High flow double end-capped polyamide polymer
By synthesizing single- and double-end-capped polyamides with controlled molecular weights and narrow distributions, the challenges of reduced processability and increased viscosity in polyamide polymers are addressed, resulting in improved melt flow and compounding with glass fibers, enhancing molding productivity and mechanical properties.
Patent Information
- Application Number
- JP2023553567
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-03
- Filing Date
- 2022-03-03
- Publication Date
- 2026-01-29
- Estimated Expiration
- 2042-03-03
AI Technical Summary
Typical polyamide polymers, such as polycaprolactam or polyamide 6 (PA6), exhibit reduced melt flow index (MFI) due to mono-termination, leading to reduced processability, and dual-endcapped polymers face similar issues with increased viscosity, making them less suitable for compounding with glass fibers.
The synthesis of single- and double-end-capped polyamides with controlled molecular weights and narrow molecular weight distributions is achieved by hydrolyzing lactams to form monomers with amine and carboxyl end groups, followed by polycondensation and end-capping with specific agents, ensuring a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da and formic acid viscosity (FAV) of less than 45, allowing for glass fiber compounding without significant viscosity increase.
The resulting polyamides maintain processability and exhibit improved melt flow, enabling better compounding with glass fibers, enhancing molding productivity and mechanical properties.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 63 / 156,078, filed March 3, 2021, the entire contents of which are incorporated herein by reference.
[0002] The present invention relates to a method for producing high flow double end-capped polyamide polymers, and more particularly to a method for producing high flow double end-capped polyamide polymers having narrow molecular weight distributions. [Background technology]
[0003] Typical polyamide polymers, such as polycaprolactam or polyamide 6 (PA6), are polymerized by mono-termination using an amine to react with the carboxyl end groups or termini of the polymer, thereby capping the polymer. Mono-termination can also be achieved using an acid to react with the amine end groups or termini of the polymer, thereby capping the polymer. Dual-endcapped polymers can be synthesized by including both amine and acid end-capping agents. Dual-endcapped polymers typically exhibit a reduced melt flow index (MFI) compared to unendcapped polymers, leading to reduced processability. Summary of the Invention
[0004] There is a need for singly and doubly end-capped polymers with improved physical properties.
[0005] The present disclosure provides polyamide polymers that can be single-end-capped at either the amino or carboxyl end groups, or alternatively, double-end-capped at both the amino and carboxyl end groups, referred to herein as double-end-capped polyamides. Specifically, the present disclosure provides end-capped polyamides having a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da and a formic acid viscosity (FAV) of less than 45. The low viscosity allows for the compounding of glass fibers into the polyamide without sacrificing processability or experiencing a significant increase in viscosity after compounding.
[0006] The present disclosure also provides a method for synthesizing an end-capped polyamide, the method comprising hydrolyzing a lactam to provide a monomer having amine and carboxyl end groups, polycondensing the monomer at a temperature of 230°C to 270°C to provide a polyamide polymer having amine and carboxyl end groups, and end-capping the polyamide by reaction with at least one chain end-capping agent to provide an end-capped polyamide having a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da. Further, the method may be carried out in a manner such that a polyamide is provided having a ratio of the weight average molecular weight (Mw) of the polyamide to the number average molecular weight (Mn) of the polyamide of 1.8 to 3.5.
[0007] The present disclosure further includes compositions comprising the glass-filled polyamides of the present disclosure.
[0008] The above and other features of the present invention, and the manner in which they are achieved, will become more apparent, and the invention itself will be better understood, by referring to the following description of embodiments of the invention taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]
[0009] [Figure 1A] 1A and 1B show the tensile strength, in psi, of various non-end-capped, single-end-capped, and double-end-capped materials described in Example 1. [Figure 1B]1A and 1B show the tensile strength, in psi, of various non-end-capped, single-end-capped, and double-end-capped materials described in Example 1. [Figure 2] FIG. 2 shows the trend of formic acid viscosity (FAV) versus melt flow index (MFI) for glass-filled compounds as a function of end-capping, as described in Example 4. [Figure 3] FIG. 3 shows the impact strength and tensile strength versus melt flow index (MFI) for various materials, as described in Example 4. [Figure 4A] 4A and 4B show the formic acid viscosity (FAV) of various non-end-capped, single-end-capped, and double-end-capped materials described in Example 5 before and after compounding. [Figure 4B] 4A and 4B show the formic acid viscosity (FAV) of various non-end-capped, single-end-capped, and double-end-capped materials described in Example 5 before and after compounding. [Figure 5] FIG. 5 shows the spiral flow (in mm) of the non-endcapped and doubly endcapped polymers as described in Example 6. [Figure 6A] FIG. 6A shows a graph of the slope of the melt viscosity / time versus the percent total endcapping described in Example 9. [Figure 6B] FIG. 6B shows the viscosity slope / melt stability histogram described in Example 9. DETAILED DESCRIPTION OF THE INVENTION
[0010] Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set forth herein illustrate various aspects of the present invention, and such exemplifications should not be construed as limiting the scope of the present invention in any way.
[0011] 1. Polyamide The present disclosure relates to low molecular weight end-capped polyamides having narrow molecular weight distributions.
[0012] End-capped polyamides can be synthesized as shown in Scheme 1 below.
[0013] [ka]
[0014] As shown in Equation 1, a lactam such as caprolactam can be hydrolyzed to obtain a monomer having an amine end group and a carboxyl end group. The monomer can then be polycondensed to obtain a polyamide having an amine end group and a carboxyl end group. The polyamide can then be treated with a chain end-capping agent, also referred to herein as an end-capping agent, to obtain an end-capped polyamide. For example, the amine end group can be reacted with an acid such as acetic acid or stearic acid to block the amine end group and terminate further polymer growth at the amine end group. Similarly, a similar reaction can be performed by treating the carboxyl end group with an amine such as cyclohexylamine or stearylamine (octadecylamine), thereby blocking the carboxyl end group and preventing further polymer growth from the carboxyl end group.
[0015] A single-endcapped polymer refers to a polymer in which only the amine end groups or only the carboxyl end groups have been treated with a chain end capping agent. A double-endcapped polymer refers to a polymer in which both the amine end groups and the carboxyl end groups have been treated with a chain end capping agent.
[0016] All of the free amine end groups in any polymer population may be reacted with a chain end capping agent, or a percentage of the amine end groups may be reacted with a chain end capping agent. Examples of amine end capping agents include acids such as acetic acid, propionic acid, benzoic acid, stearic acid, and / or terephthalic acid.
[0017] The concentration of non-end-capped (free) amine end groups can be determined as shown in Equation 2 below, where PTSA represents para-toluenesulfonic acid.
[0018]
number
[0019] Similarly, all of the free carboxyl end groups in any polymer population may be reacted with a chain end capping agent, or a percentage of the carboxyl end groups may be reacted with the chain end capping agent. Examples of carboxyl end capping agents include monofunctional amides such as cyclohexylamine, stearylamine, and benzylamine, and polyetheramines.
[0020] The concentration of non-end-capped (free) carboxyl end groups can be determined as shown in Equation 3 below, where KOH represents potassium hydroxide.
[0021]
number
[0022] The degree of endcapping of the amine and carboxyl end groups in a polymer population can also be expressed in terms of percent endcapping, also referred to as the degree of endcapping. The degree of endcapping of a doubly endcapped polyamide can be determined using Equations 4, 5, and 6 below.
[0023]
number
[0024] In the polyamides of the present disclosure, the total degree of end-capping is 30% by weight or greater, 31% by weight or greater, about 32% by weight or greater, about 33% by weight or greater, about 34% by weight or greater, about 35% by weight or greater, about 36% by weight or greater, about 37% by weight or greater, about 38% by weight or greater, about 39% by weight or greater, about 40% by weight or greater, about 41% by weight or greater, about 42% by weight or greater, about 43% by weight or less, about 44% by weight or less, about 45% by weight or less, about 46% by weight or less, about 47% by weight or less, about 48% by weight or less, about 49% by weight or less, about 50% by weight or less, about 51% by weight or less, about 52% by weight or less, about 53% by weight or less, about 54% by weight or less, about 55% by weight or less, or any value encompassed by these endpoints.
[0025] In the polyamides of the present disclosure, the degree of amine end-capping is about 30% by weight or greater, about 31% by weight or greater, about 32% by weight or greater, about 33% by weight or greater, about 34% by weight or greater, about 35% by weight or greater, 36% by weight or greater, about 37% by weight or greater, about 38% by weight or greater, about 39% by weight or greater, about 40% by weight or less, about 41% by weight or less, about 42% by weight or less, about 43% by weight or less, about 44% by weight or less, about 45% by weight or less, about 46% by weight or less, about 47% by weight or less, about 48% by weight or less, about 49% by weight or less, about 50% by weight or less, or any value encompassed by these endpoints.
[0026] In the polyamides of the present disclosure, the degree of carboxyl end group capping is about 30% by weight or more, about 31% by weight or more, about 32% by weight or more, about 33% by weight or more, about 34% by weight or more, about 35% by weight or more, 36% by weight or more, about 37% by weight or more, about 38% by weight or more, about 39% by weight or more, about 40% by weight or more, about 41% by weight or more, about 42% by weight or more, about 43% by weight or more, about 44% by weight or more, about 45% by weight or more, about 46% by weight or less, about 47% by weight or less, about 48% by weight or less, about 49% by weight or less, about 50% by weight or less, about 51% by weight or less, about 52% by weight or less, about 53% by weight or less, about 54% by weight or less, about 55% by weight or less, about 56% by weight or less, about 57% by weight or less, about 58% by weight or less, about 59% by weight or less, about 60% by weight or less, or any value encompassed by these endpoints.
[0027] Polymers can be described by various statistics related to their molecular weight. For example, the number average molecular weight (Mn) is calculated according to the following equation 7, where N is the number of molecules with mass M in the sample.
[0028]
number
[0029] The mass of the molecules in the sample can be determined, for example, by gel permeation chromatography (GPC). Mn thus provides the average molecular weight of the polymer in the sample. The polyamides of the present disclosure may have a molecular weight of about 10,000 Da or more, about 10,200 Da or more, about 10,400 Da or more, about 10,600 Da or more, about 10,800 Da or more, about 11,000 Da or more, about 11,200 Da or more, about 11,400 Da or more, about 11,600 Da or more, about 11,800 Da or more, about 12,000 Da or more, about 12,200 Da or more, about 12,400 Da or more, about 12,6 ... 00Da or more, about 12,800Da or more, about 13,000Da or more, about 13,200Da or more, about 13,400Da or more, about 13,600Da or more, about 13,800Da or more, about 14,000 Da or more, about 14,200 Da or more, about 14,400 Da or more, about 14,600 Da or more, about 14,800 Da or more, about 15,000 Da or less, about 15,200 Da or less, about 15,400 Da or more Lower, about 15,600 Da or less, about 15,800 Da or less, about 16,000 Da or less, about 16,200 Da or less, about 16,400 Da or less, about 16,600 Da or less, about 16,800 Da or less, About 17,000Da or less, about 17,200Da or less, about 17,400Da or less, about 17,600Da or less, about 17,800Da or less, about 18,000Da or less, about 18,200Da or less, about 1 and has an Mn of 8,400 Da or less, about 18,600 Da or less, about 18,800 Da or less, about 19,000 Da or less, about 19,200 Da or less, about 19,400 Da or less, about 19,600 Da or less, about 19,800 Da or less, about 20,000 Da or less, about 20,200 Da or less, about 20,400 Da or less, about 20,600 Da or less, or any value encompassed by these endpoints.
[0030] The double end-capped polymers of the present disclosure may have a molecular weight of about 11,000 Da or more, about 11,200 Da or more, about 11,400 Da or more, about 11,600 Da or more, about 11,800 Da or more, about 12,000 Da or more, about 12,200 Da or more, about 12,400 Da or more, about 12,600 Da or more, about 12,800 Da or more, about 13,000 Da or more, about 13,200 Da or more, about 13,400 Da or more, about 13,600 Da or more, about 13,800 Da or more, about 14,000 Da or more, about 14,200 Da or more, about 14,400 Da or more, about 14,600 Da or more. The antibody may have an Mn of about 14,800 Da or more, about 15,000 Da or less, about 15,200 Da or less, about 15,400 Da or less, about 15,600 Da or less, about 15,800 Da or less, about 16,000 Da or less, about 16,200 Da or less, about 16,400 Da or less, about 16,600 Da or less, about 16,800 Da or less, about 17,000 Da or less, about 17,200 Da or less, about 17,400 Da or less, about 17,600 Da or less, about 17,800 Da or less, about 18,000 Da or less, or any value encompassed by these endpoints.
[0031] Weight average molecular weight (Mw) can also be used to describe a polymer. Mw can be determined by gel permeation chromatography (GPC). Similarly, Mw can be calculated according to Equation 8 below:
[0032]
number
[0033] In this formula, larger molecules have a greater effect on the measurement than smaller molecules. The polyamides of the present disclosure may have a molecular weight of about 22,000 Da or more, about 23,000 Da or more, about 24,000 Da or more, about 25,000 Da or more, about 26,000 Da or more, about 27,000 Da or more, about 28,000 Da or more, about 29,000 Da or more, about 30,000 Da or more, about 31,000 Da or more, about 32,000 Da or more, about 33,000 Da or more, about 35,000 Da or more, about 36,000 Da or more, about 37,000 Da or more, about 38,000 Da or more, about 39,000 Da or more, about 40,000 Da or more, about 41,000 Da or more, about 42,000 Da or more, about 43,000 Da or more, about 44,000 Da or more, about 45,000 Da or more, about 46,000 Da or more, about 47,000 Da or more, about 48,000 Da or more, about 49,000 Da or more, about 50,000 Da or more, about 51,000 Da or more, about 52,000 Da or more, about 53,000 Da or more, about 54,000 Da or more, about 55,000 Da or more, about 56,000 Da or more, about 57,000 Da or more, about 58,000 Da or more, about 59,000 Da or more, about 60,000 Da or more, about 61,000 Da or more, about 62,000 Da or more, and has a Mw of 1,000 Da or more, about 42,000 Da or more, about 43,000 Da or less, about 44,000 Da or less, about 45,000 Da or less, about 46,000 Da or less, about 47,000 Da or less, about 48,000 Da or less, about 49,000 Da or less, about 50,000 Da or less, about 51,000 Da or less, about 52,000 Da or less, about 53,000 Da or less, about 54,000 Da or less, about 55,000 Da or less, about 56,000 Da or less, or any value encompassed by these endpoints.
[0034] In the doubly end-capped polymers of the present disclosure, the Mw can be about 22,000 Da or more, about 23,000 Da or more, about 24,000 or more, about 25,000 or more, about 26,000 or more, about 27,000 or more, about 28,000 Da or less, about 29,000 Da or less, about 30,000 Da or less, about 31,000 Da or less, about 32,000 Da or less, about 33,000 Da or less, about 35,000 Da or less, about 36,000 Da or less, or any value encompassed by these endpoints.
[0035] The ratio of Mw to Mn, referred to as dispersity or polydispersity index, provides further information about a polymer. Specifically, polymer dispersity is a measure of the molecular weight distribution in any polymer sample. As the sample approaches a homogeneous state, the dispersity approaches 1. Polyamides of the present disclosure have a dispersity of about 1.8 or greater, about 1.9 or greater, about 2.0 or greater, about 2.1 or greater, about 2.2 or greater, about 2.3 or greater, about 2.4 or greater, about 2.5 or greater, about 2.6 or greater, about 2.7 or greater, about 2.8 or less, about 2.9 or less, about 3.0 or less, about 3.1 or less, about 3.2 or less, about 3.3 or less, about 3.4 or less, about 3.5 or less, or any value encompassed by these endpoints, or any value encompassed by these endpoints.
[0036] The double endcapped polymers of the present disclosure may have a dispersity of about 1.8 or greater, about 1.9 or greater, about 2.0 or greater, about 2.1 or greater, about 2.2 or less, about 2.3 or less, about 2.4 or less, about 2.5 or less, or any value encompassed by these endpoints.
[0037] Mn and Mw, as well as the dispersity, can be determined by gas permeation chromatography (GPC).
[0038] The Z-average molecular weight, Mz, can also be used to describe a polymer. Mz is calculated according to Equation 9 below:
[0039]
number
[0040] The polyamides of the present disclosure may have a molecular weight of about 58,500 Da or more, about 59,000 Da or more, about 59,500 Da or more, about 60,000 Da or more, about 60,500 Da or more, about 61,000 Da or more, about 61,500 Da or more, about 62,000 Da or more, about 62,500 Da or more, about 63,000 Da or less, about 63,500 Da or less, about 64, and has an Mz of about 64,500 Da or less, about 65,000 Da or less, about 65,500 Da or less, about 66,000 Da or less, about 66,500 Da or less, about 67,000 Da or less, about 67,500 Da or less, about 68,000 Da or less, about 68,500 Da or less, or any value encompassed by these endpoints.
[0041] The ratio of Mz to Mw can also be used to describe a polymer. Polyamides of the present disclosure can have a ratio of Mz to Mw of about 1.60 or greater, about 1.61 or greater, about 1.62 or greater, about 1.63 or less, about 1.64 or less, about 1.65 or less, about 1.66 or less, or within any range encompassed by these endpoints.
[0042] Polyamides may also be described by their formic acid viscosity (FAV) as determined by the method set forth in ASTM D- 789. Polyamides of the present disclosure may have an FAV of about 28 or greater, about 29 or greater, about 30 or greater, about 31 or greater, about 32 or greater, about 33 or greater, about 34 or greater, about 35 or greater, about 36 or greater, about 37 or greater, about 38 or greater, about 39 or less, about 40 or less, about 41 or less, about 42 or less, about 43 or less, about 44 or less, about 45 or less, or any value encompassed by these endpoints.
[0043] The double end-capped polymers of the present disclosure may have an FAV of about 28 or greater, about 29 or greater, about 30 or greater, about 31 or greater, about 32 or less, about 33 or less, about 34 or less, about 35 or less, about 36 or less, or any value encompassed by these endpoints.
[0044] Polyamides may also be described by their relative viscosity (RV) as determined by the method set forth in GB / T 12006.1-2009 / ISO 307:2007. Polyamides of the present disclosure may have an RV of about 2.0 or greater, about 2.1 or greater, about 2.2 or greater, about 2.3 or greater, about 2.4 or less, about 2.5 or less, about 2.6 or less, or any value encompassed by these endpoints.
[0045] The double endcapped polymers of the present disclosure may have an RV of about 2.0 or greater, about 2.1 or greater, about 2.2 or less, about 2.3 or less, about 2.4 or less, or any value encompassed by these endpoints.
[0046] The polyamides of the present disclosure may have a relatively low extractable content as measured according to ISO 6427. For example, the extractable content may be about 2.0% or less, about 1.5% or less, about 1.0% or less, about 0.5% or less, or about 0.1% or less.
[0047] The polyamides of the present disclosure may have a melt flow index (MFI), as determined by the method described in ASTM D1238, of 20 g / 10 min or greater, about 25 g / 10 min or greater, about 30 g / 10 min or less, about 35 g / 10 min or less, about 40 g / 10 min or less, or any value encompassed by these values.
[0048] The end-capped polymers of the present disclosure unexpectedly exhibit low viscosity even at high molecular weights. Surprisingly, it has been discovered that the choice of end-capping agent can have an effect on the viscosity of the resulting polymer. In particular, while double-end-capping polymers appear to result in lower viscosity at higher molecular weights, double-end-capping alone does not appear to be sufficient to achieve the surprising results of the present disclosure. Even double-end-capping polymers with similar molecular weights and total end-capping percentages can exhibit unpredictable viscosity variations depending on the end-capping agent used.
[0049] For example, as further demonstrated below, the choice of stearic acid versus acetic acid as the end-capping agent for the N-terminus of the polymer appears to have little effect, while the choice of cyclohexylamine versus stearylamine (octadecylamine) appears to have a large effect on the viscosity of the polymer.
[0050] 2. Polyamide synthesis As shown in Formula 1 above, polyamides can be synthesized by first hydrolyzing a lactam to obtain a monomer having an amine end group and a carboxyl end group. The lactam can be, for example, a β-lactam (2-azetidinone), a γ-lactam (2-pyrrolidone), a δ-lactone (2-piperidinone), or an ε-lactam (caprolactam). The hydrolysis can be carried out under basic or acidic conditions. The hydrolysis can be carried out in the presence of one or more catalysts. The one or more catalysts can be selected from the group consisting of phosphorous acid, alkyl- and aryl-substituted phosphonic acids, hypophosphorous acid, and phosphoric acid.
[0051] Hydrolysis can be carried out at a temperature of about 230°C or higher, about 235°C or higher, about 240°C or higher, about 245°C or higher, about 250°C or lower, about 255°C or lower, about 260°C or lower, about 265°C or lower, about 270°C or lower, or any value encompassed by these endpoints.
[0052] The hydrolysis can be carried out at a pressure of about 40 psig or greater, about 45 psig or greater, about 50 psig or greater, about 55 psig or less, about 60 psig or less, about 65 psig or less, about 70 psig or less, or any range within these endpoints inclusive.
[0053] Following hydrolysis of the lactam, the monomer may be subjected to polycondensation conditions. The polycondensation may be carried out in the presence of one or more catalysts. The one or more catalysts may be selected from the group consisting of phosphorous acid, alkyl- and aryl-substituted phosphonic acids, hypophosphorous acid, and phosphoric acid.
[0054] Polycondensation can be carried out at a temperature of about 230°C or higher, about 235°C or higher, about 240°C or higher, about 245°C or higher, about 250°C or lower, about 255°C or lower, about 260°C or lower, about 265°C or lower, about 270°C or lower, or any value encompassed by these endpoints.
[0055] As shown in Equation 1 above, water is produced in the polycondensation reaction. A water removal process may be applied via nitrogen (N2) injection and / or a vacuum process. To remove excess water, a pressurized or vacuum process is introduced, which drives the equilibrium of the polycondensation reaction toward the product side (i.e., the right side), resulting in an increased degree of polymerization for the polyamide polymer. To continuously drive the equilibrium of the polycondensation reaction toward the right side as much as possible, maximum gas addition or vacuum is used, thereby obtaining a polyamide polymer with an increased degree of polymerization.
[0056] Polycondensation results in a polyamide having amine and carboxyl end groups, which can be capped with an end-capping agent to terminate the polymerization process, as discussed above.
[0057] A multi-kettle train in series can be used to synthesize the polyamides of the present disclosure. For example, a typical polyamide polymer can be synthesized using multiple kettles in series at a run rate of approximately 13,000 lb / hr to 15,000 lb / hr. Without being bound by theory, it is believed that operating the polycondensation step at a lower speed or run rate can result in a polyamide polymer with lower polydispersity or narrower molecular weight distribution. For example, the run rate can be about 20% lower, about 25% lower, about 30% lower, about 35% lower, or about 40% lower. For example, the run rate can be about 9000 lb / hr or higher, about 10,000 lb / hr or higher, about 11,000 lb / hr or lower, or any value encompassed by these endpoints.
[0058] It is believed that lower operating rates or conversion rates, and the resulting increased residence time of the reactants in any kettle, may have been the reason for the appreciably narrower molecular weight distribution (lower polydispersity). The molecular weight distribution was confirmed by gel permeation chromatography (GPC). As noted above, narrow molecular weight distribution is also indicated by the polydispersity (Mw / Mn ratio). These conditions resulted in the synthesis of Polymer #1, a doubly end-capped polymer with an average Mw / Mn of 3.45 and an FAV of 41-43, and Polymer #2, a doubly end-capped polymer with an average Mw / Mn of 3.33 and an FAV of 35-37.
[0059] 3.Mixed materials The polyamides of the present disclosure can be compounded to provide glass-filled materials. Generally, glass-filled compounds are stronger than their corresponding parent polymers, but have higher melt flow indexes (MFI) and formic acid viscosities (FAV) compared to the parent polymers, which can lead to processing difficulties.
[0060] Surprisingly, it has been found that the polyamides of the present disclosure can be used in compounded materials without reducing their processability. Specifically, as further described below and shown in Figure 2, unexpected improvements in melt flow were observed in the dual-end-capped glass fiber-filled compounds of the present disclosure compared to non-end-capped and single-end-capped base resins. This improved melt flow can improve processability during molding. Improved processability can also allow the material to be used in high aspect ratio molds and increase molding productivity.
[0061] The polyamide compounded materials of the present disclosure may contain glass fibers in an amount of about 30% by weight or more, about 31% by weight or more, about 32% by weight or more, about 33% by weight or more, about 34% by weight or more, about 35% by weight or more, about 36% by weight or less, about 37% by weight or less, about 38% by weight or less, about 39% by weight or less, about 40% by weight or less, or any value encompassed by these endpoints.
[0062] The melt flow index (MFI) of the glass fiber filled material, as determined by the method described in ASTM D1238, can be about 30 g / 10 min or more, about 31 g / 10 min or more, about 32 g / 10 min or more, about 33 g / 10 min or more, about 34 g / 10 min or more, about 35 g / 10 min or more, about 36 g / 10 min or more, about 37 g / 10 min or more, about 38 g / 10 min or less, about 39 g / 10 min or less, about 40 g / 10 min or less, about 41 g / 10 min or less, about 42 g / 10 min or less, about 43 g / 10 min or less, about 44 g / 10 min or less, about 45 g / 10 min or less, or any range encompassed by these endpoints.
[0063] The formic acid viscosity (FAV) of the polyamides of the present disclosure is not expected to increase significantly after compounding, as discussed further below. Specifically, the FAV of the glass-filled compounds of the present disclosure, as determined by the method described in ASTM D-789, can be about 33 or greater, about 34 or greater, 35 or greater, about 36 or greater, about 37 or greater, about 38 or greater, about 39 or less, about 40 or less, about 41 or less, about 42 or less, about 43 or less, or any value encompassed by these endpoints.
[0064] As discussed further below, further unexpected improvements are observed when a "high melt flow" doubly end-capped nylon-6 polyamide is added as a process-enhancing additive to a nylon-66 glass-filled compound. The non-end-capped nylon-6 can be added in an amount of about 10% by weight or more, about 12% by weight or more, about 15% by weight or more, about 17% by weight or less, about 20% by weight or less, or any range inclusive of these endpoints. The addition of 15% by weight of non-end-capped nylon-6 (weight / weight basis of nylon) polyamide resulted in an 83% improvement in melt flow, as measured by the melt flow index (MFI). The doubly end-capped nylon-6 can be added in an amount of about 10% by weight or more, about 12% by weight or more, about 15% by weight or more, about 17% by weight or less, about 20% by weight or less, or any range inclusive of these endpoints. The addition of 15% double end-capped nylon 6 (weight / weight basis of nylon) also resulted in a 160% improvement in melt flow, as measured by the melt flow index (MFI).
[0065] This improvement in melt flow for nylon-66 glass-filled compounds may result in improved surface finish, reduced energy requirements during injection molding, the ability to mold the same part using smaller molding machines, molding high aspect ratio parts, and molding more parts in multi-cavity molds.
[0066] Example Example 1: Extractables determination Oligomer and TOC (total organic carbon) tests were performed via capillary melt stability testing to determine the amount of caprolactam reformation after exposure to elevated temperatures over a period of time. Six samples were tested using capillary viscometric melt stability at 275°C for 30 minutes to determine the reformation of caprolactam. Prior to testing, the samples were vacuum dried at 80°C for 12 hours. The samples were allowed to absorb 2000±250 ppm of water, after which the test was repeated. Initial results for Polymer 1 and Polymer 2 show similar extractable levels (0.94 wt% for Polymer 1 and 0.59 wt% for Polymer 2). However, after exposure to heat and moisture, Polymer 2 exhibits lower extractable levels than Polymer 1.
[0067] Example 2: Tensile strength As shown in Figure 1, tensile strength was tested for a variety of unend-capped (UT), single-end-capped (MT), and double-end-capped (DT) materials using the method described in ASTM D-638. The results indicate that tensile strength appears to be independent of end-cap. Furthermore, for the materials tested, the formic acid viscosity (FAV) also varied from 36 (Polymer 2 in Figure 1) to 60 (DT#1 in Figure 1), and tensile strength also appears to be independent of FAV.
[0068] Example 3: Injection molding of glass-filled materials The double-end-capped nylon-6 resin is compounded with additives, which may include process lubricants, color pigments, inorganic or glass reinforcements, stabilizers, and other performance modifiers. Compounding is typically carried out using a co-rotating twin-screw extruder equipped with zone heating, an additive feeder, and an extrusion die. The compounding extruder is preheated to a temperature above the melting point of the polyamide, and then the polyamide resin and desired additives are fed into the screw. The screw is rotated at a constant speed to thoroughly mix the components, and the molten blend or mixture is extruded through a die. The molten strand is extruded through the die and falls into a water bath, where it solidifies and cools. The solid strand is cut into standard-sized pellets using a rotating blade pelletizer. The cut pellets are then dried to a moisture level of less than 2000 ppm water before further processing. Processing may be carried out by injection molding, which involves remelting the blend or mixture in a single-screw extruder and then high-speed injection molding of the melt into a temperature-controlled mold.
[0069] Example 4: Properties of glass-filled compounds The effect of end-capping (both single-end and double-end capping) of nylon-6 polyamide was evaluated in glass fiber-filled formulations. Melt flow index (MFI) and mechanical properties were evaluated to determine whether there was any unexpected improvement in melt flow along with the retention or improvement of mechanical properties associated with the lower viscosity end-capped polyamide. The amounts of glass fiber and other ingredients in the formulation are shown in Table 1 below, where "NT" represents non-end-capped, "MT" represents single-end-capped, and "DT" represents double-end-capped. "MB" refers to a masterbatch consisting of 50% carbon black and 50% of the nylon component listed in column 1.
[0070] [Table 1]
[0071] The FAV values of the melt-stable samples were measured using the formic acid viscosity test method of standard ASTM D-789. The RV values were determined as shown in Equation 10 below. Equation 10: RV(96%H2SO4ASTM D-789)=0.651×FAV 0.357 Table 2 below lists the results obtained for both FAV and RV.
[0072] [Table 2]
[0073] FIG. 2 shows the trend of formic acid viscosity (FAV) versus melt flow index (MFI) for 33% glass-filled compounds as a function of their end-capping, with non-end-capped polyamides represented as "UT," single-end-capped polyamides represented as "MT," and double-end-capped polyamides represented as "DT."
[0074] 3 shows that mechanical properties such as tensile strength and notched impact strength remained relatively constant despite changes in end-capping, with non-end-capped polyamides designated as "UT," single-end-capped polyamides designated as "MT," and double-end-capped polyamides designated as "DT." For comparison, two additional nylon samples are included: one with a relative viscosity (RV) of 2.7 designated as "2.7RV comp" and one with an RV of 2.4 designated as "2.4RV comp."
[0075] The same trends are observed for other mechanical properties such as tensile elongation, tensile modulus, unnotched Charpy, flexural modulus, and flexural strength using standard methods shown in Table 3. The test results are shown in Tables 4 and 5.
[0076] [Table 3]
[0077] [Table 4]
[0078] [Table 5]
[0079] Example 5: FAV of unblended and blended materials Formic acid viscosity (FAV) was measured for various non-end-capped, single-end-capped, and double-end-capped materials before and after compounding. Table 6 below shows the change in FAV.
[0080] [Table 6]
[0081] While the non-endcapped and single-endcapped polyamides show significant changes in FAV after compounding, the doubly endcapped polyamides of the present disclosure (Polymer 1 and Polymer 2) show little change in FAV. This data is presented in graphical form in Figure 4.
[0082] Example 6: Spiral flow improvement in uncompounded materials To determine whether end-capped materials flow better in a mold during processing than corresponding non-end-capped materials, two samples were compared. UT#2 was selected as a representative non-end-capped material with similar Mw and Mn, and Polymer 2 was selected as a double-end-capped material. Spiral flow was measured according to ASTM D3123 to demonstrate the material flow length in the mold during the injection molding process. As shown in Figure 5, the double-end-capped polymer (Polymer 2) had a longer flow path (33 mm) than the non-end-capped polymer (UT#2), which had a flow path of 23 mm under the same conditions. These results suggest that the end-capped polymers of the present disclosure exhibit better or greater flow properties than non-end-capped polymers during injection molding.
[0083] Example 7: Improving Melt Flow in Glass Fiber Compounds The melt flow index (MFI) of glass-filled nylon-66 was tested both with and without added polyamide using the method described in ASTM D 1238. As shown in Table 7 below, when 15% of a low FAV double end-capped polyamide (such as Polymer 2) was added to glass-filled nylon-66, there was a significant increase in melt flow.
[0084] [Table 7]
[0085] In contrast, as shown in Table 7, the addition of non-end-capped polyamide UT#1 (non-end-capped sample #1), which has a similar FAV (40 FAV), resulted in a much smaller improvement in melt flow index (MFI).
[0086] Example 8: Typical synthesis method for single and double end-capped polyamides on a 12 liter scale Below are typical methods used to synthesize single- and double-end-capped polyamides on a 12 liter scale. One skilled in the art would be able to adjust the reaction conditions and reagents based on the desired end product.
[0087] Caprolactam (5584 g) and acetic acid (13.5 g) are charged to a 12 L reactor. Deionized water (102 g) is then added. After pressure testing the reactor with nitrogen, the reactor contents are slowly heated to 230°C to initiate the reaction. The reactor is maintained at 230°C for 60 minutes, and then heated to 250°C over 20 minutes while purging with nitrogen. After a reaction time of 3 hours, the molten polymer is then extruded by gravity into a single strand, quenched with ice water, and pelletized. After leaching and drying the pellets, the solution viscosity in formic acid is determined according to the method of ASTM D789. End group analysis is also performed on the dried polyamide.
[0088] A slightly modified method can be used to prepare the double end-capped polyamide. Caprolactam (5513 g), cyclohexylamine (CHA) (21.3 g), and stearic acid (63.8 g) are charged to a 12-liter reactor. Deionized water (101 g) is added. After pressure testing the reactor with nitrogen, the reactor contents are slowly heated to 230°C to initiate the reaction. The reactor is then maintained at 230°C for 60 minutes, followed by a 20-minute ramp to 250°C to initiate polymerization. After 7 hours of reaction, the molten polymer is then gravity extruded into a single strand, quenched in ice water, and pelletized. After leaching and drying the pellets, the solution viscosity in formic acid is determined according to ASTM D789. End group analysis is also performed on the dried polyamide.
[0089] Example 9: Melt Stability of Singly and Doubly End-Capped Polymers vs. Unend-Capped Polymers Measuring polyamide melt viscosity by using a capillary rheometer at a constant shear rate is one way to evaluate the increase in polyamide viscosity over time. The term melt stability is used to describe the tendency of a polyamide melt to resist an increase in polyamide viscosity during melt compounding or capillary rheometer measurement. The slope of the melt viscosity with time can be used as a quantitative measure of melt stability, with lower values indicating better melt stability.
[0090] Polyamide 6 (PA6) samples were prepared from caprolactam. Table 8 below shows whether the samples were unend-capped (UT), single-end-capped (MT), or double-end-capped (DT), as well as the end-capping level and end-capping agent used, with different end-capping levels affecting the total end-capping percentage. The amounts of acid end-capping agent and amine end-capping agent are listed as meq / kg charged to the reactor.
[0091] [Table 8]
[0092] Next, the crystallization temperature (T c ) and melting point (T m ) was determined for the samples via differential scanning calorimetry (DSC). The results are shown in Table 9 below, along with the FAV, RV, and Mn. Amine end groups are shown in Table 9 in meq / kg.
[0093] [Table 9]
[0094] Table 10 shows the percent N-terminal endcapping (%NH), determined according to Equation 5, the percent C-terminal endcapping (%COOH), determined according to Equation 6, and the percent total endcapping (%TT), determined according to Equation 4, as well as the zero shear viscosity at 260°C, the melt flow rate at 1.21 at 235°C, and the spiral flow.
[0095] [Table 10]
[0096] Figure 6B shows a histogram of viscosity / time slope values for the PA6 example, with values grouped into levels of melt stability (good, better, best, etc.) along with the level of total end-capping percentage for the sample. It can be seen that some samples may have improved melt flow (as measured by melt flow index, MFI, at 235°C and 1.2 kg) compared to samples with similar relative solution viscosity but lower total end-capping percentage and higher viscosity / time slope.
[0097] The calculated percent amine end groups (%NH), calculated percent carboxylic acid end groups (%COOH), and total endcapping (%TT), along with the viscosity slope and melt flow index, are shown in Table 10. The total endcapping percentage is ranked as fair (0%), good (26-27%), better (34-43%), and best (55-59%).
[0098] [Table 11]
[0099] Based on these results, it appears that PA6 samples with a higher total end-capping percentage may be better than PA6 with a low or 0% total end-capping percentage in terms of reducing the melt viscosity increase during melt residence time (in capillary rheometry or other melt processes). This may result in better flow during processing steps such as injection molding, as well as an improved ability to mold thin, long, and / or high-aspect-ratio complex parts. It can also be concluded that it is the total end-capping percentage, rather than the difference between single and double end-capping, that drives the improved melt stability and flow behavior.
[0100] Aspects Embodiment 1 is an end-capped polyamide having a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da and a formic acid viscosity (FAV) of less than 45.
[0101] Aspect 2 is the end-capped polyamide according to Aspect 1, having a weight average molecular weight (Mw) of 22,000 Da to 36,000 Da and a formic acid viscosity (FAV) of less than 45.
[0102] A third aspect is the end-capped polyamide according to the first or second aspect, which has carboxyl terminal groups and the end-capped percentage of the carboxyl terminal groups is 30% by weight to 60% by weight.
[0103] Aspect 4 is the end-capped polyamide of any one of Aspects 1 to 3, having amine end groups, and having an end-capped percentage of amine end groups of 30% to 50% by weight.
[0104] A fifth embodiment is the end-capped polyamide of any one of the first to fourth embodiments, having a relative viscosity (RV) of 2.0 to 2.6.
[0105] A sixth aspect is the end-capped polyamide according to any one of the first to fifth aspects, which has a melt flow index (MFI) of 20 g / 10 min to 40 g / 10 min.
[0106] A seventh aspect is the end-capped polyamide according to any one of the first to sixth aspects, wherein the ratio of the weight average molecular weight (Mw) of the end-capped polyamide to the number average molecular weight (Mn) of the end-capped polyamide is 1.8 to 3.5.
[0107] An eighth embodiment is the end-capped polyamide of any one of the first to seventh embodiments, further comprising glass fibers in an amount of 30% to 40% by weight, based on the combined weight of the end-capped polyamide and the glass fibers.
[0108] A ninth aspect is a method for synthesizing an end-capped polyamide, the method including hydrolyzing a lactam to provide a monomer having amine and carboxyl end groups, polycondensing the monomer at a temperature of 230°C to 270°C to provide a polyamide polymer having amine and carboxyl end groups, and end-capping the polyamide by reaction with at least one chain end-capping agent to provide an end-capped polyamide having a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da and a formic acid viscosity (FAV) of less than 45.
[0109] Example 10 is the method of example 9, wherein the end-capped polyamide has a weight average molecular weight of 22,000 Da to 36,000 Da and a formic acid viscosity (FAV) of less than 45.
[0110] Example 11 is the method of example 9 or example 10, wherein the chain end capping agent is selected from the group consisting of cyclohexylamine, stearylamine, stearic acid, and acetic acid.
[0111] Example 12 is the method of any one of Examples 9 to 11, wherein the end-capped polyamide has a percent end-capped carboxyl end groups of 30% to 60% by weight.
[0112] Example 13 is the method of any one of Examples 9 to 12, wherein the end-capped polyamide has an amine end group end-cap percentage of 30% to 50% by weight.
[0113] Example 14 is the method of any one of Examples 9 to 13, further comprising adding glass fibers in an amount of 30% to 40% by weight, based on the combined weight of the polyamide and the glass fibers, to provide a glass-filled polyamide.
[0114] Example 15 is a polyamide composition comprising the glass-filled polyamide of Example 14 in an amount of 80% to 90% by weight, based on the total weight of the composition, and a second polyamide in an amount of 10% to 20% by weight, based on the total weight of the composition.
[0115] Example 16 is the composition of example 15, wherein the second polyamide is selected from the group consisting of non-endcapped polyamides and doubly endcapped polyamides.
[0116] Aspect 17 is the composition of aspect 15 or aspect 16, wherein the composition has a melt flow index (MFI) of 30 g / 10 min to 45 g / 10 min.
[0117] Example 18 is the composition of any one of Examples 15 to 17, wherein the ratio of the weight average molecular weight (Mw) of the end-capped polyamide to the number average molecular weight (Mn) of the end-capped polyamide is 1.8 to 3.5.
[0118] While this invention has been described in terms of exemplary designs, the present invention may be further modified within the spirit and scope of this disclosure. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains.
Claims
1. An end-capped polyamide, The following formula (where Ni is the number of molecules with mass Mi in the sample): [Equation 1] a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da, calculated by the formula (I) and determined by gel permeation chromatography (GPC); a formic acid viscosity (FAV) of 28 to 45, as determined by the method described in ASTM D-789; The following formula (where Ni is the number of molecules with mass Mi in the sample): [Equation 2] a number average molecular weight (Mn) of 10,000 Da to 20,600 Da, calculated by the formula (I) and determined by gel permeation chromatography (GPC); a ratio of the weight average molecular weight (Mw) of the end-capped polyamide to the number average molecular weight (Mn) of the end-capped polyamide of 1.8 to 3.5; a percent endcapping of carboxyl end groups of 30% to 60% by weight; and a percent endcapping of amine end groups of 30% to 50% by weight; and obtained by polycondensation of monomers derived from lactams, End-capped polyamide.
2. 2. The end-capped polyamide of claim 1, having a weight average molecular weight (Mw) of 22,000 Da to 36,000 Da.
3. The end-capped polyamide according to claim 1 or claim 2, wherein the end-capped polyamide has a relative viscosity (RV) of 2.0 to 2.6, as determined by the method described in GB / T 12006.1-2009 / ISO 307:2007.
4. The end-capped polyamide according to any one of claims 1 to 3, having a melt flow index (MFI) of 20 g / 10 min to 40 g / 10 min, as determined by the method described in ASTM D1238.
5. 5. The end-capped polyamide according to claim 1, wherein the lactam is caprolactam.
6. The end-capped polyamide according to any one of claims 1 to 5, and glass fibers in an amount of 30% to 40% by weight, based on the combined weight of the end-capped polyamide and the glass fibers; Glass-filled polyamides, including:
7. 7. The glass-filled polyamide of claim 6, having a melt flow index (MFI) of 30 g / 10 min to 45 g / 10 min, as determined by the method described in ASTM D1238.
8. A method for synthesizing an end-capped polyamide, comprising the steps of: hydrolyzing the lactam to provide a monomer having an amine end group and a carboxyl end group; polycondensing the monomers at a temperature of 230°C to 270°C to provide a polyamide polymer having amine end groups and carboxyl groups; and end-capping the polyamide by reaction with at least one chain end-capping agent to provide an end-capped polyamide; Includes The end-capped polyamide is The following formula (where Ni is the number of molecules with mass Mi in the sample): [Equation 3] a weight average molecular weight (Mw) of 22,000 Da to 56,000 Da, calculated by the formula (I) and determined by gel permeation chromatography (GPC); a formic acid viscosity (FAV) of 28 to 45, as determined by the method described in ASTM D-789; The following formula (where Ni is the number of molecules with mass Mi in the sample): [Equation 4] a number average molecular weight (Mn) of 10,000 Da to 20,600 Da, calculated by the formula (I) and determined by gel permeation chromatography (GPC); a ratio of the weight average molecular weight (Mw) of the end-capped polyamide to the number average molecular weight (Mn) of the end-capped polyamide of 1.8 to 3.5; a percent endcapping of carboxyl end groups of 30% to 60% by weight; and a percent endcapping of amine end groups of 30% to 50% by weight; having method.
9. The method of claim 8, wherein the end-capped polyamide has a weight average molecular weight of 22,000 Da to 36,000 Da.
10. 10. The method of claim 8 or claim 9, wherein the chain end capping agent is selected from the group consisting of cyclohexylamine, stearylamine, stearic acid, and acetic acid.
11. 11. The method of any one of claims 8 to 10, wherein the lactam is caprolactam.
12. 12. The method of any one of claims 8 to 11, wherein the polycondensation is carried out at an operating rate of from 9000 lb / hr to 11000 lb / hr.
13. A method for producing glass fiber-reinforced polyamide, comprising the steps of: Synthesizing an end-capped polyamide by the method of any one of claims 8 to 12, and adding glass fibers in an amount of 30% to 40% by weight based on the combined weight of the polyamide and glass fibers; A method comprising:
14. 1. A polyamide composition comprising: glass-filled nylon-66 polyamide in an amount of 80% to 90% by weight based on the total weight of the composition; the end-capped polyamide of claim 5 in an amount of 10% to 20% by weight based on the total weight of the composition; 1. A polyamide composition comprising:
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