A double-deformation-mode vibration-isolating honeycomb cylindrical shell

By designing a double-deformation mode vibration isolation honeycomb cylindrical shell, using a four-pointed star honeycomb unit cell and an oblique ligament structure, the instability problem of the honeycomb configuration when subjected to stress and deformation is solved, the bearing performance and vibration isolation effect are improved, and customizable vibration isolation performance is achieved.

CN119467576BActive Publication Date: 2025-09-23NORTHWESTERN POLYTECHNICAL UNIV
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Patent Information

Application Number
CN202411560640.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-09-23
Estimated Expiration
2044-11-04

AI Technical Summary

Technical Problem

The existing honeycomb structure is prone to instability when deformed under stress, which affects the bearing performance and limits its application in practical engineering.

Method used

A dual-deformation mode vibration isolation honeycomb cylindrical shell structure is adopted, including an inner skin, an outer skin and a honeycomb sandwich. The honeycomb sandwich is composed of a stretched four-pointed star honeycomb unit cell and eight oblique ligaments. By designing geometric parameters and phononic crystal band theory, a two-level deformation mode is realized, providing reverse tensile traction load, and improving deformation stability and vibration isolation performance.

Benefits of technology

The load-bearing performance and vibration isolation effect of the honeycomb cylindrical shell are improved, customizable circumferential and radial vibration isolation performance is achieved, and the overall load-bearing capacity and vibration isolation effect of the structure are enhanced.

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Abstract

The present invention discloses a double-deformation mode vibration isolation honeycomb cylindrical shell, comprising: an inner skin and an outer skin forming a hollow cylindrical shell, a honeycomb interlayer arranged between the inner skin and the outer skin, the honeycomb interlayer comprising a plurality of honeycomb cells, the honeycomb cells being stretched four-pointed star-shaped honeycomb cells, a pair of short oblique ligaments being symmetrically arranged on the concave corners of the two long sides of the honeycomb cells, a pair of long oblique ligaments being symmetrically arranged on the concave corners of the two short sides of the honeycomb cells, and the honeycomb cells being bent according to the circumferential curvature of the hollow cylindrical shell. The present invention achieves two-stage deformation through the stretched four-pointed star structure and eight oblique ligaments, provides a reverse tensile traction load, hinders the concave trend of the main supporting honeycomb, bears part of the vertical load, and improves the overall bearing performance. The stretched four-pointed star structure and eight oblique ligaments enable the honeycomb configuration to have customizable circumferential and radial vibration isolation performance.
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Description

Technical Field

[0001] The invention relates to the technical field of honeycomb materials, in particular to a double-deformation mode vibration isolation honeycomb cylindrical shell. Background Art

[0002] Cylindrical shell structures are the most widely used structural units in engineering, and vibration isolation designs targeting vibration transmission paths based on them hold great potential. Traditional lattice structures have been widely used due to their excellent static mechanical properties and lightweight characteristics. However, due to the fact that the lightweight, thin-walled components of lattice structures are easily excited by external excitation, the dynamic mechanical properties of traditional lattice structures are often poor. The introduction of phononic crystal band theory provides a new approach to vibration and noise reduction design for periodic lattice structures. Based on traditional lattice structures, a series of honeycomb configurations with excellent vibration characteristics have been proposed.

[0003] Negative Poisson's ratio and negative stiffness effects have been widely demonstrated to have excellent potential for vibration isolation applications. Applying honeycomb configurations of negative Poisson's ratio materials to cylindrical shell structures can significantly improve the performance of cylindrical shell structures. However, negative Poisson's ratio and negative stiffness honeycomb configurations often contain concave, chiral, and curved beam structures. These flexible components significantly hinder the overall static stiffness of the honeycomb and are prone to instability when the structure is subjected to stress and deformation, significantly affecting the honeycomb's load-bearing performance. This, in turn, limits practical engineering scenarios, especially its application as a component of a honeycomb cylindrical shell unit. Summary of the Invention

[0004] An embodiment of the present invention provides a dual-deformation mode vibration isolation honeycomb cylindrical shell to solve the problem in the prior art that the honeycomb configuration structure is very prone to instability when subjected to force deformation, which greatly affects the honeycomb bearing performance and thus leads to limitations in actual engineering scenarios.

[0005] On the one hand, an embodiment of the present invention provides a dual-deformation mode vibration isolation honeycomb cylindrical shell, comprising:

[0006] An inner skin, an outer skin and a honeycomb interlayer, the inner skin and the outer skin form a hollow cylindrical shell, the inner skin is arranged on the inner side of the hollow cylindrical shell, the outer skin is arranged on the outer side of the hollow cylindrical shell, the honeycomb interlayer is arranged between the inner skin and the outer skin, the honeycomb interlayer includes a plurality of honeycomb cells, the honeycomb cells are stretched four-pointed star-shaped honeycomb cells, a pair of short oblique ligaments are symmetrically arranged on the concave corners of the two long sides of the honeycomb cells, a pair of long oblique ligaments are symmetrically arranged on the concave corners of the two short sides of the honeycomb cells, and the honeycomb cells are bent according to the circumferential curvature of the hollow cylindrical shell.

[0007] In a possible implementation, the length of the honeycomb unit cell is L, the height of the honeycomb unit cell is H, the short oblique ligaments of the honeycomb unit cell are symmetrically arranged on the concave corners of the two long sides at a distance g from the vertical center line of the honeycomb unit cell, and the long oblique ligaments of the honeycomb unit cell are symmetrically arranged on the concave corners of the two short sides at a distance h from the horizontal center line of the honeycomb unit cell.

[0008] In a possible implementation, the end of the short oblique ligament is at a distance e from the vertical midline of the honeycomb unit cell, and the end of the long oblique ligament is at a distance f from the horizontal midline of the honeycomb unit cell.

[0009] In a possible implementation, the distance from the top of the indented angles of the two long sides to the horizontal centerline of the honeycomb unit cell is a, and the distance from the top of the indented angles of the two short sides to the vertical centerline of the honeycomb unit cell is d.

[0010] In a possible implementation, the two oblique sides of the concave angles of the two long sides are deformed and bent at a position 1 / 6L away from the vertical center line of the honeycomb unit cell. After deformation and bending, the two oblique sides are horizontally parallel to the horizontal center line of the honeycomb unit cell. The horizontal length of the two oblique sides after deformation and bending is b. The vertical distance between the two oblique sides and the end of the short oblique ligament after horizontalization is c. L = 4H = 6b, and e <g,f<h,d<2b,a<1 / 2H-c。

[0011] The dual-deformation mode vibration isolation honeycomb cylindrical shell of the present invention has the following advantages:

[0012] (1) The two-level deformation is achieved through the stretched four-pointed star structure and eight oblique ligaments, which provides a reverse tensile traction load, hinders the concave trend of the main supporting honeycomb, bears part of the vertical load, and improves the overall bearing performance.

[0013] (2) The stretched four-pointed star structure and eight oblique ligaments give the honeycomb configuration customizable circumferential and radial vibration isolation performance. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0015] Figure 1 A schematic diagram of a honeycomb unit cell structure of a dual-deformation mode vibration isolation honeycomb cylindrical shell provided by an embodiment of the present invention;

[0016] Figure 2A schematic diagram of a periodic honeycomb cylindrical shell of a dual deformation mode vibration isolation honeycomb cylindrical shell provided by an embodiment of the present invention;

[0017] Figure 3 A schematic diagram of honeycomb unit cell curvature modeling of a dual-deformation mode vibration isolation honeycomb cylindrical shell provided in an embodiment of the present invention;

[0018] Figure 4 A diagram of a quasi-static compression model of a honeycomb unit cell in a double-deformation mode vibration isolation honeycomb cylindrical shell provided by an embodiment of the present invention;

[0019] Figure 5 A static compression force-displacement curve diagram of a honeycomb unit cell of a dual-deformation mode vibration isolation honeycomb cylindrical shell provided by an embodiment of the present invention;

[0020] Figure 6 A schematic diagram of the corresponding node deformation modes of the honeycomb structure of a dual-deformation-mode vibration-isolating honeycomb cylindrical shell provided by an embodiment of the present invention;

[0021] Figure 7 A schematic diagram of a three-dimensional model of a dual-deformation mode vibration isolation honeycomb cylindrical shell provided in an embodiment of the present invention;

[0022] Figure 8 A curve diagram of the radial vibration transmissibility of a cylindrical shell of a double-deformation mode vibration isolation honeycomb cylindrical shell provided by an embodiment of the present invention;

[0023] Figure 9 A curve diagram of the circumferential vibration transmissibility of a cylindrical shell of a double-deformation mode vibration isolation honeycomb cylindrical shell provided in an embodiment of the present invention. DETAILED DESCRIPTION

[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0025] Figure 1 A schematic structural diagram of a dual-deformation mode vibration isolation honeycomb cylindrical shell provided in an embodiment of the present invention; an embodiment of the present invention provides a dual-deformation mode vibration isolation honeycomb cylindrical shell, comprising:

[0026] An inner skin, an outer skin and a honeycomb interlayer, the inner skin and the outer skin form a hollow cylindrical shell, the inner skin is arranged on the inner side of the hollow cylindrical shell, the outer skin is arranged on the outer side of the hollow cylindrical shell, the honeycomb interlayer is arranged between the inner skin and the outer skin, the honeycomb interlayer includes a plurality of honeycomb cells, the honeycomb cells are stretched four-pointed star-shaped honeycomb cells, a pair of short oblique ligaments are symmetrically arranged on the concave corners of the two long sides of the honeycomb cells, a pair of long oblique ligaments are symmetrically arranged on the concave corners of the two short sides of the honeycomb cells, the honeycomb cells are bent according to the circumferential curvature of the hollow cylindrical shell, the honeycomb cells are long L, the honeycomb cells are high H, the short oblique ligaments of the honeycomb cells are symmetrically arranged on the concave corners of the two long sides at a distance g from the vertical midline of the honeycomb cells, the honeycomb cells The long oblique ligaments of the cell are symmetrically arranged on the concave angles of the two short sides at a distance h from the horizontal center line of the honeycomb cell, the end of the short oblique ligament is at a distance e from the vertical center line of the honeycomb cell, the end of the long oblique ligament is at a distance f from the horizontal center line of the honeycomb cell, the distance from the top of the concave angles of the two long sides to the horizontal center line of the honeycomb cell is a, the distance from the top of the concave angles of the two short sides to the vertical center line of the honeycomb cell is d, the two oblique sides of the concave angles of the two long sides are deformed and bent at a position 1 / 6L away from the vertical center line of the honeycomb cell, the two oblique sides are horizontally parallel to the horizontal center line of the honeycomb cell after deformation and bending, the horizontal part length of the two oblique sides after deformation and bending is b, the vertical distance from the end of the short oblique ligament after the two oblique sides are horizontal is c, said L = 4H = 6b, said e <g,f<h,d<2b,a<1 / 2H-c。

[0027] For example, in order to overcome the problem of insufficient static bearing capacity of the current vibration isolation honeycomb configuration, the present invention flattens the upper and lower contact areas of the traditional four-pointed star honeycomb to improve the internal deformation contact properties, and adopts two oblique ligaments instead of the conventional single straight ligament connection to improve the deformation stability. According to the phononic crystal band theory, without changing the designed honeycomb topology, the band gap of the target vibration isolation frequency band is obtained through geometric parameter design, so that the vibration isolation frequency band of the invented vibration isolation honeycomb cylindrical shell can be adjusted. The default initial parameters of the honeycomb unit cell are shown in the following table and Figure 1 As shown:

[0028] Table 1. Initial geometric parameters of honeycomb unit cells in dual deformation mode

[0029] parameter L a c d e f g h <![CDATA[t h ]]> <![CDATA[t c ]]> Value (mm) 120 9 2 27 3.5 5 15 8 1.5 1

[0030] The honeycomb unit cell is bent according to the circumferential curvature of the hollow cylindrical shell. First, a honeycomb unit cell with the same curvature as the cylindrical shell is obtained by modeling, as follows:

[0031] like Figure 2 、 3 As shown in the figure, the geometry of a periodic honeycomb cylindrical shell with n layers of radial unit cells is given, where the longitudinal dimension of the honeycomb corresponds to the radial dimension of the curvature honeycomb, that is, the radial dimension of the structure after bending is consistent with the longitudinal dimension before bending. From this, the radial dimension expression of the periodic honeycomb cylindrical shell can be derived:

[0032] R ti -R bi =H(i=1,2,...,n),R outer -R innner =nH

[0033] Among them, H is the longitudinal dimension of the honeycomb before bending deformation, i is the number of layers corresponding to the unit cell, R ti and R bi They correspond to the inner and outer diameters of the single cell after the bending deformation of the i-th layer honeycomb structure, R inner and R outer The inner diameter and outer diameter of the periodic honeycomb cylindrical shell are respectively obtained. Based on this formula, combined with the longitudinal dimension relationship of each part of the initial structure (see Table 1), the radial dimension of each part of the curvature structure can be obtained.

[0034] Different from radial dimensions, the circumferential dimensions of the curvature honeycomb are expressed in circumferential angles. The nodes of the initial structure are located on the same vertical line, and after bending deformation, they are located on the same circumferential angle ray. The bottom dimension of the first layer of honeycomb is used as the deformation reference, i.e. L b1 =L, the conversion formula between horizontal dimension and circular angle is as follows:

[0035] θ s =L / R inner

[0036] Among them, θ s is the circumferential angle corresponding to the outer contour of a single honeycomb, and L is the transverse dimension of the honeycomb before bending deformation. Based on this formula, combined with the transverse dimension relationship of each part of the initial structure, the circumferential dimension of each part of the curvature structure can be obtained.

[0037] In summary, the spatial coordinates of each node inside the periodic honeycomb cylindrical shell are represented by the corresponding circular angle and radial size of the curvature unit cell.

[0038] The base material parameters of the honeycomb unit cell are as follows:

[0039] Density: 2700kg / m3, Young's modulus: 70GPa, Poisson's ratio 0.33.

[0040] In one possible embodiment, the quasi-static compressive mechanical response of the honeycomb configuration in the double deformation mode is simulated using the ABAQUS / EXPLICT display dynamics module. The compression model is shown as follows: Figure 4As shown, the composition includes a main periodic honeycomb structure and upper and lower plates. Considering the honeycomb size effect, the main periodic honeycomb structure has 5 layers of unit cells in the horizontal direction and 10 layers of unit cells in the vertical direction, with an out-of-plane size of 6 mm. The simulation uses aluminum as the matrix material. Since the strain sensitivity of aluminum is very low, the ideal plastic model is selected for the material aluminum here, which obeys the Mises yield criterion. Its physical properties are: density ρ = 2700 kg / m3, Young's modulus E = 68 GPa, Poisson's ratio υ = 0.3, and yield stress σy = 255 MPa. Define global general contact, set the tangential contact friction coefficient to 0.2, and set the normal contact behavior to hard contact. In the model initialization stage, the upper and lower plates are defined as rigid bodies, as shown in the following example. Figure 4 As shown in the figure, its degrees of freedom are bound to reference points RP-1 and RP-2, respectively. All degrees of freedom of reference point RP-2 are constrained, while reference point RP-1 only has the y-direction translational degree of freedom. In addition, to ensure that the MDM honeycomb only undergoes in-plane deformation, all out-of-plane degrees of freedom of the structure are constrained.

[0041] like Figure 5 As shown, it can be seen intuitively that the designed honeycomb configuration has two obvious deformation stages. There is a linear elastic stage at the beginning of deformation stages I and II, and the corresponding structural stiffnesses are 144.6kN / m and 1215.6kN / m respectively. In addition, the maximum support reaction forces in deformation stages I and II are 0.52kN and 6.78kN respectively. Therefore, the bearing capacity of honeycomb deformation stage II is significantly improved compared with stage I. In order to reveal the transformation mechanism of the proposed honeycomb mechanical response, Figure 6 The honeycomb deformation mode corresponding to the deformation stage is further given. It can be seen that in deformation stage I, the upper and lower main support honeycombs are not in contact. At this time, the upper and lower connecting diagonal ligaments of the honeycomb play the main supporting role; in deformation stage II, the upper and lower main support honeycombs are in contact. At this time, the main support honeycomb replaces the connecting diagonal ligaments to play the supporting role, which is intuitively reflected in the surge of deformation support reaction force. In addition, under the action of the deformation coordination mechanism, the concave corners of the main support honeycomb will shrink inward under the action of vertical compression load, while the connecting diagonal ligaments on both sides provide reverse tensile traction loads, hindering the concave trend of the main support honeycomb, and to a certain extent bearing part of the vertical load, which also has a positive effect on improving the bearing capacity of the structure. In summary, the proposed honeycomb has greatly improved its overall bearing performance thanks to the change in deformation mode.

[0042] In one possible embodiment, Figure 7 As shown in the figure, a three-dimensional model of a honeycomb cylindrical shell with double deformation mode is given. The model has 8 honeycomb cells arranged in the circumferential direction. The specific geometry is shown in Table 2.

[0043] Table 2 Geometric parameters of shell samples

[0044]

[0045] Among them, H0 is the axial dimension of the shell sample, R inner and R outer are the inner and outer diameters of the shell sample, t inner and t outer are the thickness of the inner and outer skin of the shell sample, t h and t c are the thickness of the honeycomb wall supporting the sandwich body of the shell sample and the thickness of the connecting oblique ligament wall, t p and l p The height and bottom length of the square boss of the shell sample are monitored respectively. The F1, F2, and F3 are the excitation positions of the force.

[0046] The experimental shell sample was prepared by stereolithography technology. The base material of the shell sample is photosensitive resin, and its material properties are as follows: density ρ = 1150 kg / m3, Young's modulus E = 2.60 GPa, Poisson's ratio υ = 0.42. Using the exciter as the excitation source, a sweep frequency experiment was carried out to obtain the vibration transmissibility of the prepared shell sample under different frequency excitations. In accordance with the experimental equipment, a numerical simulation model was established to calculate the vibration transmission response of the shell. The experimental and simulation results of the radial and circumferential vibration transmissibility of the shell are shown in Figure 8 、 9 It can be seen intuitively that the simulation results are highly consistent with the experimental results, both showing that the shell has obvious radial and circumferential vibration isolation bands, verifying the excellent vibration isolation performance of the invented shell. In addition, the circumferential vibration isolation band has a high degree of overlap with the circumferential band gap calculated by energy band theory, indicating the effectiveness of the vibration-damping honeycomb configuration design. The overall vibration isolation frequency band of the shell can be pre-designed theoretically to ensure that the final shell has the vibration isolation capability required by the corresponding operating frequency band.

[0047] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they have learned the basic creative concept. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the present invention.

[0048] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

Claims

1. A double deformation mode vibration isolation honeycomb cylindrical shell, characterized in that: include: An inner skin, an outer skin and a honeycomb interlayer, wherein the inner skin and the outer skin form a hollow cylindrical shell, the inner skin is arranged on the inner side of the hollow cylindrical shell, the outer skin is arranged on the outer side of the hollow cylindrical shell, the honeycomb interlayer is arranged between the inner skin and the outer skin, and the honeycomb interlayer includes a plurality of honeycomb cells, each of which is a stretched four-pointed star-shaped honeycomb cell, a pair of short oblique ligaments are symmetrically arranged on the concave corners of the two long sides of the honeycomb cell, a pair of long oblique ligaments are symmetrically arranged on the concave corners of the two short sides of the honeycomb cell, and the honeycomb cell is bent according to the circumferential curvature of the hollow cylindrical shell; The honeycomb unit cell has a length of L and a height of H. The short oblique ligaments of the honeycomb unit cell are symmetrically arranged on the concave corners of the two long sides at a distance g from the vertical center line of the honeycomb unit cell. The long oblique ligaments of the honeycomb unit cell are symmetrically arranged on the concave corners of the two short sides at a distance h from the horizontal center line of the honeycomb unit cell. The distance from the top of the indented angles of the two long sides to the horizontal midline of the honeycomb unit cell is a, and the distance from the top of the indented angles of the two short sides to the vertical midline of the honeycomb unit cell is d; The two oblique sides of the concave angles of the two long sides are deformed and bent at a position 1 / 6L away from the vertical center line of the honeycomb unit cell. After deformation and bending, the two oblique sides are horizontally parallel to the horizontal center line of the honeycomb unit cell. The horizontal length of the two oblique sides after deformation and bending is b. The vertical distance between the two oblique sides and the end of the short oblique ligament after being horizontal is c, and L=4H=6b, d<2b, a<1 / 2H-c.

2. The dual-deformation mode vibration isolation honeycomb cylindrical shell according to claim 1, characterized in that: The end of the short oblique ligament is at a distance e from the vertical midline of the honeycomb cell, and the end of the long oblique ligament is at a distance f from the horizontal midline of the honeycomb cell. <g,f<h。

Citation Information

Patent Citations

  • Three-dimensional zero-poisson-ratio honeycomb structure with equivalent elastic properties in three main directions

    CN110851951A

  • Double-layer spinning origami honeycomb interlayer energy-absorbing material and preparation method thereof

    CN112743933A