Mechanical Metamaterial with Improved Compressive Responses
20230212372 · 2023-07-06
Inventors
Cpc classification
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A mechanical metamaterial comprising a chiral structure and a reentrant structure repeatedly layered to form a 3D structure with improved compressive response is disclosed. The 3D structure of the present invention is a metamaterial which can be perfectly and easily produced by a photocuring 3D printing process without any internal support. The introduction of modified carbon nanotubes into the printing composite material improves the compression resistance and impact resistance of the products and increases the service life through the special periodic structure. The application of 3D printing technology in fabricating mechanical metamaterials can break through the processing limitation of traditional processing technology or microelectronics manufacturing technology to make three-dimensional periodic structures.
Claims
1. A mechanical metamaterial with high compressibility comprising a first unit layer and a second unit layer that are repeatedly and alternately stacked or layered in a height direction into a three-dimensional structure, wherein: the first unit layer comprises multiple first structure units which are repeatedly and regularly composed in a horizontal direction along a plane surface of the first unit layer, and the first structure units include six-bonded chiral structures; the second unit layer comprises multiple second structure units which are repeatedly and regularly composed in a horizontal direction along a plane surface of the second unit layer, and the second structure units includes four annular reentrant structures; and the mechanical metamaterial comprises an elastic photocurable resin impregnated with carbon nanotubes modified with surface functional groups.
2. The mechanical metamaterial as claimed in claim 1, wherein the mechanical metamaterial has a negative Poisson's ratio.
3. The mechanical metamaterial as claimed in claim 1, wherein: the six-bonded chiral structure is a structure having six-bonds extending outwardly and radiating from a center circle at equal angles in the plane surface of the first unit layer; the four annular reentrant structure is a structure having a three-dimensional square structure formed by connecting four circles or rings; and a width of each bond of the six-bonded chiral structure and a line diameter of the four annular reentrant structure are between 0.10 mm and 0.50 mm.
4. The mechanical metamaterial as claimed in claim 2, wherein: the six-bonded chiral structure is a structure having six-bonds extending outwardly and radiating from a center circle at equal angles in the plane surface of the first unit layer; the four annular reentrant structure is a structure having a three-dimensional square structure formed by connecting four circles or rings; and a width of each bond of the six-bonded chiral structure and a line diameter of the four annular reentrant structure are between 0.10 mm and 0.50 mm.
5. The mechanical metamaterial as claimed in claim 1, wherein a content of the carbon nanotubes modified with surface functional groups in the elastic photocurable resin is in a range of 0.1 to 0.3 wt %.
6. The mechanical metamaterial as claimed in claim 2, wherein a content of the carbon nanotubes modified with surface functional groups in the elastic photocurable resin is in a range of 0.1 to 0.3 wt %.
7. The mechanical metamaterial as claimed in claim 3, wherein a content of the carbon nanotubes modified with surface functional groups in the elastic photocurable resin is in a range of 0.1 to 0.3 wt %.
8. The mechanical metamaterial as claimed in claim 5, wherein a content of the carbon nanotubes modified with surface functional groups in the elastic photocurable resin is in a range of 0.2 to 0.25 wt %.
9. The mechanical metamaterial as claimed in claim 6, wherein: a content of the carbon nanotubes modified with surface functional groups in the elastic photocurable resin is in a range of 0.2 to 0.25 wt %.
10. The mechanical metamaterial as claimed in claim 7, wherein: a content of the functional groups surface modified carbon nanotubes in the elastic photocurable resin is at a range of 0.2-0.25 wt %.
11. The mechanical metamaterial as claimed in claim 1, wherein the functional groups include hydroxyl (—OH), aldehyde (—CO—), or carboxyl (—COOH) groups, or a combination thereof; and the elastic photocurable resin includes polyurethane (PU), thermoplastic polyurethane (TPU), rubber, silicone resin or a combination thereof.
12. The mechanical metamaterial as claimed in claim 2, wherein the functional groups include hydroxyl (—OH), aldehyde (—CO—), or carboxyl (—COOH) groups, or a combination thereof; and the elastic photocurable resin includes polyurethane (PU), thermoplastic polyurethane (TPU), rubber, silicone resin or a combination thereof.
13. The mechanical metamaterial as claimed in claim 3, wherein the functional groups include hydroxyl (—OH), aldehyde (—CO—), or carboxyl (—COOH) groups, or a combination thereof; and the elastic photocurable resin includes polyurethane (PU), thermoplastic polyurethane (TPU), rubber, silicone resin or a combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The steps and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or similar parts. The exemplary embodiments described herein are not intended to limit the method. In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to convey a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. As used in the description herein and throughout the claims that follow, the meaning of “a”, “an”, and “the” may include reference to the plural unless the context clearly dictates otherwise. Also, as used in the description herein and throughout the claims that follow, the terms “comprise or comprising”, “include or including”, “have or having”, “contain or containing” and the like are to be understood to be open-ended, i.e., to mean including but not limited to.
[0023] <Mechanical Metamaterial with High Compressibility>
[0024] With reference to
[0025] With reference to
[0026] The stated six-bonded chiral structure is shown in the top left corner of
[0027] To connect the first unit layer 11 and the second unit layer 13, in one preferred embodiment of the present invention, the first structure unit 111 with a positive Poisson's ratio is arranged repeatedly at equal intervals in the plane surface of the first unit layer 11 (shown in
[0028] <Materials and Production Method>
[0029] The present invention is preferably produced or fabricated by three-dimensional (3D) printing, and more preferably by a photocuring 3D printing method such as digital light projection 3D printing or digital light processing 3D printing. A material for 3D printing is preferably a soft and elastic photocurable resin, such as polyurethane (PU), thermoplastic polyurethane (TPU), rubber, silicone resin or a combination thereof. The material used in the present invention is preferably impregnated with carbon nanotubes (CNTs) modified with surface functional groups. Such functional groups include hydroxyl (—OH), aldehyde (—CO—), or carboxyl (—COOH) groups, or a combination thereof. The functional groups can be obtained by treating carbon nanotubes with a strong acid or a strong base.
[0030] A preferred embodiment for obtaining carbon nanotubes modified with hydroxyl surface functional groups includes the steps of:
[0031] evenly mixing 1 g of carbon nanotubes with acetone, followed by vibration with an ultrasonic device for 10 minute and drying in an oven;
[0032] mixing the dried carbon nanotubes with a solution containing 25 mL of nitric acid, at a concentration of 66 wt % and 25 mL of hydrogen peroxide, at a concentration of 35 wt %, and heating and stirring at a temperature of 60° C. and rotating at a speed of 700 rpm for 12 hours;
[0033] centrifuging the mixed solution at a high speed of 9000 rpm for 10 minutes to separate the carbon nanotubes from the solution;
[0034] optionally, grinding the CNTs to an ideal size (400 mesh in this preferred embodiment) according to the user demand to obtain carbon nanotubes modified with hydroxyl surface functional groups.
[0035] Next, mixing the carbon nanotubes modified with hydroxyl surface functional groups and elastic photocurable resin to obtain a photocurable composite 3D printing resin of the present invention.
[0036] <Validation Tests>
[0037] The above photocurable composite 3D printing resin is 3D printed to obtain the mechanical metamaterial 10 having high compressibility, and the excellent mechanical properties of the mechanical metamaterial 10 will be described as follows.
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[0041] The above specifications, examples, and data provide a complete description of the present disclosure and the use of exemplary embodiments. Although various embodiments of the present disclosure have been described above with a certain degree of particularity, or with reference to one or more individual embodiments, those with ordinary skill in the art could make numerous alterations or modifications to the disclosed embodiments without departing from the spirit or scope of this disclosure.