Polyester resins and films containing recycled bis(2-hydroxyethyl) terephthalate
By controlling diethylene glycol impurities in recycled BHET to specific levels, the quality of polyester resins and films is maintained, achieving heat resistance and uniform shrinkage comparable to virgin resin, suitable for heat-shrinkable films.
Patent Information
- Application Number
- JP2024516685
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-04-20
- Filing Date
- 2023-04-18
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2043-04-18
AI Technical Summary
Impurities in recycled bis(2-hydroxyethyl) terephthalate (BHET) derived from depolymerized waste polyester, such as diethylene glycol derivatives, affect the quality and properties of polyester resins and films, particularly leading to deterioration in heat shrinkage rates.
Adjusting the content of diethylene glycol derivatives in recycled BHET to specific levels or below, ensuring a heat shrinkage rate of 600%/°C or less, measured by a defined formula, to maintain quality equivalent to virgin resin.
The resulting polyester resin and films exhibit excellent heat resistance and uniform heat shrinkage characteristics, making them suitable for various applications, including heat-shrinkable films, despite being chemically recycled.
Smart Images

Figure 0007770548000001 
Figure 0007770548000002 
Figure 0007770548000003
Abstract
Description
Detailed Description of the Invention
[0001] [Technical field] The present invention relates to polyester resins containing recycled bis(2-hydroxyethyl) terephthalate and films prepared therefrom.
[0002] [Background technology] Due to its excellent mechanical strength, heat resistance, transparency, and gas barrier properties, polyester is widely used as a material for beverage containers, packaging films, audio and video films, etc. Furthermore, polyester is widely produced worldwide as an industrial material for medical fibers, tire cords, etc. In particular, polyester sheets or polyester plates have good transparency and excellent mechanical strength, and are therefore widely used as raw materials for cases, boxes, partitions, shelves, panels, packaging materials, building materials, interior and exterior materials, etc.
[0003] As a result, plastic waste, including polyester, is generated at uncontrollable levels worldwide every year. In recent years, countries around the world have formulated regulations and plans for recycling waste plastic resources, including waste polyester. For example, there are attempts to use a certain percentage or more of recycled resin in packaging materials used in various fields. Physical and chemical methods are used to recycle waste polyester, but physical recycling methods cannot guarantee purity and are not widely used.
[0004] Chemical recycling involves cleaving the ester bonds of waste polyesters to depolymerize them. Reactions such as glycolysis, hydrolysis, methanolysis, and aminolysis are used. Among these, glycolysis involves decomposing waste polyesters by adding glycols such as ethylene glycol or diethylene glycol at high temperatures. The resulting reaction product contains primarily bis(2-hydroxyethyl) terephthalate (BHET). After crystallization or purification, bis(2-hydroxyethyl) terephthalate can be used as a raw material for preparing unsaturated polyesters or ester polyols.
[0005] [Prior art document] [Patent Document 1] Korean Patent No. 1386683 [Patent Document 2] U.S. Patent No. 7,211,193 [Non-Patent Document 1] Park, SH., Kim, SH., Poly(ethylene terephthalate) recycling for high value added textiles, Fashion and Textiles 1, 1 (2014)
[0006] [DISCLOSURE OF THE INVENTION] [Technical issues] When bis(2-hydroxyethyl) terephthalate (BHET), obtained by depolymerization of waste polyester, is used to prepare polyester resins, impurities in BHET can cause deterioration in the quality of the final polyester product.
[0007] To solve this problem, the inventors conducted research and discovered that diethylene glycol derivatives, which are present as impurities in recycled BHET used in the polymerization of polyester resins, remain in the final polymerized resin, thereby affecting the quality and properties of films made from recycled BHET, such as the heat shrinkage rate.
[0008] Therefore, the inventors have adjusted the diethylene glycol derivatives derived from recycled BHET that remain as impurities in polyester resins to a certain level or below, thereby improving the heat resistance of the resin and preventing a deterioration in the heat shrinkage properties of films made from recycled BHET.
[0009] Therefore, an object of the present invention is to provide a recycled polyester resin and an article, particularly a heat-shrinkable film, containing the same, which has quality equivalent to that of virgin resin despite being prepared by chemical recycling.
[0010] [Methods for solving the problem] According to the present invention, there is provided a polyester resin containing recycled bis(2-hydroxyethyl) terephthalate obtained by depolymerizing waste polyester, wherein the slope of the thermal shrinkage rate calculated by the following formula (A) is 600% / °C or less.
number
[0011] In formula (A), HS1 is the heat shrinkage rate (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage rate (%) at a temperature of glass transition temperature (Tg) - 5°C. The heat shrinkage rate is measured in the transverse direction (TD) of the film at each temperature after the polyester resin is extruded into a film and then stretched 5 times in the transverse direction (TD).
[0012] Furthermore, the present invention provides a method for preparing a polyester resin, comprising a step of polymerizing a polyester resin using recycled bis(2-hydroxyethyl) terephthalate obtained by depolymerizing waste polyester, wherein the recycled bis(2-hydroxyethyl) terephthalate has a total diethylene glycol ester peak area fraction of less than 2% when measured by high performance liquid chromatography (HPLC), and the slope of the heat shrinkage of the polyester resin, calculated by the above formula (A), is 600% / °C or less.
[0013] Further, according to the present invention, there is provided an article comprising this polyester resin, and further, according to the present invention, there is provided a heat-shrinkable polyester film comprising this polyester resin.
[0014] [Advantageous effects of the invention] In the polyester resin of the present invention, the diethylene glycol derivatives derived from recycled BHET and remaining in the polyester resin are controlled to a certain level or less. Therefore, even though the polyester resin is recycled by chemical recycling, there is almost no deterioration in the quality of the resin, such as heat resistance, compared to virgin resin.
[0015] Therefore, articles manufactured using the polyester resin according to the present invention are environmentally friendly products with excellent quality. In particular, polyester films have excellent heat resistance, uniform heat shrinkage characteristics, and an appropriate gradient of heat shrinkage rate with respect to temperature, and therefore can be used as packaging materials such as heat-shrinkable films in various fields.
[0016] [Best Mode for Carrying Out the Invention] The present invention will now be described in more detail.
[0017] In this specification, the terms used to refer to components are used to distinguish them from one another and are not intended to limit the scope of the embodiments. Furthermore, in this specification, the singular expressions "a," "an," and "the" are to be construed as including the plural as well, unless the context clearly dictates otherwise.
[0018] In this specification, terms such as "first," "second," etc. are used to describe various components. However, the components should not be limited by the terms. The terms are used only to distinguish one component from another.
[0019] As used herein, the term "comprises" is intended to specify certain features, regions, steps, methods, elements, and / or components, and does not exclude the presence or addition of any other features, regions, steps, methods, elements, and / or components, unless specifically stated to the contrary.
[0020] Bis(2-hydroxyethyl) terephthalate The polyester resin according to the present invention comprises bis(2-hydroxyethyl) terephthalate obtained by depolymerization of waste polyester.
[0021] Bis(2-hydroxyethyl) terephthalate is an ester of two ethylene glycols and one terephthalic acid. For example, bis(2-hydroxyethyl) terephthalate is a compound formed as an intermediate in the preparation of polyesters such as polyethylene terephthalate (PET) via the polymerization of ethylene glycol with terephthalic acid or its esters.
[0022] Bis(2-hydroxyethyl) terephthalate (BHET), which is used as a polymerization raw material for the polyester resin of the present invention, can be obtained from waste polyesters containing repeating units of ethylene glycol and terephthalic acid, such as polyethylene terephthalate (PET) or glycol-modified polyethylene terephthalate (PETG), by well-known depolymerization methods, such as glycolysis, hydrolysis, and methanolysis.
[0023] In this specification, bis(2-hydroxyethyl) terephthalate (BHET) obtained by depolymerization of waste polyester as described above will be referred to as "recycled bis(2-hydroxyethyl) terephthalate (recycled BHET)" or abbreviated as r-BHET or rBHET, but it should be understood as being different from the pure BHET compound.
[0024] Specifically, recycled BHET may contain by-products formed by side reactions with reagents or solvents used in various chemical steps during the depolymerization of waste polyester. These impurities may remain in trace amounts even after several rounds of purification. Therefore, recycled BHET generally contains trace amounts of organic and inorganic impurities in addition to the main component, BHET. Therefore, recycled BHET can be considered a type of composition containing two or more components, i.e., a BHET composition. Recycled BHET may be used as a polymerization raw material for producing polyester resins.
[0025] Specifically, in addition to the main component BHET, recycled BHET may contain trace amounts of heterogeneous organic components, such as BHET analogs, e.g., monohydroxyethyl terephthalic acid (MHET), BHET dimers, BHET trimers, by-products, e.g., diethylene glycol esters, inorganic metal ions, and residual solvent components.
[0026] In the present invention, we use a regenerated BHET in which the content of such heterogeneous organic components has been adjusted to a certain range. The content of each component in the regenerated BHET can be determined by measuring the peak area fraction (%) relative to the total peak area in a spectrum obtained using high-performance liquid chromatography (HPLC).
[0027] Specifically, when measured by high performance liquid chromatography (HPLC), the recycled bis(2-hydroxyethyl) terephthalate (BHET) used as the raw material in the present invention has a peak area fraction of BHET of 96% or more. More specifically, the peak area fraction of BHET measured by HPLC may be 96.5% or more, 97% or more, 97.5% or more, or 98% or more.
[0028] Furthermore, the recycled bis(2-hydroxyethyl) terephthalate may have a peak area fraction of organic impurities measured by HPLC of less than 5% in total, specifically less than 4%, less than 3%, less than 2%, less than 1%, or less than 0.7%.
[0029] In particular, the polyester resin according to the present invention contains recycled bis(2-hydroxyethyl) terephthalate in which the diethylene glycol ester (DEG ester) content has been adjusted to a certain level or less. For example, recycled bis(2-hydroxyethyl) terephthalate may have a total peak area fraction of diethylene glycol ester compounds of less than 2% when measured by HPLC. Specifically, the total peak area fraction of diethylene glycol ester compounds may be less than 1.5%, less than 1%, less than 0.8%, or less than 0.7%.
[0030] As one example, the diethylene glycol ester compound can be a condensation product between an aromatic dicarboxylic acid, such as terephthalic acid, and diethylene glycol. As another example, the diethylene glycol ester compound can be a condensation product between an aromatic dicarboxylic acid, such as terephthalic acid, and a glycol (e.g., ethylene glycol) in addition to diethylene glycol.
[0031] According to one embodiment, the recycled BHET may contain, as the first diethylene glycol ester, 2-hydroxyethyl[2-(2-hydroxyethoxy)ethyl]terephthalate (CAS No. 65133-69-9) of the following formula 1. According to another embodiment, the recycled BHET may contain, as the second diethylene glycol ester, bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate (CAS No. 26850-76-0) of the following formula 2. When a polyester resin is prepared from recycled BHET in which the contents of the first diethylene glycol ester and the second diethylene glycol ester are adjusted to a certain level or less, the quality of the recycled polyester resin is hardly deteriorated compared to that of a virgin resin, despite being a recycled polyester resin obtained by chemical recycling. [ka]
[0032] According to one embodiment, the peak area fraction of 2-hydroxyethyl[2-(2-hydroxyethoxy)ethyl]terephthalate (first diethylene glycol ester) in the recycled bis(2-hydroxyethyl)terephthalate (BHET) is 2.5% or less, as measured by high-performance liquid chromatography (HPLC). Specifically, the peak area fraction of 2-hydroxyethyl[2-(2-hydroxyethoxy)ethyl]terephthalate measured by HPLC can be 2.0% or less, 1.5% or less, 1.0% or less, or 0.5% or less.
[0033] According to another embodiment, the peak area fraction of bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate (second diethylene glycol ester) in the recycled bis(2-hydroxyethyl)terephthalate (BHET) is 0.5% or less, as measured by high performance liquid chromatography (HPLC). Specifically, the peak area fraction of bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate measured by HPLC can be 0.2% or less, more specifically, 1.5% or less, 1.0% or less, or 0.5% or less.
[0034] Furthermore, the recycled bis(2-hydroxyethyl) terephthalate may have a total peak area fraction of oligomers of 3% or less when measured by HPLC.
[0035] Specifically, the regenerated bis(2-hydroxyethyl) terephthalate may have a peak area fraction of BHET dimer of less than 3%, less than 2%, less than 1%, or less than 0.7% as measured by HPLC. Furthermore, the regenerated bis(2-hydroxyethyl) terephthalate produced by the above method may have a peak area fraction of BHET trimer of less than 1%, less than 0.5%, less than 0.3%, less than 0.1%, or 0% as measured by HPLC.
[0036] Furthermore, the recycled bis(2-hydroxyethyl) terephthalate may further contain impurities having a structure similar to that of bis(2-hydroxyethyl) terephthalate. For example, it may contain at least one selected from the group consisting of monohydroxyethyl terephthalate (MHET), bis(2-hydroxypropyl) terephthalate, and monohydroxyethyl ethoxy terephthalate. When measured by HPLC, the peak area fraction of the impurity having a structure similar to that of bis(2-hydroxyethyl) terephthalate may be less than 3%, less than 2%, less than 1%, or less than 0.5%.
[0037] Furthermore, the total content of residual solvents (e.g., ethylene glycol) in the recycled bis(2-hydroxyethyl) terephthalate can be less than 1 wt % based on the weight ratio detected by gas chromatography analysis. Specifically, the total content of residual solvents can be less than 0.5 wt %, less than 0.3 wt %, less than 0.2 wt %, less than 0.1 wt %, or less than 0.9 wt %.
[0038] Furthermore, the recycled bis(2-hydroxyethyl) terephthalate may have a yellowness index (YID) of 3.0 or less as measured by a spectrophotometer in a 25% by weight solution. Specifically, the yellowness index may be 2.5 or less, 2.0 or less, 1.5 or less, or 1.0 or less.
[0039] Furthermore, the recycled bis(2-hydroxyethyl) terephthalate may have a total inorganic matter content of less than 5 ppm as measured by inductively coupled plasma atomic emission spectroscopy (ICP-AES). Specifically, the total inorganic matter content may be less than 3 ppm, less than 1 ppm, or nearly 0 ppm.
[0040] Polyester Resin Composition The polyester resin of the present invention is a polyester resin regenerated by chemical recycling of waste polyester.
[0041] Specifically, the polyester resin of the present invention is polymerized using recycled BHET, and therefore contains repeating units derived from recycled BHET in the polymer chain.
[0042] The content of recycled BHET in the polyester resin of the present invention may be 1 wt% or more, 5 wt% or more, 10 wt% or more, 30 wt% or more, 50 wt% or more, 70 wt% or more, or 90 wt% or more, and may be 100 wt% or less, 99 wt% or less, 80 wt% or less, 60 wt% or less, 40 wt% or less, or 20 wt% or less.
[0043] As an example, recycled bis(2-hydroxyethyl) terephthalate may be used in an amount of 10% to 99% by weight based on the weight of the polyester resin.
[0044] On the other hand, since bis(2-hydroxyethyl) terephthalate has a structure in which two ethylene glycols and one terephthalic acid are bonded, the polyester resin of the present invention can essentially contain repeating units derived from ethylene glycol and terephthalic acid.
[0045] As described above, the polyester resin of the present invention contains a diacid component and a glycol component as monomers constituting the polyester resin. Furthermore, the polyester resin of the present invention may further contain an additional diacid component and an additional glycol component for polymerization of the polyester.
[0046] In the polyester resins of the present invention, the diacid component may be a dicarboxylic acid or a derivative thereof, and the glycol component may be a diol.
[0047] In particular, the dicarboxylic acid includes terephthalic acid, which can improve the physical properties of the polyester resin, such as heat resistance, chemical resistance, and weather resistance. For example, terephthalic acid may be used in an amount of 5 mol % to 100 mol % based on the number of moles of all dicarboxylic acids. Furthermore, the terephthalic acid component may be formed from a terephthalic acid alkyl ester such as dimethyl terephthalic acid.
[0048] Further, the diol includes ethylene glycol, which can contribute to improving the transparency and impact resistance of the polyester resin. For example, ethylene glycol may be used in an amount of 5 mol % to 100 mol % based on the number of moles of all diols.
[0049] According to one embodiment, the polyester resin of the present invention may be a copolymer resin containing two or more dicarboxylic acid components and / or two or more diol components.
[0050] Specifically, the dicarboxylic acid component may further include an aromatic dicarboxylic acid component other than terephthalic acid, an aliphatic dicarboxylic acid component, or a mixture thereof. The dicarboxylic acid other than terephthalic acid may be used in an amount of 1 mol % to 30 mol % based on the weight of all dicarboxylic acid components.
[0051] The aromatic dicarboxylic acid component may be an aromatic dicarboxylic acid having 8 to 20 carbon atoms, preferably 8 to 14 carbon atoms, or a mixture thereof. Examples of aromatic dicarboxylic acids include, but are not limited to, isophthalic acid, naphthalenedicarboxylic acids such as 2,6-naphthalenedicarboxylic acid, diphenyldicarboxylic acid, 4,4'-stilbene dicarboxylic acid, 2,5-furandicarboxylic acid, 2,5-thiophenedicarboxylic acid, and the like.
[0052] The aliphatic dicarboxylic acid component may be an aliphatic dicarboxylic acid having 4 to 20 carbon atoms, preferably 4 to 12 carbon atoms, or a mixture thereof. Examples of aliphatic dicarboxylic acids include, but are not limited to, linear, branched, or cyclic aliphatic dicarboxylic acid components such as cyclohexanedicarboxylic acids, e.g., 1,4-cyclohexanedicarboxylic acid and 1,3-cyclohexanedicarboxylic acid, phthalic acid, sebacic acid, succinic acid, isodecylsuccinic acid, maleic acid, fumaric acid, adipic acid, glutaric acid, azelaic acid, and the like.
[0053] Furthermore, the diol component may further contain a comonomer other than ethylene glycol, such as at least one selected from the group consisting of cyclohexanedimethanol, cyclohexanedimethanol derivatives, isosorbide, and diethylene glycol.
[0054] Cyclohexanedimethanol (e.g., 1,2-cyclohexanedimethanol, 1,3-cyclohexanedimethanol, and 1,4-cyclohexanedimethanol) can contribute to improving the transparency and impact resistance of the polyester resin produced. For example, cyclohexanedimethanol may be used in an amount of 5 mol % to 90 mol % based on the moles of all diols. The cyclohexanedimethanol derivative may be 4-(hydroxymethyl)cyclohexylmethyl-4-(hydroxymethyl)cyclohexanecarboxylate or 4-(4-(hydroxymethyl)cyclohexylmethoxymethyl)cyclohexylmethanol. The cyclohexanedimethanol derivative may be used in an amount of 0.1 mol % to 25 mol % based on the moles of all diols.
[0055] Isosorbide can improve the processability of the final polyester resin. The transparency and impact resistance of polyester resins are improved by the diol components of cyclohexanedimethanol and ethylene glycol, but for processability, the shear flow properties must be improved and the crystallization rate must be slowed. However, it is difficult to achieve this effect with cyclohexanedimethanol and ethylene glycol alone. Therefore, using isosorbide as the diol component improves shear flow properties and slows the crystallization rate while maintaining transparency and impact resistance, thereby improving the processability of the polyester resin produced. Preferably, isosorbide may be used in an amount of 0.1 mol% to 50 mol% based on the moles of the total diol.
[0056] As a specific example, the polyester resin includes a diacid component and a glycol component, and the diacid component may include at least one selected from the group consisting of terephthalic acid, isophthalic acid, dimethyl isophthalate, phthalic acid, dimethyl phthalate, phthalic anhydride, 2,6-naphthalenedicarboxylic acid, dimethyl 2,6-naphthalenedicarboxylate, diphenyldicarboxylic acid, 1,4-cyclohexanedicarboxylic acid, 1,3-cyclohexanedicarboxylic acid, dimethyl 1,4-cyclohexanedicarboxylate, dimethyl 1,3-cyclohexanedicarboxylate, sebacic acid, succinic acid, isodecyl succinic acid, maleic acid, maleic anhydride, fumaric acid, adipic acid, glutaric acid, and azelaic acid, and the glycol component may include isosorbide, ethylene glycol, 1,2-propanediol, 1, At least one selected from the group consisting of 3-propanediol, 2-methyl-1,3-propanediol, 2-methylene-1,3-propanediol, 2-ethyl-1,3-propanediol, 2-isopropyl-1,3-propanediol, 2,2-dimethyl-1,3-propanediol, 1,4-butanediol, 2,3-butanediol, 3-methyl-1,5-pentanediol, 3-methyl-2,4-pentanediol, 1,6-hexanediol, 1,2-cyclohexanediol, 1,4-cyclohexanediol, diethylene glycol, 4-(hydroxymethyl)cyclohexylmethyl-4-(hydroxymethyl)cyclohexanecarboxylate, and 4-(4-(hydroxymethyl)cyclohexylmethoxymethyl)cyclohexylmethanol may be included.
[0057] Characteristics of polyester resin According to the present invention, the diethylene glycol derivatives derived from recycled BHET and remaining as impurities in polyester resins are adjusted to a certain level or below, thereby improving the heat resistance of the resin and preventing a decrease in the heat shrinkage properties of films produced from recycled BHET.
[0058] According to one embodiment, in the polyester resin according to the present invention, the slope of the thermal shrinkage calculated by the following formula (A) is 600% / °C or less.
number
[0059] In formula (A), HS1 is the heat shrinkage rate (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage rate (%) at a temperature of glass transition temperature (Tg) - 5°C. The heat shrinkage rate is measured in the transverse direction (TD) of the film at each temperature after the polyester resin is extruded into a film and then stretched 5 times in the transverse direction (TD).
[0060] In the polyester resin of the present invention, the diethylene glycol derivatives derived from recycled BHET and remaining in the polyester resin are controlled to a certain level or below. Therefore, despite being a polyester resin recycled by chemical recycling, there is almost no deterioration in quality, such as heat resistance, compared to virgin resin. Therefore, articles manufactured using the polyester resin of the present invention are environmentally friendly products with excellent quality. In particular, polyester films have excellent heat resistance, uniform heat shrinkage characteristics, and an appropriate thermal shrinkage rate gradient with temperature, making them suitable for use as packaging materials such as heat-shrinkable films in a variety of fields.
[0061] For example, the slope of the heat shrinkage rate according to formula (A) may be 600% / °C or less, 550% / °C or less, 500% / °C or less, 450% / °C or less, 400% / °C or less, or 350% / °C or less. Furthermore, the slope of the heat shrinkage rate may be, for example, 0% / °C or more, 100% / °C or more, 200% / °C or more, or 300% / °C or more. As a specific example, the slope of the heat shrinkage rate may be 0% / °C to 600% / °C, or 200% / °C to 600% / °C.
[0062] According to another embodiment, in the polyester resin of the present invention, the amount of DEG formed, calculated by the following formula (B): is 5 mol % or less. Amount of DEG formed = Amount of residual DEG - Amount of added DEG... (B)
[0063] In formula (B), the amount of residual DEG is 1 The content (mol %) of diethylene glycol residues in all glycol residues in the polyester resin measured by H-NMR. The amount of DEG added is the content (mol %) of diethylene glycol monomers in all glycol components added to the production of the polyester resin.
[0064] The amount of residual DEG is determined by measuring the final content of diethylene glycol residues remaining in the polyester resin (resin upon completion of polymerization). The content of diethylene glycol residues can be calculated as the molar ratio (mol %) of the total glycol (e.g., DEG, CHDM, EG, etc.) residues. The amount of residual DEG may be due to diethylene glycol that did not participate in the polymerization reaction or that was generated as a by-product. Furthermore, the amount of residual DEG may be due to diethylene glycol derivatives contained as impurities in the recycled bis(2-hydroxyethyl) terephthalate or that were generated as by-products during polymerization.
[0065] The amount of added DEG is calculated from the content of diethylene glycol monomer used in the reaction (e.g., esterification reaction) for polymerization of the polyester resin. The content of diethylene glycol monomer can be calculated as the molar ratio (mol %) of the total glycol components (e.g., DEG, CHDM, EG, etc.). The amount of added DEG may be due to additional diethylene glycol monomer added to the polymerization reaction. Furthermore, the amount of added DEG may be due to diethylene glycol monomer remaining in the recycled bis(2-hydroxyethyl) terephthalate.
[0066] The amount of DEG formed in equation (B) is calculated by subtracting the amount of DEG added from the amount of residual DEG. That is, the amount of DEG formed may correspond to the difference between the amount of diethylene glycol and its derivatives (e.g., esters) ultimately remaining in the polyester resin and the amount of diethylene glycol monomer initially added to the polyester resin polymerization. Therefore, the amount of DEG formed may be attributable to the amount of diethylene glycol derivatives in addition to the diethylene glycol monomer added to the polyester resin polymerization. Specifically, the amount of DEG formed may be attributable to the amount of diethylene glycol esters remaining in the recycled bis(2-hydroxyethyl) terephthalate.
[0067] For example, the amount of DEG formed may be 5 mol% or less, 4.5 mol% or less, 4.0 mol% or less, 3.5 mol% or less, 3.0 mol% or less, or 2.5 mol% or less. Meanwhile, the lower limit of the amount of DEG formed is not particularly limited, and may be, for example, 0 mol% or more, more than 0 mol%, 0.5 mol% or more, 1 mol% or more, 1.5 mol% or more, or 2.0 mol% or more. Meanwhile, the amount of DEG formed may have a negative value due to a decrease in the residual amount relative to the amount of DEG added due to several factors. For example, in such cases, the lower limit of the amount of DEG formed may be -5 mol% or more, -3 mol% or more, or -1 mol% or more.
[0068] By suppressing the effect on the quality of the final polymerized resin of diethylene glycol derivatives, which are present as impurities in the recycled BHET used in the polymerization of polyester resin and remain in the final polymerized resin, it is possible to improve the properties such as heat shrinkage of films produced from polyethylene resins within a preferred range of the amount of DEG formed.
[0069] Furthermore, according to the present invention, by adjusting the content of recycled BHET and the glycol / acid ratio in the polyester resin, it is possible to provide a polyester resin with improved qualities such as heat resistance.
[0070] In particular, the heat resistance index of the final polyester resin, calculated from the amount of BHET used in polyester polymerization and the content of impurities such as diethylene glycol ester in the recycled BHET, can be adjusted to a specific range.
[0071] According to one embodiment, the first heat resistance index is calculated using the composition of the recycled BHET (the content of BHET and DEG ester) and the content of recycled BHET in the polyester resin as parameters. The first heat resistance index can be adjusted within a specific range. The first heat resistance index is the heat resistance index derived from the recycled BHET used in the polymerization of the polyester resin and is a numerical value representing the decrease in heat resistance caused by the DEG impurity in the recycled BHET. By adjusting the first heat resistance index to a certain level or below, it is possible to control the heat resistance to a level similar to that of virgin polyester resin polymerized from acid and glycol.
[0072] Specifically, the polyester resin has a first heat resistance index calculated by the following formula (1) of 1.0 or less.
number
[0073] In equation (1), DEG1, DEG2, and BHET0 are the peak area fractions (%) of 2-hydroxyethyl [2-(2-hydroxyethoxy)ethyl] terephthalate, bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate, and bis(2-hydroxyethyl) terephthalate, respectively, measured by high-performance liquid chromatography (HPLC). rBHET is the weight fraction (%) of recycled bis(2-hydroxyethyl) terephthalate in the polyester resin. The unit-less values of these parameters (DEG1, DEG2, BHET0, and rBHET) are entered into equation (1) to calculate the first heat resistance index (unitless).
[0074] For example, the first heat resistance index may be 1.0 or less, 0.9 or less, 0.8 or less, 0.7 or less, 0.6 or less, 0.5 or less, 0.4 or less, 0.3 or less, 0.2 or less, or 0.1 or less. Furthermore, the first heat resistance index may be 0 or more, 0.1 or more, 0.2 or more, 0.3 or more, 0.4 or more, or 0.5 or more. As a specific example, the first heat resistance index may be 0 to 1.0, or 0.1 to 1.0.
[0075] According to another embodiment, the second heat resistance index is calculated using the molar ratio of glycol to diacid in the monomers constituting the polyester resin as a parameter. The second heat resistance index can be adjusted within a specific range. The second heat resistance index is a value related to the content of glycol and diacid constituting the polyester resin. By adjusting the second heat resistance index, the polyester resin can be polymerized without reducing heat resistance even when a large amount of recycled BHET is used.
[0076] Specifically, the polyester resin has a second heat resistance index calculated by the following formula (2) of 1.6 or less. Second heat resistance index = (G / A) × 0.32 + 0.83...(2)
[0077] In formula (2), G and A are the number of moles of glycol and the number of moles of diacid, respectively, in the monomers constituting the polyester resin, and G / A is the molar ratio of glycol to diacid.
[0078] For example, the second heat resistance index may be 1.6 or less, 1.5 or less, 1.4 or less, 1.3 or less, or 1.2 or less. Furthermore, the second heat resistance index may be 0 or more, 0.5 or more, 1.0 or more, 1.1 or more, 1.2 or more, or 1.3 or more. As a specific example, the second heat resistance index may be 0 to 1.6, or 1.0 to 1.6.
[0079] According to another embodiment, the third heat resistance index is calculated using the first heat resistance index and the second heat resistance index as parameters. The third heat resistance index can be adjusted within a specific range. The third heat resistance index comprehensively takes into account the quality and quantity of the recycled BHET and the glycol / acid content of the polyester resin, so that the heat resistance of the final polyester resin can be more effectively controlled by adjusting the third heat resistance index.
[0080] Specifically, the polyester resin has a third heat resistance index calculated by the following formula (3) of 2.6 or less, more specifically 2.0 or less. Third heat resistance index = First heat resistance index + Second heat resistance index...(3)
[0081] For example, the third heat resistance index may be 2.0 or less, 1.9 or less, 1.8 or less, 1.7 or less, 1.6 or less, 1.5 or less, 1.4 or less, or 1.3 or less. Furthermore, the third heat resistance index may be 0 or more, 0.5 or more, 1.0 or more, or 1.5 or more. As a specific example, the third heat resistance index may be 0 to 2.0, or 1.0 to 2.0.
[0082] The polyester resin with the adjusted heat resistance index may have little loss in heat resistance compared to virgin polyester resin.
[0083] According to one embodiment, the polyester resin according to the present invention may have a ΔTg of 3.0 or less, as calculated by the following formula: ΔTg = 1.0 (Tg / Tg) / 2.5 (Tg / Tg) . Specifically, the ΔTg may be 2.0 or less, or 1.5 or less. ΔTg(℃)=Tg1-Tg2
[0084] Here, Tg2 is the glass transition temperature (°C) of the polyester resin polymerized using recycled BHET, and Tg1 is the glass transition temperature (°C) of the polyester resin polymerized using ethylene glycol and terephthalic acid in molar equivalent amounts to recycled BHET.
[0085] The intrinsic viscosity of the polyester resin according to the present invention at 35°C may be 0.5 dl / g or more, 0.6 dl / g or more, or 0.7 dl / g or more, and may be 1.2 dl / g or less, 1.1 dl / g or less, 1.0 dl / g or less, or 0.9 dl / g or less. For example, the intrinsic viscosity of the polyester resin at 35°C may be 0.5 dl / g to 1.2 dl / g. Specifically, the intrinsic viscosity of the polyester resin at 35°C may be 0.5 dl / g to 0.9 dl / g.
[0086] Process for preparing polyester resins The method for preparing a polyester resin according to the present invention comprises polymerizing a polyester resin using recycled bis(2-hydroxyethyl) terephthalate (BHET) obtained by depolymerization of waste polyester.
[0087] The polyester resin according to the present invention can be prepared by further adding terephthalic acid or its derivatives and / or ethylene glycol in addition to recycled bis(2-hydroxyethyl) terephthalate. Furthermore, the polyester resin can be prepared as a copolymer by further adding other diacid and / or glycol comonomers.
[0088] In the polymerization, an esterification reaction (step 1) and a polycondensation reaction (step 2) may be carried out in sequence.
[0089] The esterification reaction may be carried out in the presence of an esterification catalyst. For example, a zinc-based compound may be used. Specific examples of the zinc-based catalyst include zinc acetate, zinc acetate hydrate, zinc chloride, zinc sulfate, zinc sulfide, zinc carbonate, zinc citrate, zinc gluconate, or a mixture thereof.
[0090] The esterification reaction can be carried out, for example, at 0 kgf / cm 2 ~10.0kgf / cm 2The esterification reaction can be carried out at a pressure of 0 kg / cm and a temperature of 150 to 300°C. The conditions for the esterification reaction may be appropriately adjusted depending on the inherent properties of the polyester to be produced, the ratio of each component, or the processing conditions. Specifically, the esterification reaction pressure is 0 kg / cm 2 ~5.0kg / cm 2 , more specifically 0.1 kg / cm 2 ~3.0kg / cm 2 Furthermore, the temperature of the esterification reaction may be 200°C to 270°C, more specifically 240°C to 260°C.
[0091] The esterification reaction may be carried out batchwise or continuously. Each raw material may be supplied separately, but it is preferable to supply them in the form of a mixed slurry of the diol component, dicarboxylic acid component, and recycled BHET. Furthermore, a diol component such as isosorbide, which is solid at room temperature, may be dissolved in water or ethylene glycol and then mixed with a dicarboxylic acid component such as terephthalic acid to prepare a slurry. Alternatively, isosorbide may be melted at 60°C or higher and then mixed with a dicarboxylic acid component such as terephthalic acid and other diol components to prepare a slurry. Furthermore, additional water may be added to the mixed slurry to promote an increase in the fluidity of the slurry.
[0092] The polycondensation reaction may be carried out, for example, by reacting the esterification reaction product at a temperature of 150°C to 300°C under reduced pressure of 0.01 mmHg to 600 mmHg for 1 hour to 24 hours. The polycondensation reaction can produce a polyester resin with a relatively low molecular weight by melt polymerization. Furthermore, after the melt polymerization, a polyester resin with a relatively high molecular weight can be produced by solid-state polymerization.
[0093] The temperature in the polycondensation reaction may be 150°C to 300°C, specifically 200°C to 290°C, and more specifically 260°C to 280°C. Furthermore, the pressure in the polycondensation reaction may be 0.01 mmHg to 600 mmHg, specifically 0.05 mmHg to 200 mmHg, and more specifically 0.1 mmHg to 100 mmHg. By employing reduced pressure conditions in the polycondensation reaction, glycol, a by-product of the polycondensation reaction, can be removed from the system. If the pressure in the polycondensation reaction exceeds the range of 0.01 mmHg to 400 mmHg, removal of the by-product may be insufficient. Furthermore, if the polycondensation reaction temperature is less than 150°C, the glycol, a by-product of the reaction, cannot be effectively removed from the system, resulting in a low intrinsic viscosity of the final reaction product and poor physical properties of the final polyester resin. If the polycondensation reaction temperature exceeds 300°C, the possibility of yellowing of the final polyester resin increases. Furthermore, the polycondensation reaction may be carried out for a time required for the intrinsic viscosity of the final reaction product to reach an appropriate level, for example, for an average residence time of 1 hour to 24 hours.
[0094] Furthermore, the polycondensation reaction may be carried out in the presence of a polycondensation catalyst. The polycondensation catalyst may be, for example, a titanium-based compound, a germanium-based compound, an antimony-based compound, an aluminum-based compound, a tin-based compound, or a mixture thereof. Examples of titanium compounds include tetraethyl titanate, acetyltripropyl titanate, tetrapropyl titanate, tetrabutyl titanate, 2-ethylhexyl titanate, octylene glycol titanate, lactic acid titanate, triethanolamine titanate, acetylacetonate titanate, ethylacetoacetic ester titanate, isostearyl titanate, and titanium dioxide. Examples of germanium-based compounds include germanium dioxide, germanium tetrachloride, germanium ethylene glycol oxide, germanium acetate, or a mixture thereof. Preferably, germanium dioxide is used. Both crystalline and amorphous germanium dioxide may be used, and glycol-soluble germanium dioxide may also be used. The amount of polycondensation catalyst used may be such that the amount of titanium element relative to the weight of the polyester resin is about 1 to 100 ppm, more preferably about 1 to 50 ppm.
[0095] In addition to the polycondensation catalyst, a stabilizer, a colorant, a crystallizing agent, an antioxidant, a branching agent, etc. may be further used. The timing of adding these additives is not particularly limited, and they may be added at any time during the polyester resin preparation step.
[0096] Commonly used stabilizers include phosphorus-based compounds such as phosphoric acid, trimethyl phosphate, triethyl phosphate, and triethyl phosphonoacetate. The amount of stabilizer added may be 10 to 200 ppm based on the amount of phosphorus element, relative to the weight of the polyester resin. Furthermore, common colorants such as cobalt acetate and cobalt propionate are examples of colorants added to improve the color of the polyester resin. The amount of colorant added may be 10 to 200 ppm based on the amount of cobalt element, relative to the weight of the polyester resin. If necessary, anthraquinone compounds, perinone compounds, azo compounds, methine compounds, and the like may be used as organic colorants. Commercially available toners, such as Polysynthren Blue RLS manufactured by Clarient or Solvaperm Red BB manufactured by Clarient, may also be used. The amount of organic compound colorant added may be adjusted to 0 to 50 ppm based on the weight of the polyester resin. Examples of crystallization agents include crystal nucleating agents, ultraviolet absorbers, polyolefin resins, and polyamide resins. Examples of the antioxidant include hindered phenol antioxidants, phosphorous acid antioxidants, thioether antioxidants, and mixtures thereof. Examples of the branching agent include conventional branching agents having three or more functional groups, such as trimellitic anhydride, trimethylolpropane, trimellitic acid, and mixtures thereof.
[0097] Methods for the preparation of regenerated BHET The bis(2-hydroxyethyl) terephthalate used in the preparation of the polyester resin according to the present invention is a recycled monomer obtained by depolymerizing waste polyester, yet it has high purity and contains a small amount of impurities such as diethylene glycol esters.
[0098] Such bis(2-hydroxyethyl) terephthalate can be obtained by carrying out a depolymerization reaction in multiple stages, with the temperature in the latter stages being significantly reduced, followed by ion exchange after the depolymerization reaction and distillation of unreacted glycol.
[0099] In one embodiment, a method for preparing recycled bis(2-hydroxyethyl) terephthalate includes the steps of: (1) subjecting waste polyester to depolymerization by a first glycolysis reaction at a temperature of 180°C to 200°C to obtain a first reactant; (2) subjecting the first reactant to depolymerization by a second glycolysis reaction at a temperature of 150°C to 170°C to obtain a second reactant; (3) subjecting the second reactant to ion exchange using an ion exchange resin to obtain a third reactant; (4) removing unreacted glycol from the third reactant by distillation at a temperature of 150°C or less to obtain a fourth reactant; and (5) subjecting the fourth reactant to distillation to obtain crude bis(2-hydroxyethyl) terephthalate.
[0100] According to the above method, the depolymerization reaction is carried out in multiple stages while significantly reducing the temperature in the latter stages, thereby reducing the formation of diethylene glycol and impurities derived from diethylene glycol, thereby enabling the production of high-purity bis(2-hydroxyethyl) terephthalate (BHET). Furthermore, according to the above method, ion exchange and distillation of unreacted glycol are further carried out after the depolymerization reaction, thereby reducing the formation of oligomers and removing chromophores, thereby enabling the preparation of bis(2-hydroxyethyl) terephthalate (BHET) with improved color quality.
[0101] According to another embodiment, prior to step (1), a step of pulverizing the waste polyester to a size below a certain level may be further carried out. The waste polyester may have a particulate or fibrous form with a particle size of 4 mm or less. By adjusting the particle size or diameter of the waste polyester to fall within a specific range and carrying out depolymerization, solvation can be promoted even under conditions of a relatively low temperature and a short reaction time.
[0102] According to another embodiment, the first glycolysis reaction in step (1) is carried out in the presence of a catalyst. The catalyst may include a metal acetate, an anhydride thereof, or a hydride thereof. More specifically, the catalyst may be at least one selected from the group consisting of zinc acetate, sodium acetate, cobalt acetate, manganese acetate, or a hydrate or anhydride thereof. Furthermore, the catalyst may be used in an amount of 0.2 to 0.4 parts by weight per 100 parts by weight of the waste polyester.
[0103] According to another embodiment, a step of cooling the second reactant obtained in step (2) to a certain temperature or below may be further carried out.
[0104] According to another embodiment, before the ion exchange in step (3), a step of removing insoluble contaminants from the second reaction product by filtration may be further carried out. Specifically, the second reaction product may be cooled to 120°C or less, and a filter aid may be added thereto, followed by filtration.
[0105] According to another embodiment, prior to the ion exchange in step (3), a step of removing insoluble contaminants from the second reactant by filtration may be further carried out.
[0106] According to another embodiment, the ion exchange resin in step (3) is used in an amount of 1 to 20 parts by weight per 100 parts by weight of the waste polyester, and includes at least one selected from the group consisting of a strong acid cation exchange resin, a weak acid cation exchange resin, and a chelating resin.
[0107] According to another embodiment, the distillation to remove unreacted glycol in step (4) may be carried out at a temperature of from 100°C to 130°C.
[0108] According to another embodiment, the distillation to obtain crude bis(2-hydroxyethyl) terephthalate in step (5) may be carried out by thin film evaporation under a pressure of 0.05 Torr to 0.4 Torr.
[0109] According to another embodiment, the method may further comprise the step of adsorption-crystallizing the crude bis(2-hydroxyethyl) terephthalate after the distillation in step (5). The adsorption-crystallization may be carried out by adding an adsorbent using water as a solvent, filtering, and crystallizing.
[0110] In a specific embodiment, waste polyester is first crushed to a size of 4 mm or less, and then ethylene glycol is added to the crushed polyester. The resulting mixture undergoes a first glycolysis reaction at 180-200°C in the presence of a zinc acetate catalyst for approximately two hours. Ethylene glycol is then added to the crushed polyester, followed by a second glycolysis reaction at 150-170°C for approximately two hours. The resulting mixture is then cooled to below 120°C using a vacuum flash, a small amount of filter aid is added, and insoluble impurities are filtered off by solid-liquid separation. The mixture is then passed through a column packed with ion exchange resin for ion exchange. The unreacted glycol is then recovered at 100-130°C, purified by thin-film distillation at 190-250°C, and finally subjected to an adsorption-crystallization step to obtain high-purity, high-quality bis(2-hydroxyethyl) terephthalate.
[0111] The above method involves two glycolysis steps (i.e., a first glycolysis step and a second glycolysis step). By promoting solvation in the first glycolysis step, the second glycolysis step allows transesterification of the waste polyester at a lower temperature and for a shorter reaction time. This significantly reduces the concentration of diethylene glycol (DEG), which is naturally formed at typical glycolysis temperatures, and significantly reduces the content of diethylene glycol esters in the final bis(2-hydroxyethyl) terephthalate.
[0112] Articles using polyester resin The polyester resin of the present invention has excellent mechanical strength, heat resistance, transparency and gas barrier properties and can be used as a material for beverage containers, packaging films, audio and video films, etc.
[0113] Furthermore, the polyester sheet or polyester plate prepared from the polyester resin according to the present invention has good transparency and excellent mechanical strength, and therefore can be used as a raw material for cases, boxes, partitions, shelves, panels, packaging materials, building materials, interior and exterior materials, etc.
[0114] Furthermore, the polyester resin according to the present invention can also be used as an industrial material such as medical fibers and tire cords.
[0115] Therefore, the present invention also provides an article comprising a polyester resin. For example, the article may be a film, a sheet, or a profile. Specific examples of films include heat-shrinkable films and blown films. Profiles refer to continuous extrusion-molded plastic articles, excluding sheets and films. They can be produced by a general extrusion molding method and may have, for example, a tubular or channel shape.
[0116] Specifically, the polyester film prepared from the polyester resin of the present invention may have a haze of 5% or less, 4% or less, 3% or less, 2.5% or less, 2% or less, or 1% or less, based on a film thickness of 50 μm, as measured according to ASTM D1003-97, thereby exhibiting high transparency. The haze is most preferably 0%, and theoretically, the lower limit may be 0% or more.
[0117] In particular, the polyester film according to the present invention is prepared from a polyester resin containing a controlled amount of diethylene glycol derivative formed from r-BHET, and therefore has excellent heat resistance, uniform heat shrinkage properties, and optical transparency, making it useful as a heat-shrinkable label for PET containers. Accordingly, the present invention provides a heat-shrinkable polyester film containing a polyester resin.
[0118] The polyester film of the present invention exhibits a high heat shrinkage rate at high temperatures during the heat shrinking process, but a low heat shrinkage rate at low temperatures, and is therefore suitable for use as a heat shrinkable label.
[0119] For example, a polyester film may have a total thermal shrinkage in the transverse direction (TD) and a thermal expansion coefficient (%) in the longitudinal direction (MD) at 70°C of 65% or less. Specifically, the thermal shrinkage can be measured by immersing the film in hot water at 70°C for 10 seconds. The total of the TD thermal shrinkage and MD thermal expansion coefficients may be 65% or less, 60% or less, 50% or less, 40% or less, 30% or less, or 20% or less under the test conditions. Meanwhile, the lower limit of the total of the TD thermal shrinkage and MD thermal expansion coefficients at 70°C is not particularly limited, but may be, for example, 0% or more, 10% or more, or 15% or more.
[0120] Furthermore, the polyester film exhibits a maximum shrinkage at 95°C of 55% or more, 60% or more, 65% or more, 70% or more, or 75% or more, thereby providing a heat-shrinkable film of excellent quality. The upper limit of the maximum shrinkage is not particularly limited, and may be, for example, 85% or less.
[0121] The polyester film may be a single layer film or a multilayer film containing two or more layers.
[0122] The method for preparing a polyester film includes the steps of forming a polyester resin composition to prepare an unstretched film, and stretching the unstretched film.
[0123] The polyester resin composition may be provided in the form of chips or pellets so that the polyester resin can be mixed with additives suitable for use. Specifically, the polyester resin composition may be molded in the form of chips or pellets through a twin-screw extruder.
[0124] The polyester resin composition thus prepared is then molded to prepare an unstretched film. The polyester resin composition may be molded at a temperature of about 180°C to 310°C, about 200°C to 310°C, about 230°C to 310°C, about 240°C to 300°C, or about 250°C to 290°C to minimize thermal decomposition of the polymer, maintain the long chain structure of the polymer, and minimize problems with damage or breakage of the film in subsequent processes such as a stretching step.
[0125] Specifically, the polyester resin composition in the form of chips or pellets is fed into an extruder, and the temperature of the cylinder is adjusted to the above range to obtain an unstretched film.
[0126] When the polyester film has a multilayer structure, two or more layers may be formed sequentially or simultaneously. That is, each layer may be formed sequentially in a manner such that one layer is formed and then another layer is formed on the layer. Alternatively, two or more layers may be formed at once by a method such as coextrusion.
[0127] The unstretched film obtained by the above method may be cooled to an appropriate temperature. Although not particularly limited, the prepared unstretched film may be cast onto a roll at about 10°C to 70°C or 20°C to 70°C, and then supplied to the next step.
[0128] In the step of stretching the unstretched film, the unstretched film is stretched in the machine direction and / or the transverse direction to provide a uniaxially stretched film or a biaxially stretched film.
[0129] The stretching temperature of the unstretched film may be equal to or higher than the glass transition temperature of the polyester resin. Specifically, the unstretched film may be stretched at a temperature of 55°C to 180°C or 60°C to 170°C.
[0130] The unstretched film may be stretched at a high stretching ratio. For example, the unstretched film may be uniaxially stretched at a stretching ratio of 1.5 to 6 times in the transverse direction or at a stretching ratio of 1.1 to 5 times in the longitudinal direction. For yet another example, the unstretched film may be biaxially stretched at a stretching ratio of 1.5 to 6 times in the transverse direction and at a stretching ratio of 1.1 to 5 times in the longitudinal direction.
[0131] The polyester film may have a thickness of 3 μm or more, 5 μm or more, 10 μm or more, 30 μm or more, 50 μm or more, or 100 μm or more, or 500 μm or less, 350 μm or less, 200 μm or less, or 150 μm or less. Specifically, the polyester film may have a thickness of 3 μm to 350 μm.
[0132] [Mode of the invention] The present invention will be described in more detail below with reference to embodiments, but these examples are provided for illustrative purposes only and are not intended to limit the scope of the present invention.
[0133] Preparation example: r-BHET_A1 (regenerated BHET) A stainless steel (SUS) first reactor was charged with 1,000 g of waste polyester resin pulverized to a particle size of 4 mm or less, 2,000 g of ethylene glycol, and 3.5 g of anhydrous zinc acetate. The temperature inside the reactor was raised to 180 °C, and depolymerization (first glycolysis reaction) was carried out over 2 hours. The resulting reaction product (first reaction product) was transferred to a second reactor and cooled to 150 °C. 2,000 g of ethylene glycol was added, and depolymerization (second glycolysis reaction) was carried out for 2 hours while maintaining the reactor temperature at 150 °C. The resulting reaction product (second reaction product) was cooled to 120 °C by vacuum flash, and 16 g of filter aid was added. Subsequently, solid-liquid separation was carried out by pressure filtration. The separated liquid reaction product was passed through a column packed with an ion exchange resin (Bonlite BC107(H)) to remove ionic impurities, yielding a mixture containing bis(2-hydroxyethyl) terephthalate and ethylene glycol (third reaction product). This mixture (the third reaction product) was transferred to a 10-liter distillation apparatus and subjected to vacuum distillation at 130°C to recover unreacted ethylene glycol. The reaction product (the fourth reaction product) from which ethylene glycol had been removed was subjected to thin-film evaporation in a thin-film evaporator (VTA VKL70-4S) at 220°C and 0.08 Torr, yielding 1,040 g of a product from which dimers and higher oligomers had been removed. Subsequently, for adsorption-crystallization, 1,040 g of the above product and 3,120 g of distilled water were placed in a 20-liter glass reactor and dissolved at 70°C. 5.2 g of activated carbon was then added, stirred for 30 minutes, and filtered. The filtrate was cooled to room temperature for crystallization, filtered, and dried in a vacuum oven. As a result, 990 g of a final product containing bis(2-hydroxyethyl) terephthalate was obtained.
[0134] Preparation example: r-BHET_A2 (regenerated BHET) A final product (980 g) containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_A2) was obtained via the same procedure as in the preparation example of r-BHET_A1, except that the first glycolysis reaction was carried out at 180°C for 1 hour.
[0135] Preparation example: r-BHET_A3 (regenerated BHET) A final product (referred to as r-BHET_A3) containing bis(2-hydroxyethyl) terephthalate (985 g) was obtained through the same procedure as in the preparation example of r-BHET_A1, except that 1,000 g of waste fiber was used as the raw material for the waste polyester.
[0136] Preparation example: r-BHET_A4 (regenerated BHET) A final product (992 g) containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_A4) was obtained through the same procedure as in the preparation example of r-BHET_A1, except that 1,000 g of discarded banners was used as the raw material for waste polyester.
[0137] Preparation example: r-BHET_A5 (regenerated BHET) A final product (1,050 g) containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_A5) was obtained through the same procedure as in the preparation of r-BHET_A1, except that the adsorption-crystallization step was not performed after thin-film evaporation.
[0138] Preparation example: r-BHET_B1 (regenerated BHET) A stainless steel (SUS) reactor was charged with 1,000 g of waste polyester resin with particle sizes of 4 mm or less, 4,000 g of ethylene glycol, and 3.5 g of anhydrous zinc acetate. The temperature inside the reactor was raised to 196°C, and depolymerization (glycolysis) was carried out for 4 hours. The resulting reaction mixture was cooled to 30°C, and crystallization of bis(2-hydroxyethyl) terephthalate was carried out for 2 hours. The resulting slurry of bis(2-hydroxyethyl) terephthalate and ethylene glycol was subjected to solid-liquid separation using a centrifuge. The bis(2-hydroxyethyl) terephthalate obtained by centrifugation was washed twice with a sufficient amount of distilled water, and the residual solvent was removed in an oven to obtain approximately 1,010 g of the final product containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_B1).
[0139] Preparation example: r-BHET_B2 (regenerated BHET) Approximately 1,000 g of a final product containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_B2) was obtained via the same procedure as in the preparation example of r-BHET_B1, except that the glycolysis reaction was carried out at 210°C.
[0140] Preparation example: r-BHET_B3 (regenerated BHET) Approximately 1,020 g of a final product containing bis(2-hydroxyethyl) terephthalate (referred to as r-BHET_B3) was obtained via the same procedure as in the preparation example of r-BHET_A1, except that the first glycolysis reaction was carried out at 196°C for 4 hours and neither the second glycolysis reaction nor the adsorption-crystallization was carried out.
[0141] Evaluation of recycled bis(2-hydroxyethyl) terephthalate The above prepared results, each containing recycled bis(2-hydroxyethyl) terephthalate, were tested as follows, and the results are summarized in Table 1 below.
[0142] (1) Composition - High Performance Liquid Chromatography (HPLC) Approximately 0.01 g of the sample was diluted in approximately 20 ml of methanol and then measured by HPLC. Model: Waters e2695 Column: C18 (4.6 x 250 mm), 5 μm UV detector: 242 nm Injection volume: 10μl Eluent (gradient) A: H2O + H3PO4, B: acetonitrile
[0143] (2) Residual Solvent - Gas Chromatography (GC) Approximately 0.1 g of the sample was diluted in approximately 10 ml of CHCl3, filtered through a 0.45 μm filter, and then measured by GC. Model: Agilent 7890B Column: DB-624 (30 m x 0.25 mm x 1.4 μm) Oven temperature: 60℃ (2 min) - 10℃ / min - 200℃ (0 min) - 20℃ / min - 260℃ (5 min) Injection temperature: 250℃ Detector temperature: 250℃ Flow rate: 1.5ml / min (N2), split ratio: 1 / 50
[0144] [Table 1]
[0145] As can be seen from the table above, r-BHET_A1 to r-BHET_A5 had a high BHET content, no inorganic impurities, and very low DEG-derived ester content. In contrast, r-BHET_B1 to r-BHET_B3 had problems with either high amounts of dimer or DEG-derived ester, or the presence of some residual solvent (EG), respectively.
[0146] Example 1: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_A1, 2,863.5 g), terephthalic acid (TPA, 1,871.4 g), ethylene glycol (EG, 97.9 g), 1,4-cyclohexanedimethanol (CHDM, 1,039.0 g), and diethylene glycol (DEG, 32.9 g), followed by the addition of Ti catalyst (0.2 g), phosphoric acid (10.0 g), blue toner (0.005 g), and red toner (0.003 g).
[0147] Next, nitrogen was injected into the reactor, and the reactor was heated to 1.0 kgf / cm from the standard pressure (absolute pressure: 1,495.6 mmHg). 2 The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 260°C over 2 hours. The esterification reaction was then carried out at 260°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0148] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 270°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.80 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0149] Example 2: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_A2, 5,968.0 g), CHDM (676.7 g), and DEG (68.6 g), followed by the addition of Ge catalyst (3.2 g), blue toner (0.015 g), and red toner (0.008 g).
[0150] Next, nitrogen was injected into the reactor, and the reactor was heated to 2.0 kgf / cm from the standard pressure (absolute pressure: 2,231.1 mmHg). 2 The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 260°C over 2 hours. The esterification reaction was then carried out at 260°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0151] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 275°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.65 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0152] Example 3: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with regenerated bis(2-hydroxyethyl)terephthalate (r-BHET_A3, 4,236.4 g), TPA (1,186.6 g), EG (88.6 g), CHDM (480.3 g), DEG (173.9 g), and a CHDM derivative (173.9 g, containing 4-(hydroxymethyl)cyclohexylmethyl-4-(hydroxymethyl)cyclohexanecarboxylate and 4-(4-(hydroxymethyl)cyclohexylmethoxymethyl)cyclohexylmethanol in a 1:3 molar ratio), followed by Ge catalyst (3.2 g), Ti catalyst (0.3 g), blue toner (0.020 g), and red toner (0.005 g).
[0153] Next, nitrogen was injected into the reactor, and the reactor was heated to a pressure 0.5 kgf / cm below standard pressure (absolute pressure: 1,127.8 mmHg). 2The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 260°C over 2 hours. The esterification reaction was then carried out at 260°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0154] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 275°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.75 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0155] Example 4: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_A4, 1,182.1 g), TPA (3,090.1 g), EG (692.5 g), CHDM (737.2 g), and DEG (169.9 g), followed by the addition of Ti catalyst (0.2 g), blue toner (0.008 g), and red toner (0.003 g).
[0156] Next, nitrogen was injected into the reactor, and the reactor was heated to 1.0 kgf / cm from the standard pressure (absolute pressure: 1,495.6 mmHg). 2The reactor was pressurized to a high pressure. The temperature of the reactor was then raised to 220°C over 90 minutes, held at 220°C for 2 hours, and then raised again to 250°C over 2 hours. The esterification reaction was then carried out at 250°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0157] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 280°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.82 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0158] Example 5: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl)terephthalate (r-BHET_A5, 2,426.2 g), TPA (2,378.4 g), EG (992.0 g), CHDM (687.7 g), and a CHDM derivative (173.9 g, containing 4-(hydroxymethyl)cyclohexylmethyl-4-(hydroxymethyl)cyclohexanecarboxylate and 4-(4-(hydroxymethyl)cyclohexylmethoxymethyl)cyclohexylmethanol in a 1:3 molar ratio), followed by Ge catalyst (6.4 g), Ti catalyst (0.4 g), blue toner (0.003 g), and red toner (0.001 g).
[0159] Next, nitrogen was injected into the reactor, and the reactor was heated to 2.0 kgf / cm from the standard pressure (absolute pressure: 2,231.1 mmHg). 2 The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 255°C over 2 hours. The esterification reaction was then carried out at 255°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0160] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 285°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.78 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0161] Example 6: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_A2, 4,186.3 g), terephthalic acid (TPA, 1,172.5 g), isophthalic acid (IPA, 2,735.9 g), 1,4-cyclohexanedimethanol (CHDM, 678.1 g), and diethylene glycol (DEG, 171.9 g), followed by the addition of Ti catalyst (0.4 g), phosphoric acid (1.0 g), blue toner (0.010 g), and red toner (0.005 g).
[0162] Next, nitrogen was injected into the reactor, and the reactor was heated to 3.0 kgf / cm below standard pressure (absolute pressure: 2,966.7 mmHg). 2The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 260°C over 2 hours. The esterification reaction was then carried out at 260°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0163] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 275°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.65 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0164] Comparative Example 1: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_B1, 2,863.5 g), TPA (1,871.4 g), EG (251.6 g), and CHDM (1,039.0 g), followed by the addition of Ge catalyst (6.4 g), blue toner (0.010 g), and red toner (0.005 g).
[0165] Next, nitrogen was injected into the reactor, and the reactor was heated to a pressure 0.5 kgf / cm below standard pressure (absolute pressure: 1,127.8 mmHg). 2The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 260°C over 2 hours. The esterification reaction was then carried out at 260°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0166] The reactor pressure was then reduced from standard pressure to 5 Torr (absolute pressure: 5 mmHg) over 30 minutes. Simultaneously, the reactor temperature was increased to 280°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (absolute pressure: 1 mmHg) or less. A high stirring speed may be set at the start of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.50 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12-14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0167] Comparative Example 2: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with recycled bis(2-hydroxyethyl) terephthalate (r-BHET_B3, 4,737.9 g), TPA (774.1 g), EG (968.6 g), CHDM (738.7 g), and DEG (34.0 g), followed by the addition of Ti catalyst (0.2 g), blue toner (0.008 g), and red toner (0.003 g).
[0168] Next, nitrogen was injected into the reactor, and the reactor was heated to 1.0 kgf / cm from the standard pressure (absolute pressure: 1,495.6 mmHg). 2The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 265°C over 2 hours. The esterification reaction was then carried out at 265°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0169] The reactor pressure was then reduced from standard pressure to 5 Torr (absolute pressure: 5 mmHg) over 30 minutes. Simultaneously, the reactor temperature was increased to 270°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (absolute pressure: 1 mmHg) or less. A high stirring speed may be set at the start of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.70 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12-14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0170] Comparative Example 3: Preparation of polyester resin A 10-liter reactor equipped with a column and a water-cooled condenser was charged with regenerated bis(2-hydroxyethyl) terephthalate (r-BHET_B2, 3,036.2 g), TPA (1,984.3 g), EG (652.2 g), CHDM (516.4 g), and DEG (34.9 g), followed by Ge catalyst (3.2 g), Ti catalyst (0.4 g), phosphoric acid (1.0 g), blue toner (0.015 g), and red toner (0.005 g).
[0171] Next, nitrogen was injected into the reactor, and the reactor was heated to a pressure 0.5 kgf / cm below standard pressure (absolute pressure: 1,127.8 mmHg). 2 The reactor was pressurized to a high pressure. The temperature of the reactor was then increased to 220°C over 90 minutes, maintained at 220°C for 2 hours, and then increased again to 255°C over 2 hours. The esterification reaction was then carried out at 255°C, and the mixture was visually observed until it became transparent. During this procedure, by-products were discharged through a column and a cooler. After the esterification reaction was completed, the nitrogen in the pressurized reactor was released to the outside to reduce the pressure in the reactor to standard pressure, and the mixture in the reactor was then transferred to a 7-liter reactor capable of reaction under vacuum.
[0172] The reactor pressure was then reduced from standard pressure to 5 Torr (5 mmHg absolute) over 30 minutes. Simultaneously, the reactor temperature was increased to 270°C over 1 hour, and the polycondensation reaction was carried out while maintaining the reactor pressure at 1 Torr (1 mmHg absolute) or less. A high stirring speed may be set at the beginning of the polycondensation reaction. As the polycondensation reaction progresses, if the viscosity of the reactants increases and the stirring force weakens, or if the temperature of the reactants exceeds the set temperature, the stirring speed may be adjusted accordingly. The polycondensation reaction was carried out until the intrinsic viscosity (IV) of the mixture (melt) in the reactor reached 0.60 dL / g. When the intrinsic viscosity of the mixture in the reactor reached the desired level, the mixture was discharged from the reactor to form strands, solidified in a cooling liquid, and then granulated to an average weight of approximately 12–14 mg to prepare approximately 5 kg of polyester resin (copolymer).
[0173] Furthermore, the glycol / diacid molar ratio of the polyester resins prepared in each of the examples and comparative examples was calculated. Furthermore, the content (wt%) of r-BHET in the polyester resins was calculated. The results are shown in Tables 2 and 3. [Table 2] [Table 3]
[0174] Test Example 1: First heat resistance index The first heat resistance index of the following formula (1) was calculated for the polyester resin.
number
[0175] In equation (1), DEG1, DEG2, and BHET0 are the peak area fractions (%) of 2-hydroxyethyl [2-(2-hydroxyethoxy)ethyl] terephthalate, bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate, and bis(2-hydroxyethyl) terephthalate, respectively, measured by high-performance liquid chromatography (HPLC). rBHET is the weight fraction (%) of recycled bis(2-hydroxyethyl) terephthalate in the polyester resin. The unitless values of these parameters (DEG1, DEG2, BHET0, and rBHET) were used to calculate the first heat resistance index (unitless).
[0176] Test Example 2: Second heat resistance index The second heat resistance index of the following formula (2) was calculated for the polyester resin. Second heat resistance index = (G / A) × 0.32 + 0.83...(2)
[0177] In formula (2), G and A are the number of moles of glycol and the number of moles of diacid, respectively, in the monomers constituting the polyester resin, and G / A is the molar ratio of glycol to diacid.
[0178] Test Example 3: Third Heat Resistance Index Using the first heat resistance index and second heat resistance index obtained above, a third heat resistance index was calculated using the following formula (3). Third heat resistance index = First heat resistance index + Second heat resistance index...(3)
[0179] Test Example 4: Amount of DEG formed The content (mol%) of diethylene glycol monomer out of all glycol components contained in the monomer mixture supplied for polymerization of the polyester resin was calculated and referred to as the "amount of added DEG." Furthermore, the content (mol%) of diethylene glycol residues relative to all glycol residues contained in the final polyester resin at the time of polymerization was calculated and referred to as the "amount of residual DEG." The content of diethylene glycol residues was measured at 25°C by dissolving each polyester resin in CDCl3 solvent at a concentration of 3 mg / ml using a nuclear magnetic resonance spectrometer (JEOL, 600 MHz FT-NMR). 1 It was determined from the H-NMR spectrum.
[0180] Using these, the amount of DEG formed was calculated according to the following formula (B). Amount of DEG formed = Amount of residual DEG - Amount of added DEG... (B)
[0181] Test Example 5: Intrinsic Viscosity (IV) The polyester resin was dissolved in orthochlorophenol (OCP) at 150°C to a concentration of 0.12% to obtain a solution, and the intrinsic viscosity was measured using an Ubbelohde viscometer in a constant temperature bath at 35°C. Specifically, the temperature of the viscosity tube was maintained at 35°C, and the time required for the solvent to pass through a specific part inside the viscosity tube (flow time) and the time required for the solution to pass through and attain a specific viscosity were used to calculate the intrinsic viscosity.
[0182] Test Example 6: Glass transition temperature (Tg) The glass transition temperature (Tg) of each polyester resin was measured by differential scanning calorimetry (DSC). A Mettler Toledo DSC1 model was used as the measurement device. Specifically, the polyester resin sample to be analyzed was dried at 60°C for 5-10 hours in a nitrogen atmosphere using a dehumidifying dryer (Moreto model D2T). Tg was measured under these conditions, with the residual moisture content in the sample being less than 500 ppm. Approximately 6-10 mg of the dried sample was taken, placed in an aluminum pan, and heated from room temperature to 280°C at a rate of 10°C / min (first scan) and annealed at 280°C for 3 minutes. The sample was then quenched to room temperature and heated again from room temperature to 280°C at a rate of 10°C / min (second scan), and a DSC curve was obtained. Furthermore, the Tg value was analyzed in the second scan of the DSC using the glass transition function in the DSC menu of the program provided by Mettler Toledo (STARe software). Here, Tg is defined as the temperature at which the maximum slope of the DSC curve obtained in the second scan first changes stepwise during the heating procedure. The temperature range of the scan was set to 15°C to 20°C, with the midpoint calculated by the program being -20°C to 15°C.
[0183] Test Example 7: Heat shrinkage rate (1) Preparation of polyester film Each polyester resin was extruded through a die at a temperature of 250-290°C and cast at a temperature of 20-50°C. The cast film was reheated at 75-90°C and stretched 5 times in the transverse direction (TD) only (i.e., MD stretch ratio:TD stretch ratio = 1:5). As a result, a polyester film with a thickness of 50 μm was obtained.
[0184] (2) Measurement of heat shrinkage rate The heat shrinkage of the polyester film was measured as follows. Each film was cut into a length of 5 cm and a width of 5 cm and stored at room temperature (20°C). Heat treatment conditions: The film sample was immersed in hot water at 70°C for 10 seconds and then removed. The dimensions before heat treatment (i.e., dimensions at room temperature) and after heat treatment were measured in the transverse direction (TD) of the film sample, and the heat shrinkage was calculated according to the following formula. Heat shrinkage rate (%) = [(dimension before heat treatment - dimension after heat treatment) / dimension before heat treatment] x 100
[0185] Furthermore, the dimensions before and after heat treatment were measured in the machine direction (MD), and the thermal shrinkage was calculated according to the above formula. The thermal expansion coefficient (%) was then calculated by multiplying the above by -1. The sum of the thermal shrinkage coefficient in the transverse direction (TD) and the thermal expansion coefficient (%) in the machine direction (MD) was then calculated.
[0186] Test Example 8: Thermal Shrinkage Rate The gradient of the thermal shrinkage rate according to the following formula (A) was determined by the methods of Test Examples 6 to 8.
number
[0187] In formula (A), HS1 is the heat shrinkage (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage (%) at a temperature 5°C below the glass transition temperature (Tg). The heat shrinkage is measured in the transverse direction (TD) of the film at each temperature.
[0188] The results are shown in Tables 4 and 5. [Table 4] [Table 5]
[0189] As can be seen from the above table, the polyester resins of Examples 1 to 6 had a first heat resistance index of 1.0 or less, a second heat resistance index of 1.6 or less, and a third heat resistance index of 2.0 or less. All of them had excellent intrinsic viscosities. In contrast, the polyester resins of Comparative Examples 1 to 3 had heat resistance indexes outside the preferred range and relatively poor melt intrinsic viscosities.
[0190] In particular, the polyester resins of Examples 1 to 6 had excellent heat resistance because the amount of DEG formed was 5 mol% or less and the glass transition temperature (Tg) was high. The thermal shrinkage slope of each film prepared from these polyester resins was 600% / °C or less, indicating good shrinkage properties, and the TD thermal shrinkage + MD thermal expansion coefficient at low temperatures (70°C) was 65% or less, which was good. In contrast, the polyester resins of Comparative Examples 1 to 3 had poor heat resistance because the amount of DEG formed was greater than 5 mol% and the glass transition temperature (Tg) was relatively low. The thermal shrinkage slope of the films prepared from these polyester resins was greater than 600% / °C, indicating poor shrinkage properties, and the TD thermal shrinkage + MD thermal expansion coefficient at low temperatures (70°C) was greater than 65% or was non-uniform, making them almost inapplicable to commercially available heat-shrinkable film processes.
Claims
1. A polyester resin containing recycled bis(2-hydroxyethyl) terephthalate obtained by depolymerization of waste polyester as a raw material monomer, the polyester resin having the following formula (A): [Equation 1] (In formula (A), HS1 is the heat shrinkage rate (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage rate (%) at a temperature of the glass transition temperature (Tg) - 5°C. The heat shrinkage rate is measured in the transverse direction (TD) of the film at each temperature after the polyester resin is extruded into a film and stretched 5 times in the transverse direction (TD).) The slope of the thermal shrinkage rate calculated by the above formula is 200% / °C to 600% / °C.
2. 2. The polyester resin according to claim 1, wherein the recycled bis(2-hydroxyethyl) terephthalate has a total diethylene glycol ester peak area fraction of less than 2% as measured by high performance liquid chromatography (HPLC).
3. In the polyester resin, the following formula (B): Amount of DEG formed = Amount of residual DEG - Amount of added DEG (B) (In formula (B), the amount of residual DEG is 1 The amount of DEG added is the content (mol %) of diethylene glycol residues in all glycol residues in the polyester resin measured by H-NMR, and the amount of DEG added is the content (mol %) of diethylene glycol monomer in all glycol components added in the production of the polyester resin.
2. The polyester resin of claim 1, wherein the amount of DEG formed is 5 mol % or less, calculated by:
4. The following formula (1): [Equation 2] (In formula (1), DEG 1 , DEG 2 , and BHET 0 are the peak area fractions (%) of 2-hydroxyethyl[2-(2-hydroxyethoxy)ethyl]terephthalate, bis[2-(2-hydroxyethoxy)ethyl]benzene-1,4-dicarboxylate, and bis(2-hydroxyethyl)terephthalate, respectively, when the recycled bis(2-hydroxyethyl)terephthalate is measured by high performance liquid chromatography (HPLC), and rBHET is the weight fraction (%) of recycled bis(2-hydroxyethyl)terephthalate in the polyester resin. The polyester resin according to claim 1, wherein the first heat resistance index calculated by the following formula is 1.0 or less.
5. The following formula (2): Second heat resistance index=(G / A)×0.32+0 .83...(2) (In formula (2), G and A are the number of moles of glycol and the number of moles of diacid, respectively, in the monomers constituting the polyester resin, and G / A is the molar ratio of glycol to diacid.) The polyester resin according to claim 4, wherein the second heat resistance index calculated by the following formula is 1.6 or less.
6. The following formula (3): Third heat resistance index = First heat resistance index + Second heat resistance index... (3) The polyester resin according to claim 5, wherein the third heat resistance index calculated by the following formula is 2.0 or less.
7. 10. The polyester resin of claim 1, wherein the recycled bis(2-hydroxyethyl) terephthalate is used in an amount of 10% to 99% by weight based on the weight of the polyester resin.
8. the polyester resin contains a diacid component and a glycol component as raw material monomers; the diacid component comprises at least one selected from the group consisting of terephthalic acid, isophthalic acid, dimethyl isophthalate, phthalic acid, dimethyl phthalate, phthalic anhydride, 2,6-naphthalenedicarboxylic acid, dimethyl 2,6-naphthalenedicarboxylate, diphenyldicarboxylic acid, 1,4-cyclohexanedicarboxylic acid, 1,3-cyclohexanedicarboxylic acid, dimethyl 1,4-cyclohexanedicarboxylate, dimethyl 1,3-cyclohexanedicarboxylate, sebacic acid, succinic acid, isodecylsuccinic acid, maleic acid, maleic anhydride, fumaric acid, adipic acid, glutaric acid, and azelaic acid; the glycol component comprises at least one selected from the group consisting of isosorbide, ethylene glycol, 1,2-propanediol, 1,3-propanediol, 2-methyl-1,3-propanediol, 2-methylene-1,3-propanediol, 2-ethyl-1,3-propanediol, 2-isopropyl-1,3-propanediol, 2,2-dimethyl-1,3-propanediol, 1,4-butanediol, 2,3-butanediol, 3-methyl-1,5-pentanediol, 3-methyl-2,4-pentanediol, 1,6-hexanediol, 1,2-cyclohexanediol, 1,4-cyclohexanediol, diethylene glycol, 4-(hydroxymethyl)cyclohexylmethyl-4-(hydroxymethyl)cyclohexanecarboxylate, and 4-(4-(hydroxymethyl)cyclohexylmethoxymethyl)cyclohexylmethanol; The polyester resin according to claim 1.
9. 2. The polyester resin according to claim 1, wherein the intrinsic viscosity (IV) at 35° C. is 0.5 dl / g to 0.9 dl / g.
10. A method for preparing a polyester resin, comprising polymerizing a polyester resin using recycled bis(2-hydroxyethyl) terephthalate obtained by depolymerization of waste polyester; When measured by high performance liquid chromatography (HPLC), the recycled bis(2-hydroxyethyl) terephthalate has a total peak area fraction of diethylene glycol esters of less than 2%, and the polyester resin is represented by the following formula (A): [Equation 3] (In formula (A), HS1 is the heat shrinkage rate (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage rate (%) at a temperature of the glass transition temperature (Tg) - 5°C. The heat shrinkage rate is measured in the transverse direction (TD) of the film at each temperature after the polyester resin is extruded into a film and stretched 5 times in the transverse direction (TD).) The method according to claim 1, wherein the slope of the thermal shrinkage calculated by the above formula is 200% / °C to 600% / °C.
11. An article comprising the polyester resin of any one of claims 1 to 9.
12. 12. The article of claim 11, which is a film, sheet, or profile.
13. A heat-shrinkable polyester film comprising the polyester resin according to any one of claims 1 to 9, which has the following formula (A): [Equation 4] (In formula (A), HS1 is the heat shrinkage (%) at the glass transition temperature (Tg), and HS2 is the heat shrinkage (%) at a temperature that is the glass transition temperature (Tg) - 5°C. The heat shrinkage is measured in the transverse direction (TD) of the film at each temperature.) The heat-shrinkable polyester film has a thermal shrinkage rate gradient calculated by the following formula: 200% / °C to 600% / °C.
14. 14. The heat-shrinkable polyester film according to claim 13, wherein the sum of the thermal shrinkage rate in the transverse direction (TD) and the thermal expansion rate (%) in the machine direction (MD) at 70°C is 65% or less.
Citation Information
Patent Citations
Thermo-shrinkable polyester film
JP1991290441A
Raw material for synthetic resin product
JP2000239233A
METHOD FOR PRODUCING BIS-beta-HYDROXYETHYL TEREPHTHALATE
JP2003055300A
Method for producing bis-(2-hydroxyethyl) terephthalate and method for producing polyethylene terephthalate
JP2008088096A
Heat-shrinkable polyester-based film, and package
JP2020073637A