Patent Description:
Fiber composites such as unidirectional fiber tapes ("UD tapes") can be used to make structures having advantageous structural characteristics, such as high stiffness and high strength, as well as low weight, when compared to structures formed from conventional materials. As a result, UD tapes are used in a variety of applications across a wide range of industries, including the automotive, aerospace, and consumer electronics industries. Depending on its application, a UD tape may need to meet a number of criteria, including those relating to strength, stiffness, size, weight, and/or the like. Other fiber composites with high stiffness, high strength and low weight also have use in electronic and electrical devices such as notebook personal computers, e-books, and tablet personal computers, where metallic body panels are being replaced by materials that are lighter in weight but offer a robust combination of mechanical properties.

Fiber composites made with conventional production techniques are unable to meet the desired criteria. For example, UD tape made with conventional solvent based and aqueous based impregnation techniques are undesirably expensive and/or are complicated to make. UD tape made with conventional melt impregnation technology may have low fiber weight fraction, uneven density, and high weight. A matrix material with low viscosity but high melt strength is required for melt impregnation techniques. Melt impregnation with a matrix material having relatively high viscosity and/or low melt strength can result in necking and breakage of the molten matrix material film formed during casting and can result in a UD tape with dry spot, incorrect position and amount of the matrix material. Various attempts have been made to produce materials that address the quality of the matrix material. <CIT> discloses a relatively low viscosity polymer mixture. The polymer mixture can include two polymers with similar monomer units but different properties. The ratio of the two polymers in the mixture depends of the melt flow index of the polymers.

While various fiber composites are known, there is a continuing interest in developing fiber composites which have advantageous physical and chemical properties such as relatively less dry spot and uniform density.

Solutions to at least some of the deficiencies noted above have been discovered. In particular, it has been discovered that fiber composites containing greater than <NUM> wt. % of a fiber material and a matrix with a HDPE resin composition containing a HDPE polymer and a metallocene polyethylene wax exhibit many desirable properties. In some aspects, the fiber composites, such as UD tapes, can be made by a melt impregnation process.

In some aspects, the HDPE resin composition can have a MFI of <NUM> to <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>, a drawing ratio of <NUM> to <NUM>, and/or a crystallinity temperature of <NUM> to <NUM>. In some aspects, the HDPE resin composition can have a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or <NUM>/<NUM> to <NUM>/<NUM>, or <NUM>/<NUM> to <NUM>/<NUM>, or <NUM>/<NUM> to <NUM>/<NUM>, or <NUM>/<NUM> to <NUM>/<NUM>, or <NUM>/<NUM> to <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. In some aspects, the HDPE resin composition can have a crystallinity temperature of <NUM> to <NUM>, or <NUM> to <NUM>. Crystallinity temperature can be obtained by DSC measurements performed using a DSC TA Q20 (TA Instruments, USA) and an intracooler or chiller capable of reaching -<NUM>. The measurements can be performed under inert atmosphere (e.g., nitrogen gas flow) to avoid degradation. DSC methodology can include heating the sample to <NUM> to <NUM> at a rate of <NUM>/min, holding for <NUM> to <NUM> (about <NUM>) min at the final temperature, cooling the sample from <NUM> to <NUM> at a rate of <NUM>/min, and then heating the sample against from <NUM> to <NUM> at the same rate. Measurements can be cycled twice to ensure that the sample does not change during the measurement. In some aspects, the crystallinity temperature can be peak crystallization temperature as measured using the DSC procedure according to ASTM ISO11357-<NUM>, <NUM>, and/or <NUM>. In some aspects, the fiber material can be a continuous fiber material. In some particular aspects, the continuous fiber material can be a continuous glass, carbon, ceramic, aramid, basalt or polymeric fiber material, or any combination thereof.

In some aspects, the fiber composite can be a UD tape. In some aspects, the UD tape can have a thickness <NUM> to <NUM>. In some aspects, the UD tape can have a thickness <NUM> to <NUM>. In some aspects, the UD tape can have thickness greater than <NUM> to <NUM>. In some aspects, the UD tape can have a mean relative fiber area coverages (%) ("RFAC") of <NUM> to <NUM>. In some aspects, the UD tape can have a coefficients of variance (%) ("COV") of <NUM> to <NUM>.

In one aspect of the present invention, a method for making a fiber composite of the current invention is described. In some particular aspects, the fiber composite can be an UD tape. In some aspects, the fiber composite can be made by a melt impregnation process. In some aspects, the melt impregnation process can include, impregnating the HDPE resin composition with the fiber material. In some particular aspects, the melt impregnation process can include casting molten HDPE resin composition as a film on a moving bed of continuous fibers. In some aspects, the moving bed of continuous fibers can be moved at a line speed of <NUM>/min to <NUM>/min. In some particular aspects, the melt impregnation process can include, spreading a first set of one or more bundles of the fiber material into a first spread fiber layer, spreading a second set of one or more bundles of the fiber material into a second spread fiber layer, casting the molten HDPE resin composition into the second spread fiber layer, and pressing together the first and second spread fiber layers. The molten HDPE resin composition can be casted into the second spread fiber layer by moving the second spread fiber layer in a first direction underneath and relative to an outlet of a die of an extruder while the molten HDPE resin composition is extruded as a film through the outlet in an extrusion direction that is perpendicular to or has a component that is counter to the first direction. In some aspects, the second spread layer can be moved at a line speed of <NUM>/min to <NUM>/min in the first direction. In some aspects, the second spread fiber layer can have at least <NUM>% more fibers than the first spread fiber layer. In some aspects, the first spread fiber layer and/or the second spread fiber layer can contain continuous fibers. In some methods, the second spread fiber layer contacts or comes in close proximity to (e.g., within <NUM> of) the die. In some aspects, the second spread fiber layer is passed underneath a scraper, which may be part of the die, the scraper can have a downstream portion and an upstream portion, where a distance between the second spread fiber layer and the upstream portion is larger than a corresponding (i.e., measured in the same direction) distance between the second spread fiber layer and the downstream portion such that the molten HDPE resin composition accumulates between the scraper and the second spread fiber layer. In some aspects, the molten HDPE resin composition from the die can be pushed into the second spread fiber layer, thereby facilitating impregnation of the second spread fiber layer.

In one non-limiting embodiment, the terms are defined to be within <NUM>%, preferably within <NUM>%, more preferably within <NUM>%, and most preferably within <NUM>%. The phrase "and/or" means and or or. To illustrate, A, B, and/or C includes: A alone, B alone, C alone, a combination of A and B, a combination of A and C, a combination of B and C, or a combination of A, B, and C. In other words, "and/or" operates as an inclusive or.

The terms "wt. %", or "mol. %" refers to a weight percentage of a component, a volume percentage of a component, or molar percentage of a component, respectively, based on the total weight, the total volume of material, or total moles, that includes the component. In a non-limiting example, <NUM> grams of component in <NUM> grams of the material is <NUM> wt. % of component.

The terms "inhibiting" or "reducing" or "preventing" or "avoiding" or any variation of these terms, when used in the claims and/or the specification includes any measurable decrease or complete inhibition to achieve a desired result.

The term "coupled" is defined as connected, although not necessarily directly, and not necessarily mechanically; two items that are "coupled" may be unitary with each other.

The use of the words "a" or "an" when used in conjunction with any of the terms "comprising," "including," "containing," or "having" in the claims, or the specification, may mean "one," but it is also consistent with the meaning of "one or more," "at least one," and "one or more than one.

The term "drawing ratio" as described herein, is a value obtained by dividing the die gap thickness by the average thickness of the final solidified film.

The term "effective amount" refers to an amount of a compound where addition of such amount produces a desired or intended effect.

Other objects, features and advantages of the present invention will become apparent from the following detailed description and examples. It should be understood, however, that the detailed description and examples, while indicating specific embodiments of the invention, are given by way of illustration only and are not meant to be limiting. In further embodiments, features from specific embodiments may be combined with features from other embodiments. For example, features from one embodiment may be combined with features from any of the other embodiments. In further embodiments, additional features may be added to the specific embodiments described herein.

The following drawings illustrate by way of example and not limitation. For the sake of brevity and clarity, every feature of a given structure is not always labeled in every figure in which that structure appears. Identical reference numbers do not necessarily indicate an identical structure. Rather, the same reference number may be used to indicate a similar feature or a feature with similar functionality, as may non-identical reference numbers. Each of the figures, unless identified as a schematic view, is drawn to scale, meaning the sizes of the elements depicted in the figure are accurate relative to each other for at least the embodiment depicted in the figure. A melt impregnation system and a process for preparing a fiber composite according to an example of the current invention.

A discovery has been made that provides a solution to at least some of the aforementioned problems. It has been discovered fiber composites containing greater than <NUM> wt. % of a fiber material and a HDPE resin composition containing a HDPE polymer and a polyethylene wax shows relatively uniform densities, low dry spot, correct position and amount of the matrix material.

The HDPE resin composition of the current invention can have relatively low viscosity and high melt strength. The HDPE resin composition of the current invention can have (<NUM>) a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM> and <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>, (<NUM>) a drawing ratio <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM>, and/or (<NUM>) a crystallinity temperature of <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM>, or any combination thereof.

The HDPE resin composition includes a HDPE polymer and a metallocene polyethylene wax. The HDPE resin composition includes <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % of the polyethylene wax, based on total weight of the HDPE resin composition. The metallocene polyethylene wax can be added to the HDPE polymer by a suitable means known in the art. In some aspects, the polyethylene wax in a powder of granulate form can be added with the HDPE polymer to obtain the HDPE resin composition. In some aspects, the polyethylene wax can be a microcrystalline polyethylene wax. , The polyethylene wax is a metallocene polyethylene wax. Without intending to be limited by theory, it is believed that addition of an effective amount of a polyethylene wax with a HDPE polymer, may result in a composition with viscosity lower than the HDPE polymer. Since melt strength of a metallocene polyethylene wax is higher than conventional polyethylene waxes, addition of an effective amount of a metallocene polyethylene wax may decrease viscosity of the HDPE polymer without any or substantial decrease of melt strength, and thus may not substantially influence tensile strength, impact strength, sensibility for environmental stress cracking and sealability of the HDPE polymer. In addition, metallocene polyethylene wax can contain less amount low or very low molecular weight components compared to conventional polyethylene waxes. Low or very low molecular weight part of wax can plate out in the final application of the tape.

In some aspects, the HDPE polymer can have (<NUM>) a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, and <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. It has a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, as measured by ASTM D <NUM>. In some aspects, the weight average molecular weight of the HDPE polymer can be <NUM> Daltons to <NUM> Daltons or at least any one of, equal to any one of, or between any two of <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, <NUM> Daltons, and <NUM> Daltons. HDPE polymers that are useful in the current invention includes but are not limited to HDPE polymers those are commercially available under the brand name SABIC® HDPE CC3054 sold by SABIC, SABIC® HDPE F0863 sold by SABIC, SABIC® HDPE A4046 sold by SABIC, SABIC® HDPE PCG300054 sold by SABIC, BAPOLENE® GRADE HD3292 sold by Bamberger Polymers, DOW HDPE DMDA-<NUM> NT <NUM> sold by Dow, DOW HDPE DMDA-<NUM> NT <NUM> sold by Dow, SCLAIR® <NUM> sold by Nova chemicals, and/or SCLAIR® <NUM> sold by Nova chemicals.

In some aspects, the HDPE polymer can contain two or more HDPE polymers with different molecular weight ranges. In some aspects, the HDPE polymer can be a contain a low MFI HDPE polymer and a high MFI HDPE polymer. In some aspects, the low MFI HDPE polymer can have MFI of <NUM>/<NUM> to less than <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. In some aspects, the high MFI HDPE polymer can have MFI of <NUM>/<NUM> to <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. In some aspects, the HDPE polymer can contain <NUM> wt. % to <NUM> wt. % of the low MFI HDPE polymer and <NUM> wt. % to <NUM> wt. % of the high MFI HDPE polymer.

In some aspects, the metallocene polyethylene wax can have (<NUM>) a drop point of <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM>, as measured by ASTM D <NUM>, (<NUM>) a viscosity of <NUM> mPa. s to <NUM> mPa. s or at least any one of, equal to any one of, or between any two of <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, <NUM> mPa. s, and <NUM> mPa. s, at <NUM> as measured by DIN <NUM>, and/or (<NUM>) a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, and <NUM>/cm<NUM>, at <NUM> as measured by ISO <NUM>. In some aspect, the metallocene wax can be maleic anhydride modified metallocene wax. Metallocene polyethylene waxes that are useful in the current invention includes but are not limited to Metallocene polyethylene waxes those are commercially available under the brand name LICOCENE® PE <NUM>, sold by Clariant, LICOCENE® PE <NUM>, sold by Clariant, and/or EXCEREX™ 40800T, sold by Mitsui Chemicals.

In some aspects, the HDPE resin composition can include a LDPE polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the LDPE polymer, based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax and the LDPE polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the LDPE polymer based on total weight of the HDPE resin composition. In some particular aspects, the LDPE polymer can have (<NUM>) a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM> and <NUM>/cm<NUM>, as measured by ASTM D <NUM>, (<NUM>) a melting point of <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>,<NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM>, as measured by DIN <NUM> (<NUM>) a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, and <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>, and/or (<NUM>) a Vicat softening temperature of <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM> at 10N and <NUM>/h as measured by A50, ISO306. The LDPE polymer can be a branched polymer. In some particular aspects, the LDPE polymer can be a highly branched LDPE polymer. Without intending to be limited by theory, it is believed that addition of an effective amount of a LDPE polymer with a HDPE polymer, may result in a composition with viscosity lower than the HDPE polymer. Addition of an effective amount of a branched and/or highly branched LDPE polymer with a HDPE polymer, may result in a composition with viscosity lower and melt strength higher than the HDPE polymer. The LDPE polymer can be added to the HDPE polymer and the metallocene polyethylene wax by a suitable means known in the art. In some aspects, the LDPE polymer can be added with the HDPE polymer and the metallocene polyethylene wax by dry blending in pelletized form followed by melt blending in a extruder or a mixer. LDPE polymer that are useful in the current invention includes but are not limited to LDPE polymers those are commercially available under the brand name SABIC® LDPE 1965N0 sold by SABIC, RIBLENE MV <NUM> R, and/or RIBLENE MT <NUM> R.

In some aspects, the HDPE resin composition can include an ethylene-vinyl acetate (EVA) polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the EVA polymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax and the EVA polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the EVA polymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, the LDPE polymer and the EVA polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the LDPE polymer, and <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the EVA polymer based on total weight of the HDPE resin composition. In some aspects, the EVA polymer can have a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM> and <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. Without intended to be limited by the theory it is believed that addition of an effective amount of an EVA polymer with a HDPE polymer, may result in a composition with lower crystallinity than the HDPE polymer. Since crystallization process can reduce the wettability of the continuous fibers, polymer compositions with lower crystallinity during melt impregnation process might be advantageous. EVA polymer that are useful in the current invention includes but are not limited to EVA polymers those are commercially available under the brand name DUPONT ELVAX <NUM> sold by Dupont, DUPONT ELVAX <NUM> sold by Dupont, DUPONT ELVAX <NUM> sold by Dupont, ARKEMA EVATANE <NUM>-<NUM> sold by Arkema, ARKEMA EVATANE <NUM>-<NUM> sold by Arkema, and/or ARKEMA EVATANE <NUM>-<NUM> sold by Arkema.

In some aspects, the HDPE resin composition can include a LLDPE polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the LLDPE polymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax and the LLDPE polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. % and <NUM> wt. %, of the LLDPE polymer based on total weight of the HDPE resin composition. In some particular aspects, the LLDPE polymer can have (<NUM>) a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, and <NUM>/cm<NUM> as measured by ASTM D1505, (<NUM>) a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, and <NUM>/<NUM>, at <NUM> and <NUM> as measured by ISO <NUM>, and/or (<NUM>) a Vicat softening temperature of <NUM> to <NUM>, or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM> and <NUM> at <NUM> N and <NUM>/h as measured by A50, ISO306. In some aspects, the LLDPE polymer can be a hexene linear low-density polyethylene polymer. LLDPE polymer that are useful in the current invention includes but are not limited to LLDPE polymers those are commercially available under the brand name SABIC LLDPE 1965MO sold by Sabic, PETROTHENE GA594189 sold by LyondellBasell, MICROTHENE MP574189 sold by LyondellBasell, EXXONMOBIL™ LLDPE LL <NUM> sold by Exxonmobil, DOW - AFFINITY GA1875POE sold by Dow, DOW - AFFINITY GA1950POE sold by Dow, and/or DOW - AFFINITY GA100RPOE sold by Dow.

In some aspects, the HDPE resin composition can include an ethylene-alpha olefin polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. %, of the ethylene-alpha olefin polymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax and the ethylene-alpha olefin polymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. %, of an ethylene-alpha olefin polymer based on total weight of the HDPE resin composition. In some aspects, the ethylene-alpha olefin polymer can be an ethylene-alpha butene polymer, an ethylene-alpha hexene polymer, or an ethylene-alpha octene polymer, or any combination thereof. Without intending to be limited by theory, it is believed that addition of an effective amount of an ethylene-alpha butene polymer, an ethylene-alpha hexene polymer and/or an ethylene-alpha octene polymer with a HDPE polymer, may reduce some of the problems associated with relatively fast crystallization and sharp melting point of some HDPE polymers. Relatively fast crystallization and sharp melting point of a HDPE polymer may result in a relatively small processing window with respect to sealability for a fiber composite, such as UD tape, made by melt impregnation of the HDPE polymer with a fiber material. Addition of an effective amount of an alpha butene polymer, an ethylene-alpha hexene polymer and/or the ethylene-alpha octene polymer with the HDPE polymer may increase the sealing window for a fiber composite made by melt impregnation of the resulting composition with a fiber material. Ethylene-alpha olefin polymer that are useful in the current invention includes but are not limited to ethylene-alpha olefin polymers those are commercially available under the brand name EXXONMOBILE - EXACT <NUM> sold by Exxonmobile, and/or TAFMER A20085S sold by Mitsui chemicals.

In some aspects, the HDPE resin composition can include a hydrogenated paraffin oil and a styrenic block copolymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the hydrogenated paraffin oil and <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. %, of the styrenic block copolymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, the hydrogenated paraffin oil and the styrenic block copolymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the hydrogenated paraffin oil and <NUM> wt. % to <NUM> wt. %, or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. %, of the styrenic block copolymer based on total weight of the HDPE resin composition. In some particular aspects, the hydrogenated paraffin oil can have (<NUM>) a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, and <NUM>/cm<NUM>, and/or (<NUM>) a kinematic viscosity of <NUM> to <NUM><NUM>/s or at least any one of, equal to any one of, or between any two of <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, and <NUM><NUM>/s, at <NUM> and <NUM> to <NUM><NUM>/s or at least any one of, equal to any one of, or between any two of <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s, <NUM><NUM>/s and <NUM><NUM>/s at <NUM>. In some aspects, the styrenic block copolymer can be a styrene-butadiene-styrene (SBS) block copolymer, a styrene-isoprene-styrene (SIS) block copolymer, a styrene-ethylene/propylene (SEP) block copolymer, a styrene-ethylene/propylene-styrene (SEPS) block copolymer, a styrene-ethylene/butylene (SEB) block copolymer, a styrene-ethylene/butylene-styrene (SEBS) block copolymer, a styrene-[ethylene-(ethylenepropylene)]-styrene (SEEPS) block copolymer, or any combination thereof, preferably a SBS block copolymer, a SEBS block copolymer, SEPS block copolymer or any combination thereof. Without intending to be limited by theory, it is believed that, an effective amount of a hydrogenated paraffin oil added to an HDPE polymer may function as a plasticizer for HDPE polymer. Addition of an effective amount of a styrenic block copolymer with an HDPE polymer and an hydrogenated paraffin oil may increase viscosity of the resulting composition and may reduce leaching of hydrogenated paraffin oil from the resulting composition.

In some aspects, the HDPE resin composition can include an internal lubricant. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the internal lubricant based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, and the internal lubricant. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the internal lubricant based on total weight of the HDPE resin composition. In some particular aspects, the internal lubricant can be a metal stearate, erucamide, oleamide, ethylene bis-stearamide, glycolmonostearate, or any combination thereof. In some particular aspects, the metal stearate can be a zinc stearate. In some aspects, the internal lubricant can be erucamide. Without intending to be limited by theory, it is believed that an effective amount of an internal lubricant added to an HDPE polymer may result in a composition with reduced melt viscosity and screw torque compared to the HDPE polymer. Such composition may require less processing energy compared to the HDPE polymer for mixing and plastification.

In some aspects, the HDPE resin composition can include an fluoropolymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the fluoropolymer based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, and the fluoropolymer. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the fluoropolymer based on total weight of the HDPE resin composition. In some particular aspects, the fluoropolymer can have (<NUM>) a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, and <NUM>/cm<NUM>, and/or (<NUM>) a MFI of <NUM>/<NUM> to <NUM>/<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, <NUM>/<NUM>, and <NUM>/<NUM> at <NUM> and <NUM> as measured by ISO <NUM>. In some aspects, the fluoropolymer can be a polytetrafluoroethylene. Without intending to be limited by theory, it is believed that, compositions obtained by addition of a HDPE polymer and an effective amount of a fluoropolymer may show reduced die buildup and melt fracture compared to the HDPE polymer during a melt impregnation process. A fiber composite obtained by melt impregnation using such composition may have relatively higher gloss, compared to a fiber composite obtained by melt impregnation using the HDPE polymer. Fluoropolymer that are useful in the current invention includes but are not limited to fluoropolymers those are commercially available under the brand name DYNAMAR <NUM> sold by <NUM>, Dynamar FX5911 sold by <NUM>, VITON FREEFLOW Z200 sold by Dupont, and/or VITON FREEFLOW Z210 sold by Dupont,.

In some aspects, the HDPE resin composition can include a high molecular weight polysiloxane mixed with an amorphous silica. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the high molecular weight polysiloxane mixed with an amorphous silica based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, and the high molecular weight polysiloxane mixed with an amorphous silica. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the high molecular weight polysiloxane mixed with an amorphous silica based on total weight of the HDPE resin composition. In some particular aspects, the high molecular weight polysiloxane mixed with an amorphous silica can have a density of <NUM>/cm<NUM> to <NUM>/cm<NUM>, or at least any one of, equal to any one of, or between any two of <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>. g/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, <NUM>/cm<NUM>, and <NUM>/cm<NUM> at <NUM>. Without intending to be limited by theory, it is believed that compositions obtained by addition of a HDPE polymer and an effective amount of a high molecular weight polysiloxane mixed with an amorphous silica may show increased flowability compared to the HDPE polymer, which might be beneficial during melt impregnation process. A fiber composite obtained by melt impregnation using such composition may have relatively better surface finish, compared to a fiber composite obtained by melt impregnation using the HDPE polymer.

In some aspects, the HDPE resin composition can include a maleic anhydride grafted polyethylene. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the of the maleic anhydride grafted polyethylene based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, and the maleic anhydride grafted polyethylene. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the maleic anhydride grafted polyethylene based on total weight of the HDPE resin composition.

In some aspects, the HDPE resin composition can include a quaterrylenetetracarboxylic diimide. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the quaterrylenetetracarboxylic diimide based on total weight of the HDPE resin composition. In some aspects, the HDPE resin composition can include the HDPE polymer, the metallocene polyethylene wax, and the quaterrylenetetracarboxylic diimide. In some aspects, the HDPE resin composition can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE polymer, <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the metallocene polyethylene wax, and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the quaterrylenetetracarboxylic diimide based on total weight of the HDPE resin composition. In some aspects, the quaterrylenetetracarboxylic diimide can be a near IR (NIR) absorber, and improve interlayer adhesion in fiber composite contain the HDPE resin composition.

Fiber composites of the current invention can include at least <NUM> wt. % of a fiber material and a HDPE resin composition. In some aspects, the fiber composite can include <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the fiber material and <NUM> wt. % to <NUM> wt. % or at least any one of, equal to any one of, or between any two of <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, <NUM> wt. %, and <NUM> wt. % of the HDPE resin composition based on total weight of the composite. In some aspects, the HDPE resin composition can be one or more HDPE resin compositions as discussed above. In some aspects, the fiber material can be a continuous fiber. In some particular aspects, the continuous fiber can be a continuous glass, carbon, ceramic, aramid, basalt or polymeric fiber, or any combination thereof. In some aspects, the fiber composite can be a UD tape. In some aspects, the UD tape can have thickness <NUM> to <NUM> or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, and <NUM>. In some aspects, the UD tape can have (<NUM>) a mean "RFAC" % of <NUM> to <NUM> or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM> and <NUM> and/or (<NUM>) a COV % of <NUM> to <NUM> or at least any one of, equal to any one of, or between any two of <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM> and <NUM>.

Fiber composites of the current invention can be made by impregnating a HDPE resin composition of the current invention with a fiber material. In some aspects, the fiber composite can be made by a melt impregnation process. In some aspects, the fiber composite can be a UD tape and the melt impregnation process can include, spreading one or more bundles of the fiber material in a spreaded fiber layer, casting a molten HDPE resin composition in to a moving bed of the spreaded fiber layer. In some aspects, the spreaded fiber layer can be moved at a line speed of <NUM>/min to <NUM>/min or at least any one of, equal to any one of, or between any two of <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, and <NUM>/min. In some aspects, a fiber composite such as a UD can be made by a melt impregnation technology as disclosed in Patent Application Publication No. <CIT>,.

<FIG> illustrates a melt impregnation system <NUM> and an example of a melt impregnation process for producing a UD tape. The system <NUM> can include one or more guiding elements 164a-164d and an extruder <NUM>. The melt impregnation process can include, spreading (not shown) a first set of one or more bundles of a fiber material into a first spread fiber layer (102a), spreading (not shown) a second set of one or more bundles of a fiber material into a second spread fiber layer (102b). The HDPE resin composition can be melted and the molten HDPE resin composition can be introduced into the second spread fiber layer using an extruder <NUM>. The second spread fiber layer can be moved underneath and relative to an outlet <NUM> of a die <NUM> of the extruder while molten HDPE resin composition is extruded through the outlet. A pressure within extruder <NUM> (e.g., within die <NUM>) can be a suitable pressure, such as, for example, a pressure that is greater than or substantially equal to any one of, or between any two of: <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> bar gauge (e.g., between approximately <NUM> bar gauge and approximately <NUM> bar gauge). A temperature within extruder <NUM> (e.g., within die <NUM>) can be a temperature that is greater than or substantially equal to any one of, or between any two of: <NUM>, <NUM>, <NUM>, <NUM>, <NUM> or <NUM>. The molten HDPE resin composition from die <NUM> can be provided as a sheet or film; for example, outlet <NUM> can be an elongated slit. The outlet <NUM> can have a width <NUM> that is less than or substantially equal to any one of, or between any two of: <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> (e.g., between approximately <NUM> and approximately <NUM>). A length of outlet <NUM> (measured perpendicularly to width <NUM>) can be substantially equal to a width of a portion of the second spread fiber layer that underlies the outlet. Die <NUM> can include an interior passageway <NUM> that extends to outlet <NUM> and through which the molten HDPE resin composition can be provided to the outlet. Interior passageway <NUM> can be in fluid communication with a manifold or conduit <NUM> of die <NUM> such that the molten HDPE resin composition can be provided from the manifold or conduit, through the interior passageway, and to outlet <NUM>. During introduction of the molten HDPE resin composition into the second spread fiber layer, the second spread fiber layer can be in contact with or in close proximity to die <NUM> (e.g., within <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> of the die), and more particularly, the portion of the die that defines outlet <NUM>. Such placement of the second spread fiber layer relative to die <NUM> can facilitate extruder <NUM> in pushing the molten HDPE resin composition into the second spread fiber layer, thereby enhancing impregnation of the second spread fiber layer.

During introduction of the molten HDPE resin composition into the second spread fiber layer, the second spread fiber layer can be moved in a first direction <NUM> underneath and relative to outlet <NUM>, and the molten HDPE resin composition can be extruded through the outlet in an extrusion direction <NUM> that is perpendicular to, or has a component <NUM> that is counter to, the first direction. In some aspects, the second spread fiber layer can be moved in the first direction <NUM> at a line speed of <NUM>/min to <NUM>/min or <NUM>/min to <NUM>/min or at least any one of, equal to any one of, or between any two of <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, <NUM>/min, and <NUM>/min. Extrusion direction <NUM> can be parallel to a longitudinal axis <NUM> of interior passageway <NUM> and/or perpendicular to a plane <NUM> of outlet <NUM> (e.g., a plane in which at least a majority of the perimeter of the outlet lies). To illustrate, an angle <NUM> between first direction <NUM> and extrusion direction <NUM> can be less than or substantially equal to any one of, or between any two of: <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> degrees (e.g., between approximately <NUM> degrees and <NUM> degrees). In at least this way, movement of the second spread fiber layer relative to die <NUM> can be used to encourage (or at least not discourage) urging of the molten HDPE resin composition exiting the die into the second spread fiber layer.

System <NUM> can include a scraper <NUM> disposed downstream of die outlet <NUM> and under which the second spread fiber layer can be passed. Scraper <NUM> can include an upstream portion 156a and a downstream portion 156b, where a distance 160a between the second spread fiber layer and the upstream portion is larger than a corresponding (i.e., measured in the same direction) distance 160b between the second spread fiber layer and the downstream portion. The second spread fiber layer can be in contact with or in close proximity to scraper <NUM> (e.g., within <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> of the scraper). In these ways, the molten HDPE resin composition can accumulate between scraper <NUM> and the second spread fiber layer, and, via the inclined orientation of the scraper relative to the second spread fiber layer, be urged into the second spread fiber layer. As shown, scraper <NUM> is coupled to (e.g., forms part of) die <NUM>; however, in other embodiments, a scraper and a die can be separate components. In impregnation system <NUM>, a surface of scraper <NUM> that faces the second spread fiber layer is planar; however, in other embodiments, such a surface of a scraper can be curved (e.g., concave or convex).

System <NUM> can include one or more guiding elements, 164a-164d, for guiding the first and second spread fiber layers relative to die <NUM>; for example: guiding elements 164c and 164d can guide the second spread fiber layer underneath outlet <NUM> of the die; and guiding elements 164a-164c can guide the first spread fiber layer over the die. Such guiding elements can comprise bars, plates, rollers, and/or the like. Guiding elements 164a and 164d can be spreading elements. Guiding element 164c can be a pressing element. Scraper <NUM>, to the extent that it influences the path of the second spreaded fiber layer underneath die <NUM>, can be characterized as a guiding element. In some aspects, at least one of guiding elements 164a-164d can be heated at a temperature of the guiding element can be greater than or substantially equal to any one of, or between any two of: <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, <NUM>, or <NUM> (e.g., between approximately <NUM> and approximately <NUM>). In impregnation system <NUM>, a heat source <NUM>, such as an infrared heater, can be positioned to heat the spread fiber layers, which can enhance impregnation of the spreaded fiber layers. A temperature of heat source <NUM> can be a suitable temperature, such as, for example, a temperature described above for a heated guiding element.

Embodiments of the impregnation systems (e.g., <NUM>) are referenced to illustrate methods of <FIG> however, these systems are not limiting on those methods, which can be performed using suitable systems.

The above specification and examples provide a complete description of the structure and use of illustrative embodiments. Although certain embodiments have been described above with a certain degree of particularity, or with reference to one or more individual embodiments, those skilled in the art could make numerous alterations to the disclosed embodiments without departing from the scope of this invention. As such, the various illustrative embodiments of the methods and systems are not intended to be limited to the particular forms disclosed. Rather, they include all modifications and alternatives falling within the scope of the claims, and embodiments other than the one shown may include some or all of the features of the depicted embodiment. For example, elements may be omitted or combined as a unitary structure, and/or connections may be substituted. Further, where appropriate, aspects of any of the examples described above may be combined with aspects of any of the other examples described to form further examples having comparable or different properties and/or functions, and addressing the same or different problems. Similarly, it will be understood that the benefits and advantages described above may relate to one embodiment or may relate to several embodiments.

The claims are not intended to include, and should not be interpreted to include, means-plus- or step-plus-function limitations, unless such a limitation is explicitly recited in a given claim using the phrase(s) "means for" or "step for," respectively.

Claim 1:
A fiber composite comprising at least <NUM> wt. %, preferably <NUM> wt. % to <NUM> wt.% of a fiber material based on total weight of the composite and a high density polyethylene (HDPE) resin composition comprising a HDPE polymer and a metallocene polyethylene wax, wherein the HDPE polymer has a density of <NUM>/cm<NUM> to <NUM>/cm<NUM> measured according to ASTM D <NUM>;
wherein the HDPE resin composition comprises <NUM> wt. % to <NUM> wt. % of the HDPE polymer and <NUM> wt. % to <NUM> wt. % of the metallocene polyethylene wax, based on total weight of the HDPE resin composition.