ZERO POISSON'S RATIO STRUCTURE AND A PLANAR STRUCTURE OF ZERO POISSON'S RATIO IN WHICH THE STRUCTURE IS MATRIXED IN A PLANE
20220325768 · 2022-10-13
Assignee
Inventors
Cpc classification
F16F1/3615
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/373
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2234/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2228/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a zero Poisson's ratio structure including a central pillar; at least two branched connectors extending radially from a lower end of the central pillar, wherein each of the branched connectors includes: a first segmental portion extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other; and each leg extending perpendicularly downwardly from a distal point of each of the second segmental portions, wherein due to a force pressing the central pillar, each of an angle between the central pillar and the first segmental portion, an angle between the first segmental portion and the second segmental portion, and an angle between the second segmental portion and the leg is variable.
Claims
1. A zero Poisson's ratio structure comprising: a central pillar; at least two branched connectors extending radially from a lower end of the central pillar, wherein each of the branched connectors includes: a first segmental portion extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other; and each leg extending perpendicularly downwardly from a distal point of each of the second segmental portions, wherein due to a force pressing the central pillar, each of an angle between the central pillar and the first segmental portion, an angle between the first segmental portion and the second segmental portion, and an angle between the second segmental portion and the leg is variable.
2. The zero Poisson's ratio structure of claim 1, wherein the structure includes an elastic structure.
3. The zero Poisson's ratio structure of claim 1, wherein the structure has a modulus of elasticity in a range of Kilo to Mega Pascal.
4. The zero Poisson's ratio structure of claim 1, wherein the branched connectors are spaced from each other by an equal angular spacing.
5. The zero Poisson's ratio structure of claim 1, wherein a number of the branched connectors is four, wherein the branched connectors are spaced from each other by an equal angular spacing of 90 degrees.
6. The zero Poisson's ratio structure of claim 1, wherein a value determined based on a following Equation 1 when a length of the leg is h, a length of the second segmental portion is 1, and an angle between the second segmental portion and an imaginary horizontal line perpendicular to the leg is θ is defined as υ.sub.p, wherein a value determined based on the following Equation 1 when the length of the leg is h, a length of the first segmental portion is 1, and an angle between the first segmental portion and the imaginary horizontal line perpendicular to the leg is θ is defined as υ.sub.n,
7. The zero Poisson's ratio structure of claim 1, wherein lengths of the first segmental portion and the second segmental portion are equal to each other, wherein an angle between an imaginary horizontal line perpendicular to the leg and the first segmental portion is equal to an angle between the imaginary horizontal line perpendicular to the leg and the second segmental portion.
8. A planar array of structures of a zero Poisson's ratio arranged in a matrix form and in a plane, wherein the array comprises: central pillars arranged in a matrix form and spaced from each other by a regular spacing; four branched connectors extending from a lower end of each central pillar in a radial direction and toward a central pillar adjacent thereto, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each of the branched connectors includes: a first segmental portion extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other; and legs extending perpendicularly downwardly from distal points of the second segmental portions, respectively, wherein the legs include non-sharing legs positioned at each of outer edges of the matrix form, and each sharing leg positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars, wherein due to a force pressing the central pillar, each of an angle between the central pillar and the first segmental portion, an angle between the first segmental portion and the second segmental portion, and an angle between the second segmental portion and the leg is variable.
9. A cylindrical array in which structures of a zero Poisson's ratio are arranged in a three dimensional manner, wherein the array comprises: central pillars arranged in circumferential and length directions and on an outer face of an imaginary cylinder, wherein a top face of each central pillar faces inwardly of the cylinder; and four branched connectors extending radially and outwardly from each of the central pillars and toward a central pillar adjacent thereto, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each branched connector includes: a first segmental portion extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other, wherein each of an angle between the central pillar and the first segmental portion, and an angle between the first segmental portion and the second segmental portion is variable due to a force applied to the array.
10. The array of claim 9, wherein the array further comprises legs extending outwardly from distal points of the second segmental portions, respectively, wherein the legs includes: non-sharing legs positioned on a top and a bottom of the cylinder; and each sharing leg positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars.
11. A cylindrical array in which structures of a zero Poisson's ratio are arranged in a three dimensional manner, wherein the array comprises: central pillars arranged in circumferential and length directions and on an outer face of an imaginary cylinder, wherein a top face of each central pillar faces outwardly of the cylinder; and four branched connectors extending radially and inwardly from each of the central pillars and toward a central pillar adjacent thereto, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each branched connector includes: a first segmental portion extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other, wherein each of an angle between the central pillar and the first segmental portion, and an angle between the first segmental portion and the second segmental portion is variable due to a force applied to the array.
12. The array of claim 11, wherein the array further comprises legs extending inwardly from distal points of the second segmental portions, respectively, wherein the legs includes: non-sharing legs positioned on a top and a bottom of the cylinder; and each sharing leg positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTIONS
[0058] For simplicity and clarity of illustration, elements in the drawings are not necessarily drawn to scale. The same reference numbers in different drawings represent the same or similar elements, and as such perform similar functionality. Further, descriptions and details of well-known steps and elements are omitted for simplicity of the description. Furthermore, in the following detailed description of the present disclosure, numerous specific details are set forth in order to provide a thorough understanding of the present disclosure. However, it will be understood that the present disclosure may be practiced without these specific details. In other instances, well-known methods, procedures, components, and circuits have not been described in detail so as not to unnecessarily obscure aspects of the present disclosure.
[0059] Examples of various embodiments are illustrated and described further below. It will be understood that the description herein is not intended to limit the claims to the specific embodiments described. On the contrary, it is intended to cover alternatives, modifications, and equivalents as may be included within the spirit and scope of the present disclosure as defined by the appended claims.
[0060] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the present disclosure. As used herein, the singular forms “a” and “an” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises”, “comprising”, “includes”, and “including” when used in this specification, specify the presence of the stated features, integers, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, operations, elements, components, and/or portions thereof. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. Expression such as “at least one of” when preceding a list of elements may modify the entirety of list of elements and may not modify the individual elements of the list. When referring to “C to D”, this means C inclusive to D inclusive unless otherwise specified.
[0061] It will be understood that, although the terms “first”, “second”, “third”, and so on may be used herein to describe various elements, components, regions, layers and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms are used to distinguish one element, component, region, layer or section from another element, component, region, layer or section. Thus, a first element, component, region, layer or section described below could be termed a second element, component, region, layer or section, without departing from the spirit and scope of the present disclosure.
[0062] In addition, it will also be understood that when a first element or layer is referred to as being present “on” or “beneath” a second element or layer, the first element may be disposed directly on or beneath the second element or may be disposed indirectly on or beneath the second element with a third element or layer being disposed between the first and second elements or layers.
[0063] It will be understood that when an element or layer is referred to as being “connected to”, or “coupled to” another element or layer, it may be directly on, connected to, or coupled to the other element or layer, or one or more intervening elements or layers may be present. In addition, it will also be understood that when an element or layer is referred to as being “between” two elements or layers, it may be the only element or layer between the two elements or layers, or one or more intervening elements or layers may also be present.
[0064] Further, as used herein, when a layer, film, region, plate, or the like is disposed “on” or “on a top” of another layer, film, region, plate, or the like, the former may directly contact the latter or still another layer, film, region, plate, or the like may be disposed between the former and the latter. As used herein, when a layer, film, region, plate, or the like is directly disposed “on” or “on a top” of another layer, film, region, plate, or the like, the former directly contacts the latter and still another layer, film, region, plate, or the like is not disposed between the former and the latter. Further, as used herein, when a layer, film, region, plate, or the like is disposed “below” or “under” another layer, film, region, plate, or the like, the former may directly contact the latter or still another layer, film, region, plate, or the like may be disposed between the former and the latter. As used herein, when a layer, film, region, plate, or the like is directly disposed “below” or “under” another layer, film, region, plate, or the like, the former directly contacts the latter and still another layer, film, region, plate, or the like is not disposed between the former and the latter.
[0065] Unless otherwise defined, all terms including technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this inventive concept belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
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[0067] The zero Poisson's ratio structure 100 according to the present disclosure may be constructed such that even though a central pillar 110 thereof is displaced downwardly due to a force pressing down the central pillar 110, a width w of the structure in a direction perpendicular to a direction of the pressing force of the structure is substantially constant.
[0068] The zero Poisson's ratio structure according to the present disclosure includes a central pillar 110; two or more branched connectors 120 extending radially from a lower end of the central pillar, each of the branched connectors having a first segmental portion 121 extending inclinedly upwardly from the central pillar and a second segmental portion 122 extending inclinedly downwardly from a distal point of the first segmental portion; and each leg 130 extending perpendicularly downwardly from a distal point of each of the second segmental portions.
[0069] When the structure according to the present disclosure is viewed in a plan view, that is, when the central pillar is viewed in a direction from top to bottom, the branched connectors extend radially from the bottom of the central pillar.
[0070] Each of the branched connectors 120 includes a first segmental portion 121 and a second segmental portion 122. The first segmental portion 121 is a portion connected to the lower end of the central pillar, and the second segmental portion 122 is a portion connected to the leg. When the structure is viewed in a front view, the first segmental portion 121 extends inclinedly upwardly from the lower end of the central pillar to form an acute angle with respect to the central pillar. The second segmental portion 121 extends inclinedly downward from the first segmental portion 121 and is connected to the leg. As another non-limiting example,
[0071] A joint between the central pillar and the first segmental portion, a joint between the first segmental portion and the second segmental portion, and a joint between the second segmental portion and the leg perform articulation motion.
[0072] As illustrated in
[0073] Preferably, in order to construct the structure such that change in a width direction dimension of the structure is substantially zero relative to the pressing force to achieve a zero Poisson's ratio, a following condition is met: a value determined based on a following Equation 1 when a length of the leg is h, a length l.sub.2 of the second segmental portion is l, and an angle θ.sub.2 between the second segmental portion and an imaginary horizontal line perpendicular to the leg is θ is defined as υ.sub.p, wherein a value determined based on the following Equation 1 when the length of the leg is h, a length l.sub.1 of the first segmental portion is 1, and an angle θ.sub.1 between the first segmental portion and the imaginary horizontal line perpendicular to the leg is θ is defined as υ.sub.n, wherein absolute values of υ.sub.p and υ.sub.n are equal to each other:
[0074] When the absolute values of υ.sub.p and υ.sub.n are the same as each other, a displacement of the structure in a horizontal direction corresponds to zero.
[0075] In addition, the lengths of the first segmental portion and the second segmental portion are the same as each other, and an angle between the imaginary horizontal line perpendicular to the leg and the first segmental portion, and an angle between the imaginary horizontal line perpendicular to the leg and the second segmental portion are equal to each other. In this case, the displacement of the structure in the horizontal direction becomes zero.
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[0077] A planar array 500 includes central pillars 510 arranged in a matrix form and spaced from each other by a regular spacing; four branched connectors extending from a lower end of each central pillar in a radial direction, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each of the branched connectors includes a first segmental portion 521 extending inclinedly upwardly from the central pillar and a second segmental portion 522 extending inclinedly downwardly from a distal point of the first segmental portion; and legs 530 extending perpendicularly downwardly from distal points of the second segmental portions, respectively, wherein the legs include non-sharing legs 530 positioned at each of outer edges of the matrix form, and a sharing leg 540 positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars.
[0078] The arrangement of the central pillars in the matrix form means that the central pillars are arranged in a matrix form and are respectively disposed at intersection points in a grid arrangement in a plan view of the planar array, that is, viewed in a direction from top to bottom.
[0079] The four branched connectors radially extending from at the lower end of the single central pillar may be spaced from each other by an equal angular spacing of an angle of 90 degrees in the plan view.
[0080] In one example, the branched connectors extending from the central pillar of the coordinates (2,2) may extend toward the central pillars of coordinates (1,2), (2,1), (3,2), and (2,3) adjacent thereto in a row or column direction of the matrix form.
[0081] In another example, the branched connectors extending from the central pillar of the coordinates (2,2) may extend toward the central pillars of coordinates (1,1), (3,1), (3,3), and (1,3) adjacent thereto in a diagonal direction of the matrix form.
[0082] The non-sharing leg 530 may be positioned at the outer edge of the array of the matrix form and refers to a leg connected to a single branched connector. The sharing leg 540 may be located between two adjacent central pillars in the matrix form and may be connected to two branched connectors from the two central pillars, respectively.
[0083] Due to a force pressing the central pillar, each of an angle between the central pillar and the first segmental portion, an angle between the first segmental portion and the second segmental portion, and an angle between the second segmental portion and the leg is variable.
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[0085] The structure according to the present disclosure is manufactured using a 3D printer based on 3D design as shown in
[0086] For relative evaluation in addition to absolute evaluation, a positive structure in which the branched connector connecting the central pillar and the leg to each other is not segmented and extends directly to the leg from the bottom of the central pillar downwardly is prepared as a control structure. Further, a negative structure as another control structure is prepared in which the branched connector connecting the central pillar and the leg is not segmented, and extends directly to the leg from the bottom of the central pillar upwardly. The two control structures are manufactured in the same way as the 3D printer based manufacturing method of the structure according to the present disclosure based on the 3D designs as shown in
[0087] To evaluate performance of the structure of the zero Poisson's ratio according to the present disclosure, the displacement in the horizontal direction with respect to the force pressing the central pillar and the resulting Poisson's ratio are measured. For the relative comparison, the displacement and the Poisson's ratio of each of the control structures are measured.
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[0089] It may be identified that in the positive structure as a control, a large positive displacement in the horizontal direction occurs relative to the pressing force. Further, it may be identified that in the negative structure as another control, a large negative displacement in the horizontal direction occurs relative to the pressing force. However, it may be identified that the structure according to the present disclosure has almost no displacement in the horizontal direction relative to the pressing force.
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[0091] In the positive structure as the control, a value of P60 in
[0092] In the negative structure as the control, a value of N60 in
[0093] Z45 in
[0094] As identified in
[0095] Further, as identified in
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[0097] The cylindrical array in which the structures of the zero Poisson's ratio according to the present disclosure are arranged three-dimensionally is shown in
[0098] The cylindrical array in which the structures of the zero Poisson's ratio according to the present disclosure are arranged three-dimensionally includes central pillars 610 arranged in circumferential and length directions and on an outer face of an imaginary cylinder, wherein a top face of each pillar faces inwardly of the cylinder; four branched connectors 620 extending radially from each of the central pillars and toward a pillar adjacent thereto, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each branched connector 620 includes a first segmental portion 621 extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion 622 extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other.
[0099] Each of an angle between the central pillar and the first segmental portion, and an angle between the first segmental portion and the second segmental portion is variable due to a force applied to the array.
[0100] In this case, in the cylindrical array in which the structures of zero Poisson's ratio are arranged in a three-dimensional manner such that a top face of the central pillar faces inwardly of the imaginary cylinder, the displacement in the length and circumferential directions of the cylinder due to a radial force outwardly from a center of the cylinder has no change.
[0101] The array further includes legs extending outwardly from distal points of the second segmental portions, respectively. The legs may include non-sharing legs positioned on a top and a bottom of the cylinder, and each sharing leg positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars.
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[0103] The present disclosure provides another example of a three-dimensional array of the structures of the zero Poisson's ratio.
[0104] A cylindrical array in which structures of a zero Poisson's ratio are arranged in a three dimensional manner is provided, wherein the array comprises: central pillars 610 arranged in circumferential and length directions and on an outer face of an imaginary cylinder, wherein a top face of each central pillar faces outwardly of the cylinder; and four branched connectors extending radially and inwardly from each of the central pillars and toward a central pillar adjacent thereto, wherein the four branched connectors are spaced from each other by an equal angular spacing, wherein each branched connector 620 includes: a first segmental portion 621 extending inclinedly upwardly or downwardly from the central pillar; and a second segmental portion 622 extending inclinedly downwardly or upwardly from a distal point of the first segmental portion, wherein the extension directions of the first and second segmental portions are opposite to each other.
[0105] Each of an angle between the central pillar and the first segmental portion, and an angle between the first segmental portion and the second segmental portion is variable due to a force applied to the array.
[0106] In this case, in the cylindrical array in which the structures of zero Poisson's ratio are arranged in a three-dimensional manner such that a top face of the central pillar faces outwardly of the imaginary cylinder, the displacement in the length and circumferential directions of the cylinder due to a radial force inwardly toward a center of the cylinder has no change.
[0107] The array further comprises legs 630 extending inwardly from distal points of the second segmental portions, respectively, wherein the legs includes: non-sharing legs positioned on a top and a bottom of the cylinder; and each sharing leg positioned between adjacent two central pillars and connected to two second segmental portions respectively extending from the adjacent two central pillars.
[0108] In another aspect of the present disclosure, the present disclosure provides a stack in which planar arrays of the structures of the zero Poisson's ratio according to the present disclosure are stacked in a three-dimensional manner. For example,
[0109] The physical properties of the planar array may be modified based on the environment to vary the characteristics of the three-dimensional stack.
[0110] In still another aspect, the present disclosure provides a hybrid type planar array of structures having a zero Poisson's ratio.
[0111] For example, the hybrid type planar array of structures having a zero Poisson's ratio may include a planar array of the structures of zero Poisson's ratio arranged in the form of the matrix form and in a plane, and structures extending from the non-sharing legs located at the sides of the matrix form and having the larger vertical dimension and having the positive Poisson's ratio, wherein the planar array of the structures of zero Poisson's ratio are surrounded with the structures having the positive Poisson's ratio. This array may act as a negative pressure chamber.
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[0113] Although the embodiments of the present disclosure have been described in more detail with reference to the accompanying drawings, the present disclosure is not necessarily limited to these embodiments. The present disclosure may be implemented in various modified manners within the scope not departing from the technical idea of the present disclosure. Accordingly, the embodiments disclosed in the present disclosure are not intended to limit the technical idea of the present disclosure, but to describe the present disclosure. the scope of the technical idea of the present disclosure is not limited by the embodiments. Therefore, it should be understood that the embodiments as described above are illustrative and non-limiting in all respects. The scope of protection of the present disclosure should be interpreted by the claims, and all technical ideas within the scope of the present disclosure should be interpreted as being included in the scope of the present disclosure.