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一文读懂高分子材料的“刚性”与“柔性”!

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我们在谈论高分子材料时,常常会说“这种材料刚性很强”,或是“那款材料韧性绝佳”。刚性强的材料,往往有着较高的硬度,能够抵御外界的挤压与变形;而韧性好的材料,则像柔韧的丝带,能在拉伸、弯折时展现出出色的变形能力。但你是否想过,究竟哪些性能指标可以精准衡量材料的刚柔特性?又是什么因素从本质上决定了高分子材料的刚硬与柔软?本文小编将和大家一起探讨这些问题!

一、从性能指标看刚柔

在高分子材料的众多力学性能指标中,不同指标分别承担着反映材料刚性与柔性的重任。
刚性担当:弯曲模量硬度堪称刚性的“代言人” 。弯曲模量表征材料抵抗弯曲变形的能力,数值越高,材料越“硬气”,越不容易弯曲变形。硬度则直观体现材料表面抵抗局部压力的能力,硬度大的材料,能更好地维持自身形状,抵御外界的挤压变形。
拉伸强度压缩强度也在一定程度上反映材料刚性。拉伸强度是材料在拉伸断裂前所能承受的最大应力,拉伸强度高意味着材料能承受较大的拉力而不被拉断,展现出较强的刚性;压缩强度同理,反映材料抵抗压缩变形的能力,数值越高刚性越强。
柔性担当断裂伸长率冲击强度是衡量柔性的重要指标。断裂伸长率表示材料在拉断时的伸长量与原始长度的比值,数值越大,材料能拉伸得越长,柔韧性越好。冲击强度反映材料在受到冲击载荷时吸收能量的能力,冲击强度高的材料,在遭受外力冲击时不易破碎,表现出良好的韧性和柔性。

二、内在因素决定刚柔本质

1. 分子链结构
主链结构是影响高分子材料刚柔的核心因素。主链中若单键较多,由于单键可以自由旋转,分子链的柔性就较好。例如,聚丁二酸丁二醇酯(PBS),其主链由大量单键组成,分子链能够较为自由地运动和舒展,赋予材料良好的柔韧性,PBS常被用于制造可降解塑料袋、保鲜膜等。
而当主链中存在双键时,双键不能自由旋转,限制了分子链的运动,会使材料刚性增加。像含有共轭双键结构的生物基聚酯材料,其刚性相对较高。苯环的存在同样会降低分子链的柔性,因为苯环是刚性结构,难以发生变形和旋转。
2. 局部自由度
分子链局部的结构和基团也会影响材料的刚柔。侧基的大小、极性和数量都会产生作用。较大的侧基会阻碍分子链的运动,降低柔性,增加刚性。例如,带有长链烷基侧基的生物基高分子材料,其刚性会随着侧基长度的增加而提高。
极性侧基之间会产生较强的相互作用力,也会限制分子链的运动,提升刚性。如含有羟基、羧基等极性基团的生物基纤维素衍生物,通过调整基团的数量和分布,可以调控材料的刚柔性能 。
3. 分子间作用力
分子间作用力的强弱直接影响高分子材料的刚柔。氢键、范德华力等分子间作用力越大,分子链之间的相互束缚越强,分子链越难以相对滑动和运动,材料的刚性也就越高。
以壳聚糖为例,壳聚糖分子间存在大量的氢键,这使得壳聚糖具有较高的刚性和强度,在生物医用领域可用于制备伤口敷料等产品 。相反,分子间作用力较弱时,分子链更容易运动,材料表现出良好的柔性。
4. 分子链长度
分子链的长度对于材料的“刚性”与“柔性”来说,是一把“双刃剑”,一般来说,分子链长度增加,分子链之间的缠结程度会提高,这在一定程度上限制了分子链的运动,使材料刚性有所增加。但同时,较长的分子链也增加了分子链的构象数,使分子链有更多的运动方式和可能性,又会赋予材料一定的柔性。对于生物基的聚羟基脂肪酸酯(PHA),随着聚合度(反映分子链长度)的增加,材料的拉伸强度和硬度会提高,同时也保留了一定的柔韧性,可应用于不同场景。
5. 交联情况
交联是指分子链之间通过化学键相互连接形成三维网络结构。轻度交联时,交联点之间的分子链仍有一定的运动空间,材料会保持一定的柔性,同时由于交联结构的存在,其刚性和强度也会有所提升。
如轻度交联的海藻酸钠水凝胶,既有良好的柔韧性可以贴合皮肤,又具备一定的强度用于伤口护理。而高度交联时,分子链的运动受到极大限制,材料会变得坚硬、脆性大,刚性显著提高,柔性大幅降低 。
6. 外部因素
温度对高分子材料的刚柔影响显著。随着温度升高,分子热运动加剧,分子链的运动能力增强,材料的柔性增加,刚性降低;温度降低时则相反。
湿度也会对一些亲水性的生物基高分子材料产生影响,如纤维素基材料,在高湿度环境下,水分子会进入分子链之间,削弱分子间作用力,使材料变得柔软,刚性下降。

三、刚柔特性主导材料应用与改性创新

1. 按需选材,适配多元场景
高分子材料的刚柔特性指引着不同领域的材料选择方向。在航空航天领域,对材料的刚性和强度要求极高,生物基聚酰亚胺复合材料凭借出色的刚性和耐高温性能脱颖而出。这类材料的分子链中含有大量刚性的芳杂环结构,分子间作用力强,能在极端环境下保持稳定形态,可用于制造飞机的机翼、机身框架等关键部件 。
而在柔性电子领域,柔性成为材料的核心诉求。基于生物基聚氨酯制备的柔性导电薄膜,具有良好的柔韧性和拉伸性能,其分子链中软段赋予材料高弹性,硬段提供一定的强度,使得薄膜在反复弯曲、拉伸过程中仍能保持导电性能,适用于可穿戴电子设备、柔性显示屏等产品 。在医疗领域,组织工程支架需要同时具备一定的刚性以支撑组织生长,又要有足够的柔性来适应人体组织的生理活动。由聚羟基丁酸酯(PHB)和聚乙二醇(PEG)共混制成的支架材料,PHB提供刚性,PEG增加柔性,完美契合这一需求。
2. 共混改性,定制理想性能
为了让高分子材料更好地满足特定应用场景对刚柔性的需求,共混改性是一种常用且有效的手段。例如,聚乳酸(PLA)虽然是一种具有良好生物降解性的材料,但它本身刚性较高、韧性不足,限制了其在一些领域的应用。通过与聚己二酸 - 对苯二甲酸丁二酯(PBAT)共混,PBAT的柔性分子链穿插在PLA分子链之间,降低了PLA分子链间的相互作用力,有效改善了PLA的韧性 。目前我们在超市中看到的塑料袋,大多数PLA与PBAT共混制得的。
高分子材料的刚柔特性贯穿于性能表征、结构本质、应用选择和改性优化的全链条。在生物基可降解材料蓬勃发展的今天,深入挖掘刚柔特性的奥秘,不断创新材料设计与改性技术,我们就能解锁更多环保材料的应用潜力,为构建绿色、可持续的未来添砖加瓦。
你还想了解哪些关于高分子材料的奇妙知识?欢迎在评论区留言,一起探索材料世界的无限可能!
来源:Endurica
断裂复合材料化学航空航天电子材料
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首次发布时间:2026-04-29
最近编辑:3月前
Endurica
硕士 橡胶力学性能测试与疲劳寿命预测
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Two-channel map discretizing a space defined by the x and z displacements. Blue dots represent FE solutions for which the stress-strain fields are precomputed. The blue line represents a solution path, which defines the order in which the solutions are computed and stored in the results database. The red line represents a possible actual displacement history. The stress-strain history for points on the red path is obtained by interpolation from points on the precomputed map.Endurica EIETM 是一种通用工具,用于创建和使用非线性映射来生成疲劳分析的应力-应变历史[4],[5]。EIE是Efficient Interpolation Engine(高效插值引擎)的缩写。EIE提供了一个简单的工作流程和强大的实用程序,用于创建和使用地图进行插值。它支持多达六个独立的输入通道。Endurica EIETM is a general purpose tool for creating and using non-linear maps to generate stress-strain histories for fatigue an alysis [4], [5]. EIE is an abbreviation for efficient interpolation engine. EIE provides a simple workflow and powerful utilities for creating and using maps for interpolation. It supports up to six independent input channels.整个EIE工作流程由三个主要步骤组成。第一步是创建地图。下一步是根据力或位移指定历史。请注意,任何可作为边界条件应用于有限元模型的量都可以设置为通道。最后一步是执行指定的插值。该过程为FE模型中的每个元素生成应变张量分量的时间历程。The entire EIE workflow consists of three main steps. The first step is to create a map. The next step is to specify your history in terms of forces or displacements. Note that any quantity that can be applied as a boundary condition to the FE model can be set up as a channel. The last step is to perform the specified interpolation. The process produces a time history of strain tensor components for each element in your FE model.地图创建过程包括四个步骤,如图4所示。首先,必须定义将用于指定历史的独立通道的数量。还必须指定映射类型。有几种类型可用,包括完全可自定义的地图。基于网格的地图通常适用于一维、二维和三维地图。对于高维映射,基于案例向量的映射通常是最方便的。The map creation process involves four steps, as shown in Fig.4. First, the number of independent channels that will be used to specify the history must be defined. The map type must also be specified. Several types are available, including a completely customizable map. Grid-based maps are often appropriate for one-, two- and three-dimensional maps. For higher dimensional maps, case vector-based maps are often the most convenient.一旦定义了映射类型,EIE就会生成解决方案路径。这些由列举的载荷状态组成,这些载荷状态应作为边界条件应用于有限元模型,以生成映射。根据映射类型,可以生成一个或多个路径。每条路径称为一个分支。对于每个分支,EIE都会编写一个具有适当边界条件历史的文件,这是生成地图所必需的。接下来,使用EIE的边界条件建立并执行有限元模型。最后,FE结果的数据库链接到地图定义中的相应分支。Once the map type has been defined, EIE generates solution paths. These consist of enumerated load states that should be applied as boundary conditions to the FE model to generate the map. One or more paths may be generated depending on map type. Each path is called a branch. For each branch, EIE writes a file with the appropriate boundary condition history, which is necessary for the generation of the map. Next, the FE model is set up and executed using EIE’s boundary conditions. Finally, the database of FE results is linked to the corresponding branch in the definition of the map.在这一点上,地图是完整的,并准备内插。请注意,当单位载荷情况解决方案被收集并定义为映射时,线性叠加可以作为EIE中的特殊情况实施。然而,一般来说,非线性映射将包含更多数量的求解步骤。At this point the map is complete and ready for interpolation. Note that linear superposition can be implemented as a special case in EIE when unit load case solutions are collected and defined as a map. In general, however, a non-linear map will contain a greater number of solution steps. 图4. 指定供 Endurica EIETM 使用的映射的步骤。Fig.4. Steps to specify a map for use by Endurica EIETM.指定载荷历史与选择包含每个输入通道的时间历史的文件一样简单。在文件中,每行表示一个时间步长,每列表示一个输入通道。EIE 支持 .csv 和 .rsp 格式,这两种格式都是常见的数据格式。图5显示了具有和位移的示例历史。请注意,历史中的位移范围不应超过预先计算的标测图的范围。尽管内插解可能相当精确,但非线性问题的外推可能非常危险和不准确。Specifying the load history is as simple as selecting a file containing the time history of each input channel. In the file, each row represents one time step and each column represents an input channel. EIE supports .csv and .rsp formats, both common data formats. Fig.5 shows an example history with and displacements. Note that the range of displacements in the history should not exceed the range of the precalculated map. Although interpolated solutions can be quite accurate, extrapolation for non-linear problems can be very risky and inaccurate. 图5. 插值的双通道位移历史示例。Fig.5. Example two-channel displacement history for interpolation.一旦指定了地图和历史,就可以开始插值。Endurica EIETM 支持多线程,这意味着插值计算可以在可用的CPU之间并行分布和执行。这使得插值速度非常快,并且可扩展到大型模型和冗长的历史。请注意,Endurica EIETM 生成的文件很大,因为它计算每个有限元的每个时间步长的应力和应变张量分量。因此,在运行Endurica EIETM 时,确保有足够的可用磁盘空间非常重要。Once the map and history are specified, interpolation can begin. Endurica EIETM supports multi-threading, meaning that interpolation calculations can be distributed and executed in parallel across available CPUs. This makes interpolating very fast and very scalable to large models and lengthy histories. Note that Endurica EIETM generates large files because it calculates stress and strain tensor components for each time step of each finite element. It is therefore important to ensure that you have sufficient disk space available when running Endurica EIETM.References[1.] R. W. Landgraf, “Applications of fatigue an alyses: transportation”, Fatigue ’87, vol. 3, pp. 1593–1610, 1987[2.] Moon, Seong-In et al, “Fatigue life evaluation of mechanical components using vibration fatigue a nalysis technique”, Journal of Mechanical Science and Technology, vol. 25, pp. 631–637, 2011.[3.] F. A. Conle and C. W. Mousseau, “Using vehicle dynamics simulations and finite-element results to generate fatigue life contours for chassis components”, International Journal of Fatigue, vol. 13(3), pp. 195–205, 1991.[4.] K. P. Barbash and W. V. Mars, “Critical plane an alysis of rubber bushing durability under road loads”, SAE Technical Paper No. 2016-01-0393, 2016.[5.] W. V. Mars, “Interpolation engine for an alysis of time-varying load data signals”. U.S. Patent 9, 645, 041, May 9, 2017.[6.] W. Mars, K. Barbash et al, “Durability of Elastomeric Bushings Computed from Track-Recorded Multi-Channel Road Load Input”, SAE Technical Paper No. 2024-01-2253, 2024.来源:Endurica

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