAWINGS

[0017] The above and other objects, features and advantages of the present application will become more apparent from the following description when taken in conjunction with the accompanying drawings, in which:

[0018] Figure 1 A schematic diagram of a capsule isolation system in which wavefield reshaping can be implemented is shown, according to an embodiment of the present application;

[0019] Figure 2 A schematic diagram of an interference module is shown, according to an embodiment of the present application;

[0020] Figure 3 A schematic diagram of an interference module is shown, according to another embodiment of the present application;

[0021] Figure 4 A schematic diagram of a wave molding module is shown, according to an embodiment of the present application;

[0022] Figure 5 A schematic diagram of a wave molding module is shown, according to another embodiment of the present application;

[0023] Figure 6 A schematic diagram of an isolation module is shown, according to an embodiment of the present application;

[0024] Figure 7 A schematic diagram of an isolation module is shown, according to another embodiment of the present application. DETAILED DESCRIPTION

[0025] Hereinafter, embodiments of the present application will be described with reference to the accompanying drawings. It is to be understood, however, that the description is merely exemplary of the present application, and is intended to provide a thorough description for those skilled in the art to understand the present application. Therefore, the description is not intended to limit the scope of the present application. In the following detailed description of the embodiments of the present application, the description is given for ease of explanation with reference to the accompanying drawings. It is, therefore, to be understood that no limitation of the scope of the present application is

[0026] The terms used herein are merely used to describe specific embodiments, and are not intended to limit the present application. The terms "include" and "have" and the like used herein indicate the presence of the described features, steps, operations, and / or components, but do not preclude the presence or addition of one or more other features, steps, operations, or components.

[0027] All terms used herein, including technical and scientific terms, have the same meanings as those generally understood by those skilled in the art, unless otherwise defined. It should be noted that the terms used herein should be interpreted as having meanings consistent with the context of the present description, and should not be interpreted in an idealized or overly formal manner.

[0028] In the case of using expressions like "at least one of A, B, and C", it generally means "A, B, or C, or any combination of these" (for example, "a system having at least one of A, B, and C" means a system having A alone, or B alone, or C alone, or a system having A and B together, or a system having A and C together, or a system having B and C together, or a system having A, B, and C together, etc.).

[0029] With the accelerated development of urban agglomeration, various industrial equipment operation will generate a large amount of background complex noise based on different vibration sources. However, the vibration reduction and isolation method is relatively single, and cannot effectively isolate the various background complex noises generated in the above situation. Considering that the elastic wave with small wavelength is more difficult to block than the elastic wave with large wavelength, it is thought that the elastic wave field can be reshaped to change the large-wavelength high-energy elastic wave which is not easy to block into small-wavelength low-energy elastic wave which is easy to block, and then the small-wavelength low-energy elastic wave is subjected to efficient isolation treatment. At the same time, it is also necessary to consider the buffering treatment of the elastic wave with high instantaneous impact energy such as explosion, so as to ensure the stability of the system. Based on this, the embodiment of the present application proposes a capsule vibration isolation system capable of realizing wave field reshaping, which comprises an interference module for buffering, a wave shaping module for reshaping the wave field, and a vibration isolation module for vibration isolation treatment.

[0030] Figure 1 A schematic diagram of the capsule vibration isolation system capable of realizing wave field reshaping according to the embodiment of the present application is shown.

[0031] As shown in Figure 1 , the capsule vibration isolation system capable of realizing wave field reshaping according to the embodiment comprises an interference module 101, a wave shaping module 102, and a vibration isolation module 103.

[0032] The interference module 101 comprises at least one interference capsule, which is configured to buffer the elastic wave generated by the vibration source to obtain a first elastic wave.

[0033] The buffering treatment of the elastic wave can be changing its space-time characteristics, reducing its peak stress or acceleration, prolonging its action time, and dissipating its energy through a series of means, so as to protect the target module.

[0034] The buffering treatment mode of the elastic wave includes but is not limited to energy dissipation, energy redistribution, energy storage and release, energy reflection and isolation. Energy dissipation means irreversible conversion of impact mechanical energy into other forms; energy redistribution means dispersing the concentrated and instantaneous energy in space to a larger range, or extending in time; energy storage and release means temporarily storing in the form of elastic potential energy, and slowly releasing in a non-destructive way; energy reflection and isolation means preventing impact energy from entering the protected area.

[0035] For example, based on the buffer energy-absorbing structure, a preset geometric shape (such as a honeycomb, a corrugated plate, or a conical tube) is designed to undergo controllable and progressive folding, buckling, or tearing under axial impact, and energy is stably absorbed through large deformation of the structure.

[0036] The wave shaping module 102 includes at least one wave shaping capsule, which is away from the vibration source compared with the interference capsule, and is configured to perform wave field reshaping processing on the first elastic wave to obtain a second elastic wave.

[0037] The wave shaping capsule being away from the vibration source compared with the interference capsule means that the positional relationship between the wave shaping capsule and the interference capsule needs to ensure that the elastic wave first undergoes buffering processing by the interference capsule and then undergoes wave field reshaping processing by the wave shaping capsule.

[0038] The wave field reshaping processing can be performed by actively or passively changing the propagation path, energy distribution, phase, and other related parameters of the wave in space. The wave field reshaping processing methods include but are not limited to: changing the material parameters of the wave shaping capsule, affecting the wave speed by designing the spatial distribution of the material, thereby controlling refraction, reflection, and propagation path; introducing a boundary, using boundary conditions (such as a free boundary, a fixed boundary, or an impedance boundary) to reflect, convert, or guide the wave; applying an external excitation, directly synthesizing a target wave field by controlling the time and spatial characteristics of the excitation source; using time-varying or nonlinear effects to change the material parameters or boundary conditions over time, or using nonlinear interactions of the wave.

[0039] The vibration isolation module 103 includes at least one vibration isolation capsule, which is away from the vibration source compared with the wave shaping capsule, and is configured to perform vibration isolation processing on the second elastic wave.

[0040] The vibration isolation capsule being away from the vibration source compared with the wave shaping capsule means that the positional relationship between the vibration isolation capsule and the wave shaping capsule needs to ensure that the elastic wave first undergoes buffering processing by the wave shaping capsule and then undergoes vibration isolation processing by the vibration isolation capsule.

[0041] The vibration isolation processing of the elastic wave can rely on the physical properties of the vibration isolation capsule for passive vibration isolation, or can introduce sensors, controllers, and actuators on the basis of the vibration isolation capsule to achieve active vibration isolation with real-time dynamic control. For example, based on passive vibration isolation, an inertial mass can be placed in the vibration isolation capsule to reduce the shaking of the vibration isolation capsule and evenly distribute the load. For another example, based on active vibration isolation, an accelerometer or displacement sensor can be installed on the vibration isolation capsule to measure the residual vibration in real time. The controller calculates a cancellation signal to drive the actuator to generate a counteracting force to directly cancel the vibration.

[0042] For any one of the interference capsule, the wave shaping capsule, and the vibration isolation capsule, the capsule can be a closed container made of flexible and high-strength rubber composite material, and filled with compressible gas. The gas pressure inside the capsule can be adjusted, and by adjusting the gas pressure, the capsule can carry a load of several hundred kilograms to tens of tons, and the carrying capacity is proportional to the gas pressure. At the same time, by adjusting the gas pressure, the stiffness of the capsule can be controlled, and different responses to elastic waves can be achieved based on the stiffness control of the capsule.

[0043] For any one of the interference capsule, the wave shaping capsule, and the vibration isolation capsule, the number, the row number, and the size of the capsule can be determined according to the size of the vibration source or the protected object and the engineering needs, and the arrangement form of the capsule can be freely selected.

[0044] For any one of the interference capsule, the wave shaping capsule, and the vibration isolation capsule, the capsule can be buried in the soil or placed on the ground. The process of burying the capsule in the soil can be selected according to the soil conditions, and the capsule can be buried with air or pre-charged with air pressure. However, regardless of the form, the quality and air tightness of the capsule need to be checked. The pre-charged air pressure and the final air pressure of the capsule should be determined comprehensively according to the properties of the soil, the size of the soil pressure at the deepest part, and the material of the capsule.

[0045] Through the embodiments of the present application, the elastic waves can be blocked based on multiple vibration isolation mechanisms, and the single method of reflecting elastic waves in the traditional method is changed to a combined vibration isolation method of multiple capsules and multiple mechanisms. Due to the high freedom and high flexibility of the capsule, the vibration reduction design requirements of different vibration sources and protected objects can be more easily met, thereby improving the vibration isolation efficiency in different vibration isolation scenes.

[0046] Figure 2 A schematic diagram of an interference module according to an embodiment of the present application is shown.

[0047] As shown in Figure 2 , the interference module includes an interference capsule 200 and high molecular particles 201.

[0048] The interference capsule 200 is filled with gas and high molecular particles 201, and the high molecular particles 201 are configured to dissipate the impact energy of the elastic waves generated by the vibration source based on friction and collision, so as to buffer the elastic waves generated by the vibration source. In the embodiments of the present application, the content of the gas inside the interference capsule 200 and the content of the high molecular particles 201 can be configured as needed, and the configured interference capsule is sealed for buffering elastic waves.

[0049] The gas can be air, and the types of high molecular particles 201 include but are not limited to natural rubber particles, polyurethane foam particles, polyethylene foam particles, polyolefin particles, polystyrene beads, and magnetorheological elastomer particles.

[0050] In embodiments of the present invention, the shape, size, surface roughness, particle size distribution and filling rate of the polymer particles 201 can be selected according to engineering needs to achieve better elastic wave buffering.

[0051] Through the embodiments of the present invention, elastic waves generated by vibration sources can be buffered to prevent the impact energy of elastic waves from damaging the vibration isolation system.

[0052] According to an embodiment of the present invention, the interference module may include: an air compressor and a plurality of second pneumatic valves, wherein the air compressor is connected to the plurality of second pneumatic valves respectively, and the second pneumatic valves are connected to the interference capsule; wherein the second pneumatic valves are configured to control the gas pressure inside the interference capsule during the process of the gas compressor inputting gas and polymer particles into the interference capsule, thereby forming polymer particles with different filling ratios, and the polymer particles with different filling ratios are configured to buffer the elastic waves generated by the vibration source.

[0053] Figure 3 A schematic diagram of an interference module according to another embodiment of the present invention is shown.

[0054] like Figure 3 As shown, the interference module includes an air compressor 310, a first air pressure stabilizer 320, an anti-backflow mesh 330, a first pneumatic main valve 340, a polymer pulverizer 350, a first and second pneumatic valves 361, a second and third pneumatic valves 362, a third and fourth pneumatic valve 363, a first interference capsule 371, a second interference capsule 372, and a third interference capsule 373.

[0055] Air compressor 310 serves to fill the gas chamber and is connected to polymer pulverizer 350 via a flexible conduit. Polymer pulverizer 350 pulverizes polymer foam and uses the airflow from air compressor 310 to fill the interference chamber with polymer particles, increasing its support for the sidewall soil. First pressure stabilizer 320, anti-backflow net 330, and first pneumatic master valve 340 are fixed at the flexible conduit between air compressor 310 and polymer pulverizer 350. First pressure stabilizer 320 stabilizes the gas pressure within the interference chamber; first pneumatic master valve 340 controls the overall air pressure and provides safety protection by stopping pressurization in case of emergency; anti-backflow net 330 prevents polymer particles from flowing back into air compressor 310 and clogging it. The polymer pulverizer 350 is connected to the first interference capsule 371, the second interference capsule 372 and the third interference capsule 373 through a flexible conduit. The first and second pneumatic valves 361 control the gas pressure of the first interference capsule 371, the second and second pneumatic valves 362 control the gas pressure of the second interference capsule 372 and the third and second pneumatic valves 363 control the gas pressure of the third interference capsule 373.

[0056] The first interference capsule 371, the second interference capsule 372, and the third interference capsule 373 can form polymer particles with different filling ratios, thereby providing different degrees of buffering for the elastic waves generated by the vibration source.

[0057] Through the embodiments of the present invention, the gas pressure inside the interference capsule can be controlled in real time, and polymer particles with different filling ratios can be formed as needed, thereby enabling more precise elastic wave buffering.

[0058] According to an embodiment of the present invention, the wave capsule includes: at least one magnet configured to be fixedly disposed on the inner surface of the wave capsule; and a magnetic pendulum configured to be fixedly disposed on a suspension by a non-metallic chain, the suspension being fixed inside the wave capsule; wherein, the at least one magnet is configured to generate a magnetic field under the control of a far-infrared control signal; the magnetic pendulum is configured to oscillate based on a target frequency under the action of the magnetic field, and is configured to modulate the target frequency band of a first elastic wave based on the oscillation frequency, change the resonance peak of the first elastic wave based on the oscillation damping, and change the phase of the first elastic wave based on the oscillation angle, so as to reshape the wave field of the first elastic wave.

[0059] In embodiments of the present invention, a far-infrared signal receiver, such as a far-infrared photoelectric sensor, can be integrated onto the magnet. An external controller transmits an encoded far-infrared control signal wirelessly to the magnet's far-infrared signal receiver. The receiver decodes the encoded far-infrared control signal and converts it into electrical commands. These electrical commands control the on / off state of the microcircuit inside the magnet, thereby controlling the coil current of the electromagnet and altering the magnetic field strength and equivalent dynamic parameters, thus generating a preset magnetic field effect.

[0060] In embodiments of the present invention, the oscillation frequency of a magnetic pendulum can be altered by changing the direction of the magnetic field. For example, by controlling the magnetic field to undergo 50 left-right directional changes per second using a far-infrared control signal, the magnetic pendulum oscillates left and right 50 times per second, thereby controlling the pendulum to oscillate at a frequency of 50 Hz. By adjusting the duration of the magnetic field's action, the phase difference between the magnetic pendulum and the elastic wave can be altered. Due to the out-of-phase vibration of the magnetic pendulum and the elastic wave, the damping of the interference capsule relative to the elastic wave is constantly adjusted in real time. Increasing the damping blunts the resonance peak of the elastic wave, while decreasing the damping sharpens the resonance peak. A sharper resonance peak leads to stronger phase abrupt changes and scattering. Simultaneously, by strengthening the current, the magnetic force of the magnetic field on the magnetic pendulum can be increased, thereby changing the oscillation angle of the pendulum. When the oscillation angle of the magnetic pendulum is large, the elastic wave exhibits frequency doubling / division.

[0061] Through the embodiments of the present invention, precise elastic wave field reshaping can be achieved based on a magnetic pendulum, which helps to achieve highly flexible vibration isolation.

[0062] Figure 4 A schematic diagram of a wave-shaping module according to an embodiment of the present invention is shown.

[0063] like Figure 4 As shown, the wave-forming module includes a wave-forming capsule 400, a suspension 401, a magnet 402, and a magnetic pendulum 403.

[0064] The suspension 401 is fixed inside the wave capsule 400. The magnetic pendulum 403 is connected to the suspension 401. The magnet 402 is fixed inside the wave capsule 400. Under the control of the far-infrared control signal, the magnet 402 generates a magnetic field, thereby driving the magnetic pendulum 403 to swing based on the target frequency to reshape the wave field of the elastic wave.

[0065] The wave-forming capsule 400 can be filled with an inert gas. The inert gas content inside the wave-forming capsule 400 can be configured as needed. The configured wave-forming capsule is then sealed to form a gas spring. The gas spring is configured to dissipate the energy of the first elastic wave, thereby isolating the first elastic wave. The inert gas can be nitrogen, helium, or neon, etc., and its function is to prevent oxidation of the various devices inside the wave-forming capsule 400. In embodiments of the present invention, the inert gas can be a dry inert gas. The gas spring is an elastic element that uses a compressible gas as an energy storage medium. By pre-setting wave-forming capsules of different volumes and inert gas at different pressures, a low natural frequency can be achieved based on the compressibility of the gas, and damping control can be achieved through additional structures.

[0066] Through the embodiments of the present invention, the plastic wave module can also have a certain vibration isolation effect, thereby realizing the joint vibration isolation of multiple bladders and improving the vibration isolation efficiency.

[0067] According to an embodiment of the present invention, the wave-forming module may include: a gas compressor and a plurality of first pneumatic valves, wherein the gas compressor is connected to the plurality of first pneumatic valves respectively, and the first pneumatic valves are connected to the wave-forming chamber; wherein, the first pneumatic valves are configured to control the gas pressure inside the wave-forming chamber during the process of the gas compressor inputting inert gas into the wave-forming chamber, the wave-forming chamber and the inert gas at different pressures form gas springs of different stiffnesses, and the gas springs of different stiffnesses are configured to perform vibration isolation treatment on the first elastic wave.

[0068] In embodiments of the present invention, gas springs of different stiffness can be formed inside the plastic wave capsule based on inert gas at different pressures, thereby providing different degrees of vibration isolation for elastic waves.

[0069] Through the embodiments of the present invention, the gas pressure inside the plastic wave capsule can be controlled in real time, and gas springs with different stiffnesses can be formed as needed, thereby enabling more precise elastic wave vibration isolation treatment.

[0070] Figure 5 A schematic diagram of a wave-shaping module according to another embodiment of the present invention is shown.

[0071] like Figure 5 As shown, the wave-shaping module includes a gas compressor 510, a second pressure stabilizer 520, a second pneumatic master valve 530, a first pneumatic valve 541, a second first pneumatic valve 542, a third first pneumatic valve 543, a first wave-shaping capsule 551, a second wave-shaping capsule 552, a third wave-shaping capsule 553, a suspension 5511, a first oscillator 5512, a second oscillator 5513, a third oscillator 5514, a first magnet 5515, a second magnet 5516, and a third magnet 5517. The first wave-shaping capsule 551, the second wave-shaping capsule 552, and the third wave-shaping capsule 553 can be cylindrical capsules.

[0072] The gas compressor 510 can pressurize inert gas into the bladder, reducing the bladder's stiffness, increasing elastic wave attenuation, and preventing oxidation of the internal components. The gas compressor 510 is connected to the first plastic wave bladder 551, the second plastic wave bladder 552, and the third plastic wave bladder 553 via flexible conduits. The second pressure stabilizer 520 and the second pneumatic master valve 530 are fixed at the flexible conduits between the gas compressor 510 and the first, second, and third plastic wave bladders 551, 552, and 553. The second pressure stabilizer 520 stabilizes the gas pressure within the plastic wave bladder, and the second pneumatic master valve 530 provides overall pressure control and safety protection by stopping pressurization in case of emergency. The first pneumatic valve 541 controls the gas pressure of the first plastic wave bladder 551, the second pneumatic valve 542 controls the gas pressure of the second plastic wave bladder 552, and the third pneumatic valve 543 controls the gas pressure of the third plastic wave bladder 553.

[0073] The suspension 5511 is fixed inside the first plastic wave capsule 551, allowing inert gas to pass through. The first oscillator 5512, the second oscillator 5513, and the third oscillator 5514 form a magnetic pendulum. The first magnet 5515 is fixed below the suspension 5511. The first magnet 5515 and the first oscillator 5512, the first oscillator 5512 and the second oscillator 5513, and the second oscillator 5513 and the third oscillator 5514 are all connected by non-metallic chains. These non-metallic chains prevent the magnetic pendulum from failing due to the magnet generating magnetic force and attracting the non-metallic chains. The second magnet 5516 is fixed to the lower surface of the first plastic wave capsule 551, and the third magnet 5517 is fixed to the side surface of the first plastic wave capsule 551. The first magnet 5515 and the second magnet 5516 are arranged symmetrically along the axis of the columnar capsule. The magnetic force exerted by the first magnet 5515 and the second magnet 5516 on the magnetic pendulum is greater than that exerted by the third magnet 5517. The first magnet 5515, the second magnet 5516, and the third magnet 5517 can form a magnetic cage to provide external force for the magnetic pendulum composed of the first oscillator 5512, the second oscillator 5513, and the third oscillator 5514. A far-infrared control signal can be generated by a controller to control the first magnet 5515, the second magnet 5516, and the third magnet 5517 to generate different magnetic forces, causing the first oscillator 5512, the second oscillator 5513, and the third oscillator 5514 to oscillate, thereby dissipating the incident elastic wave and reshaping the wave field.

[0074] In embodiments of the present invention, the first oscillator 5512, the second oscillator 5513, and the third oscillator 5514 form a multi-degree-of-freedom oscillator system through coupled vibration, enabling the transfer and redistribution of elastic wave energy among multiple modes, thereby achieving coordinated control and wavefield reshaping of elastic waves in different frequency bands. The second oscillator 5513 is the master oscillator, and the first oscillator 5512 and the third oscillator 5514 are auxiliary oscillators. Based on the master and auxiliary oscillators, the system is a multi-degree-of-freedom system in dynamics, with multiple natural frequencies. The incident wave no longer excites a single resonance, but a combination of the primary mode and the secondary mode. The master and auxiliary oscillators cooperate to achieve energy transfer and internal resonance. When the master oscillator is excited, beat vibration, internal resonance, and energy cyclically transfer between different oscillators are formed. The vertically arranged auxiliary oscillators form a spatially symmetrical structure that suppresses system yaw and unidirectional instability, resulting in a more stable response to elastic waves incident from different directions or with different polarizations.

[0075] According to an embodiment of the present invention, the vibration isolation bladder is filled with a hydraulic cementitious material configured to impede the transmission of the second elastic wave, thereby isolating the second elastic wave.

[0076] Figure 6 A schematic diagram of a vibration isolation module according to an embodiment of the present invention is shown.

[0077] like Figure 6As shown, the vibration isolation module includes a vibration isolation bladder 600 and a hydraulic cementitious material 601.

[0078] The hydraulic cementitious material 601 can form rigid material blocks inside the vibration isolation cell 600. By pre-mixing different amounts of hydraulic cementitious material 601 inside the vibration isolation cell 600, rigid material blocks of different sizes can be formed inside the vibration isolation cell 600. The vibration isolation cell containing the rigid material blocks is then buried in the soil to isolate elastic waves. The hydraulic cementitious material includes, but is not limited to: general-purpose cement, special-purpose cement, fly ash, slag powder, silica fume, etc.

[0079] Through embodiments of the present invention, the mass of the vibration isolation capsule can be increased by using hydraulic cementitious materials, thereby reducing the vibration level of elastic waves based on inertial resistance and the effect of rigid walls, and improving the vibration isolation effect.

[0080] According to an embodiment of the present invention, the vibration isolation module further includes: an air extraction pump and multiple air extraction valves, the air extraction pump being connected to the multiple air extraction valves respectively, and the air extraction valves being connected to the vibration isolation bladder; a grouting pump and multiple grouting valves, the grouting pump being connected to the multiple grouting valves respectively, and the grouting valves being connected to the vibration isolation bladder; wherein, the air extraction valves are configured to control the gas pressure inside the vibration isolation bladder during the process of the air extraction pump extracting gas from inside the vibration isolation bladder, so that the grouting pump injects hydraulic cementitious material into the vibration isolation bladder; the grouting valves are configured to control the injection speed of the hydraulic cementitious material during the process of the grouting pump injecting the hydraulic cementitious material into the vibration isolation bladder, so as to form rigid material blocks of different specifications, and the rigid material blocks of different specifications are configured to perform vibration isolation treatment on the second elastic wave.

[0081] Figure 7 A schematic diagram of a vibration isolation module according to another embodiment of the present invention is shown.

[0082] like Figure 7 As shown, the vibration isolation module includes an air extraction pump 710, an air extraction main valve 720, a first air extraction valve 731, a second air extraction valve 732, a third air extraction valve 733, a first vibration isolation bladder 741, a second vibration isolation bladder 742, a third vibration isolation bladder 743, a first grouting valve 751, a second grouting valve 752, a third grouting valve 753, a grouting main valve 760, and a grouting pump 770.

[0083] A vacuum pump 710 is connected to the first vibration isolation bladder 741, the second vibration isolation bladder 742, and the third vibration isolation bladder 743 via a flexible gas conduit. It is used to extract gas from these bladders, allowing the hydraulic cementitious material to be smoothly injected into them. A main vacuum valve 720 controls the gas extraction from all vibration isolation bladders and provides emergency braking in case of danger. The first vacuum valve 731, the second vacuum valve 732, and the third vacuum valve 733 respectively control the vacuum pressure within the first vibration isolation bladder 741, the second vibration isolation bladder 742, and the third vibration isolation bladder 743, and can be quickly inserted and removed when needed. The grouting pump 770 is connected to the first vibration isolation bladder 741, the second vibration isolation bladder 742, and the third vibration isolation bladder 743 via a flexible grouting pipe. It is used to inject hydraulic cementitious material into the first vibration isolation bladder 741, the second vibration isolation bladder 742, and the third vibration isolation bladder 743. The grouting master valve 760 is used to control the pumping of hydraulic cementitious material into all vibration isolation bladders and to stop the pumping in case of danger. The first grouting valve 751, the second grouting valve 752, and the third grouting valve 753 control the injection speed of hydraulic cementitious material into the first vibration isolation bladder 741, the second vibration isolation bladder 742, and the third vibration isolation bladder 743, respectively, to form rigid material blocks of different specifications.

[0084] Through the embodiments of the present invention, the injection speed of the hydraulic cementitious material inside the vibration isolation bladder can be controlled in real time, and rigid material blocks of different specifications can be formed as needed, thereby enabling more precise elastic wave vibration isolation treatment.

[0085] According to an embodiment of the present invention, the bladder vibration isolation system further includes: a first wave characteristic sensor, which is closer to the vibration source than the plastic wave bladder, and is configured to acquire a first wave characteristic signal of a first elastic wave; a second wave characteristic sensor, which is farther from the vibration source than the vibration isolation bladder, and is configured to acquire a second wave characteristic signal of the elastic wave after processing by the vibration isolation module; and a controller, configured to receive the first wave characteristic signal and the second wave characteristic signal, and generate a far-infrared control signal based on the wave characteristic parameters of the first wave characteristic signal and / or the second wave characteristic signal.

[0086] The controller can adjust the vibration isolation system based on a first wave characteristic signal. For example, a sensor can acquire the target frequency of the elastic wave and generate a far-infrared control signal that causes the magnetic pendulum to swing based on that target frequency. The wave field of the elastic wave is reshaped by the resonance between the magnetic pendulum and the elastic wave at the same frequency. The controller can also adjust the output feedback of the vibration isolation system based on a second wave characteristic signal. For example, a sensor can acquire the frequency band energy information of the elastic wave and adjust the swing of the magnetic pendulum based on this information, allowing the pendulum to dissipate more frequency band energy. The controller can also precisely adjust the relevant parameters of the vibration isolation system based on a comprehensive analysis of the first and second wave characteristic signals.

[0087] In embodiments of the present invention, the wave characteristic parameters include, but are not limited to: displacement, velocity, acceleration, dominant frequency, amplitude, and frequency band energy. Sensors include, but are not limited to: piezoelectric accelerometers, inertial velocity sensors, strain gauges and force sensors, fiber Bragg grating sensors, and laser Doppler vibration meters.

[0088] Those skilled in the art will understand that the features described in the various embodiments of the present invention can be combined and / or combined in various ways, even if such combinations or combinations are not explicitly described in the present invention. In particular, the features described in the various embodiments of the present invention can be combined and / or combined in various ways without departing from the spirit and teachings of the present invention. All such combinations and / or combinations fall within the scope of the present invention.

[0089] The embodiments of the present invention have been described above. However, these embodiments are merely illustrative and not intended to limit the scope of the invention. Although various embodiments have been described above, this does not mean that the measures in the various embodiments cannot be used advantageously in combination. Various substitutions and modifications can be made by those skilled in the art without departing from the scope of the invention, and all such substitutions and modifications should fall within the scope of the invention.

Claims

1. A capsule-type vibration isolation system capable of wavefield reshaping, characterized in that, include: An interference module, comprising at least one interference capsule configured to buffer elastic waves generated by a vibration source to obtain a first elastic wave. A wave-shaping module, comprising at least one wave-shaping capsule, the wave-shaping capsule being farther away from the vibration source relative to the interference capsule, the wave-shaping capsule being configured to reshape the wave field of the first elastic wave to convert the long-wave form of the first elastic wave into a short-wave form to obtain a second elastic wave. A vibration isolation module, the vibration isolation module including at least one vibration isolation bladder, the vibration isolation bladder being farther away from the vibration source relative to the plastic wave bladder, the vibration isolation bladder being configured to perform vibration isolation treatment on the second elastic wave; The interior of the plastic wave capsule includes: At least one magnet is configured to be fixedly disposed on the inner surface of the plastic wave capsule; and A magnetic pendulum is configured to be fixedly mounted on a suspension via a non-metallic chain, the suspension being fixed inside the plastic wave capsule; In this embodiment, at least one of the magnets is configured to generate a magnetic field under the control of a far-infrared control signal; The magnetic pendulum is configured to swing based on a target frequency under the action of the magnetic field, and is configured to modulate the target frequency band of the first elastic wave based on the swing frequency, change the resonance peak of the first elastic wave based on the swing damping, and change the phase of the first elastic wave based on the swing angle, so as to reshape the wave field of the first elastic wave. The vibration isolation bladder is filled with a hydraulic cementitious material, which is configured to impede the transmission of the second elastic wave, thereby isolating the second elastic wave. The interference capsule is filled with gas and polymer particles. The polymer particles are configured to dissipate the impact energy of the elastic waves generated by the vibration source based on friction and collision, so as to buffer the elastic waves generated by the vibration source.

2. The system according to claim 1, characterized in that, The plastic wave capsule is filled with inert gas, and the plastic wave capsule and the inert gas form a gas spring. The gas spring is configured to dissipate the energy of the first elastic wave in order to isolate the first elastic wave.

3. The system according to claim 2, characterized in that, The wave shaping module also includes: A gas compressor and a plurality of first pneumatic valves, wherein the gas compressor is connected to the plurality of first pneumatic valves respectively, and the first pneumatic valves are connected to the plastic wave bag; The first pneumatic valve is configured to control the gas pressure inside the plastic wave chamber during the process of the gas compressor inputting inert gas into the plastic wave chamber. The plastic wave chamber and the inert gas with different pressures form gas springs with different stiffnesses. The gas springs with different stiffnesses are configured to perform vibration isolation treatment on the first elastic wave.

4. The system according to claim 1, characterized in that, The vibration isolation module also includes: An air pump and multiple air extraction valves are provided, wherein the air pump is connected to the multiple air extraction valves respectively, and the air extraction valves are connected to the vibration isolation bladder. A grouting pump and multiple grouting valves, wherein the grouting pump is connected to the multiple grouting valves respectively, and the grouting valves are connected to the vibration isolation bladder; The air extraction valve is configured to control the gas pressure inside the vibration isolation bladder during the process of the air extraction pump extracting the gas inside the vibration isolation bladder, so that the grouting pump can inject the hydraulic cementitious material into the vibration isolation bladder. The grouting valve is configured to control the injection speed of the hydraulic cementitious material during the process of the grouting pump injecting the hydraulic cementitious material into the vibration isolation bladder, so as to form rigid material blocks of different specifications. The rigid material blocks of different specifications are configured to perform vibration isolation treatment on the second elastic wave.

5. The system according to claim 1, characterized in that, The interference module also includes: An air compressor and multiple second pneumatic valves, wherein the air compressor is connected to the multiple second pneumatic valves respectively, and the second pneumatic valves are connected to the interference bladder; The second pneumatic valve is configured to control the gas pressure inside the interference bladder during the process of the air compressor inputting gas and polymer particles into the interference bladder, thereby forming polymer particles with different filling ratios. The polymer particles with different filling ratios are configured to buffer the elastic waves generated by the vibration source.

6. The system according to claim 1, characterized in that, The system also includes: A first wave characteristic sensor is located closer to the vibration source than the plastic wave capsule, and the first wave characteristic sensor is configured to collect the first wave characteristic signal of the first elastic wave. The second wave characteristic sensor is located further away from the vibration source than the vibration isolation bladder. The second wave characteristic sensor is configured to collect the second wave characteristic signal of the elastic wave after it has been processed by the vibration isolation module. The controller is configured to receive the first fluctuation characteristic signal and the second fluctuation characteristic signal, and generate the far-infrared control signal based on the fluctuation characteristic parameters of the first fluctuation characteristic signal and / or the second fluctuation characteristic signal.

7. The system according to claim 1, characterized in that, The at least one magnet includes a first magnet, a second magnet, and a third magnet. The magnetic pendulum includes a first oscillator, a second oscillator, and a third oscillator. The plastic wave capsule is a columnar capsule. The first oscillator is connected to the lower end of the first magnet via a non-metallic chain. The second oscillator is connected to the lower end of the first oscillator via a non-metallic chain. The third oscillator is connected to the lower end of the second oscillator via a non-metallic chain. The first magnet is fixedly disposed at the lower end of the suspension. The second magnet is fixedly disposed on the lower inner surface of the columnar capsule. The third magnet is fixedly disposed on the inner side surface of the columnar capsule. The first magnet and the second magnet are symmetrically arranged vertically along the axis of the columnar capsule. The magnetic force exerted by the first magnet and the second magnet on the magnetic pendulum is greater than the magnetic force exerted by the third magnet on the magnetic pendulum.

Citation Information

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