The present application claims priority to Korean Patent Application No. 10-2019-0009290, filed on Jan. 24, 2019, the entire contents of which is incorporated herein for all purposes by this reference.
The present invention relates to a recovery method using a shape memory polymer, and more particularly, to an order of a recovery method.
A shape memory effect refers to a phenomenon in which a shape memorized at a predetermined temperature is memorized and then transformed into another shape by applying an external stimulus and then returned to the memorized shape when heated. A shape memory material may include a shape memory alloy and a shape memory polymer. The shape memory polymer can be more elastically transformed than the shape memory alloy and also has an excellent strain recovery ability, and as a result, the shape memory polymer has been extensively studied.
The information disclosed in this Background of the Invention section is only for enhancement of understanding of the general background of the invention and may not be taken as an acknowledgement or any form of suggestion that this information forms the prior art already known to a person skilled in the art.
Various aspects of the present invention are directed to providing a shape recovery model which may be applied when a shock to a vehicle panel occurs in a temperature environment which the shock may generally occur.
Various aspects of the present invention are directed to providing a method of recovering a vehicle panel using a shape memory polymer, which may include: applying an impact load to a panel of a shape memory polymer material at a temperature equal to or lower than a glass transition temperature; removing the impact load from the panel; providing a high-temperature environment at the glass transition temperature or greater than the glass transition temperature to the panel; and cooling the panel to room temperature.
The temperature equal to or lower than the glass transition temperature may be the room temperature.
The panel may be viscoelastically transformed by the impact load.
The impact load may be applied at a speed of 25 mm/min or more and less than 50 mm/min.
Preferably, elongation at break of the panel may be equal to or less than 200%.
The impact load may be applied at a speed equal to or more than 150 mm/min.
The elongation at break of the panel may be equal to or less than 20%.
According to an exemplary embodiment of the present invention, a shape may be recovered even though a shock to a vehicle panel occurs at room temperature.
According to an exemplary embodiment of the present invention, a perfect shape may be recovered in a coating drying temperature range (including 85° C.) and under a constant temperature and humidity condition.
The methods and apparatuses of the present invention have other features and advantages which will be apparent from or are set forth in more detail in the accompanying drawings, which are incorporated herein, and the following Detailed Description, which together serve to explain certain principles of the present invention.
It may be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various features illustrative of the basic principles of the present invention. The specific design features of the present invention as included herein, including, for example, specific dimensions, orientations, locations, and shapes will be determined in part by the particularly intended application and use environment.
In the figures, reference numbers refer to the same or equivalent portions of the present invention throughout the several figures of the drawing.
Reference will now be made in detail to various embodiments of the present invention(s), examples of which are illustrated in the accompanying drawings and described below. While the present invention(s) will be described in conjunction with exemplary embodiments of the present invention, it will be understood that the present description is not intended to limit the present invention(s) to those exemplary embodiments. On the other hand, the present invention(s) is/are intended to cover not only the exemplary embodiments of the present invention, but also various alternatives, modifications, equivalents and other embodiments, which may be included within the spirit and scope of the present invention as defined by the appended claims.
Hereinafter, the present invention will be described in detail. However, the present invention is not restricted or limited by exemplary embodiments and objects and effects of the present invention may be naturally appreciated or clearer by the following description and the objects and effects of the present invention are not limited only by the following disclosure. Furthermore, in describing the present invention, a detailed description of known technologies associated with the present invention may be omitted when it is determined to unnecessarily obscure the subject matter of the present invention.
The impact load is applied to a panel in an initial state before applying the load at the temperature equal to or lower than the glass transition temperature, for example, at the room temperature to cause plastic transformation and as such, the load is removed to fix the panel in a temporary transformation state. As such, when the panel is provided with a high-temperature environment at the glass transition temperature or higher to recover the transformation and the recovered panel is cooled and is subjected to a room temperature state, the panel is recovered and fixed to a panel shape in the initial state. In other words, the recover method according to an exemplary embodiment of the present invention may be referred to as an inverse model of the recovery model in the related art. Meanwhile, the panel of the shape memory polymer material is viscoelastically transformed and the shape memory polymer is a thermoplastic shape recovery plastic.
In an exemplary embodiment of the present invention, required elements to be utilized for actual panel collision-transformation-recovery include changed properties of a strain rate and a yield strength of a state in which the transformation occurs and changed properties of the strain rate and elongation break. Therefore, when the impact load is applied to the panel, it may be discriminated whether the recovery may be made within a range in which the breakage does not occur. To the present end, whether the recovery may be made needs to be derived through a tensile-recovery test. The tensile-recovery test is conducted under the assumption of constant temperature and humidity.
The change properties of the strain rate and the yield strength are defined based on the Cowper Symonds model shown in Equation 2 below. According to
σγ: Yield stress when applying corresponding strain rate
σ0: Yield stress of minimum strain rate
ε: Strain rate
C, P: Cowper-Symonds parameter
ν: Poisson's ratio
εc: True failure strain obtained from test
Meanwhile, further referring to
The change property of the yield strength and the change property of the elongation at break may be utilized in a step of deriving the property for analysis in a process of analyzing a panel low-speed impact and a recovery effective strain rate. When a maximum transformation portion of the panel is analytically analyzed for each collision mode, characteristics may be used in which the panel elongates in the transformation within 200% in the low-speed impact and when the break does not occur, the material is perfectly recovered. Furthermore, when the panel elongates in the transformation within 20% in the high-speed impact and the break does not occur, characteristics may be used in which the material is perfectly recovered. Therefore, as a discrimination criterion for shape recovery effectiveness, an analysis process may be defined, which may determine effective transformation of plastic transformation according to criteria of a low-speed region and a high-speed region.
Referring to
For convenience in explanation and accurate definition in the appended claims, the terms “upper”, “lower”, “inner”, “outer”, “up”, “down”, “upwards”, “downwards”, “front”, “rear”, “back”, “inside”, “outside”, “inwardly”, “outwardly”, “internal”, “external”, “inner”, “outer”, “forwards”, and “backwards” are used to describe features of the exemplary embodiments with reference to the positions of such features as displayed in the figures. It will be further understood that the term “connect” or its derivatives refer both to direct and indirect connection.
The foregoing descriptions of specific exemplary embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the present invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teachings. The exemplary embodiments were chosen and described to explain certain principles of the present invention and their practical application, to enable others skilled in the art to make and utilize various exemplary embodiments of the present invention, as well as various alternatives and modifications thereof. It is intended that the scope of the present invention be defined by the Claims appended hereto and their equivalents.
Number | Date | Country | Kind |
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10-2019-0009290 | Jan 2019 | KR | national |