Device and method for producing polymer fibers and uses thereof
The device and method address the limitations of existing polymer fiber production by using centrifugal force from compressed gas to produce fibers at high rates and wide polymer compatibility, achieving efficient, large-scale, and environmentally friendly production of biodegradable materials.
Patent Information
- Application Number
- JP2021118357
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-13
- Filing Date
- 2021-07-19
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2041-07-19
AI Technical Summary
Existing methods for producing polymer fibers, such as electrospinning, meltblowing, and meltspinning, are limited by slow production rates, high capital investment, and the inability to use a wide range of polymers, particularly biopolymers, due to melting requirements and viscosity constraints, leading to high costs and environmental concerns.
A device and method utilizing a nozzle and tubular fiber spinning needle with centrifugal force from compressed gas to produce polymer fibers continuously at high rates, allowing for a wide range of polymers, including biopolymers, without high voltage and hazardous chemicals, using a solution-based spinning technique.
Enables high-speed production of polymer fibers with improved morphology and mechanical properties, supporting large-scale production of biodegradable materials and reducing environmental impact through solvent evaporation, while being energy-efficient and cost-effective.
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Abstract
Description
[Technical Field]
[0001] BACKGROUND This disclosure relates generally to the production of polymer fibers, and more particularly to devices and methods for producing polymer fibers based on polymer solution-based spinning techniques and nonwoven polymer materials based on the polymer fibers.
[0002] There is an increasing need for textile products made from various polymers to meet the end-use needs of various customers. Therefore, polymeric ultrafine fiber structures are increasingly being investigated for use in various applications, such as textile materials, medical prostheses, building materials, reinforcing materials, and absorbent materials, due to their large specific surface area. Most nonwoven microfiber webs or nonwoven nanofiber webs are produced by electrospinning, meltspinning, meltblowing, or blowspinning. Electrospinning is an electric-charge-induced spinning method for producing nanofibers. In addition to the slow fiber production rate (i.e., the amount of fibers produced per unit time), a further drawback of electrospinning is that the collected material must be conductive to prevent charge buildup. Electrospinning requires high voltages, making this technique dangerous. Therefore, safer solutions are needed. Furthermore, the solvents used in electrospinning must be at least somewhat conductive, thus limiting the range of possible solvents. Meltblowing and meltspinning enable industrial- or commercial-scale production of nanofiber materials at production rates ranging from about several hundred kilograms to about several tons per 24 hours, and therefore require much higher capital investment. Both meltblowing and meltspinning require the polymer to be melted prior to the spinning process. This limits the number of polymers that can be spun. This is because many polymers, especially those derived from biological sources, cannot be melted because they break down before melting. Furthermore, meltblowing and meltspinning are also limited by the viscosity of the molten polymer. This viscosity must be low enough that the polymer melt is extrudable and that an airflow can stretch the polymer melt into fiber form. As an alternative method for producing nonwoven webs of microfibers and nanofibers with diameters comparable to those produced by the electrospinning process, solution-blown spinning technology has been developed using elements of both electrospinning and meltblowing technologies. The solution flow in the blown spinning method is slow, resulting in lower fiber production.
[0003] Existing devices and methods that attempt to produce polymeric microfiber or nanofiber materials have low fiber production rates. Furthermore, known methods have difficulty realizing the full potential of microfibers and nanofibers due to limited options for mass production. While there is an increasing demand for bio-based, environmentally friendly microfibers and nanofibers, there are currently no fast, cost-effective methods for producing bio-based microfibers and nanofibers on a large scale. Currently, known methods are expensive or slow, and furthermore, are limited to only a few polymers and solvents. Therefore, there is a need to address the aforementioned technical shortcomings in existing technologies in order to produce polymer fibers at higher fiber production rates with inexpensive and simple machine requirements using a wide range of polymers. Abstract
[0004] The present disclosure seeks to provide an efficient device and method for continuously producing polymer fibers with inexpensive and simple machine requirements using a wide range of polymers (e.g., synthetic polymers, biopolymers, etc.). The object of the present disclosure is to provide a solution that at least partially overcomes the problems encountered in the prior art and to provide improved methods and systems for producing synthetic and biopolymer fibers at higher fiber production rates, without the need for precision-engineered parts with tight manufacturing tolerances, and without the need for the use of hazardous chemicals. The object of the present disclosure is achieved by the solution provided in the attached independent claims. Advantageous embodiments of the present disclosure are further defined in the dependent claims.
[0005] According to a first aspect, the present disclosure provides a device for producing polymer fibers, the device comprising at least one nozzle configured to receive a polymer solution and a jet of compressed gas, the at least one nozzle comprising a body having a hollow space, an open first end and a second end opposite the first end, a first inlet for the jet of compressed gas at the second end, and at least one tubular fiber spinning needle mounted through the second end and the hollow space, the at least one tubular fiber spinning needle having an unfixed distal end protruding from the open first end, a proximal end opposite the unfixed distal end, and a first inlet for the jet of compressed gas at the proximal end. at least one nozzle, the at least one nozzle having an inlet and an outlet for the polymer solution at the non-fixed distal end, the proximal end of the at least one tubular fiber spinning needle being fixed to the second end of the at least one nozzle; a pump configured to inject the polymer solution through the at least one tubular fiber spinning needle of the at least one nozzle; a gas compressor configured to direct the jet of compressed gas into the first inlet of the at least one nozzle; and a pump configured to pump the polymer solution through the at least one tubular fiber spinning needle of the at least one nozzle. The first way to move And, it is equipped with.
[0006] The device disclosed herein enables continuous in-line production of polymer fibers at high fiber production rates with inexpensive and simple machinery requirements using a wide range of polymers (e.g., synthetic polymers, biopolymers) and solvents used for polymer fiber production. It does not require high voltage and is highly energy-efficient. The polymer fibers produced by the device are harmless because the device allows all solvent to evaporate after polymer fiber formation, thus obtaining harmless polymer fibers. The increased production rate compared to conventional solutions is achieved by the rotational movement of the tubular fiber spinning needle and at least one nozzle that allows centrifugal force acting on the tubular fiber spinning needle, resulting in a polymer injection rate per nozzle that is more than 10 times higher than known technologies. The rotational movement of the tubular fiber spinning needle breaks the polymer solution jet into droplets. The droplets are then accelerated and stretched in an airflow, resulting in the formation of fibers from each droplet. This device configuration allows for faster fiber formation than known devices, thus providing higher production rates. Additionally, in different embodiments, the device allows for the implementation of multiple nozzles, which allows for the formation of several fibers simultaneously, resulting in even higher fiber production rates compared to devices in which only one fiber is formed at a time from a single nozzle.
[0007] According to a second aspect, there is provided a method for producing polymer fibers, the method comprising: injecting a polymer solution into at least one nozzle through the polymer solution inlet of at least one tubular fiber spinning needle of said at least one nozzle; directing a jet of compressed gas into said at least one nozzle through a first compressed gas inlet; imparting motion to said at least one tubular fiber spinning needle by said jet of compressed gas; forming droplets of the polymer solution at a tip of a distal end of said at least one tubular fiber spinning needle; and obtaining a polymer fiber from said formed droplets, wherein said polymer fiber has a diameter of 0.2 to 10 micrometers, more particularly 0.1 to 10 micrometers.
[0008] The disclosed method increases fiber production rates through continuous in-line production and enables the realization of polymer fibers with unique morphologies resulting in large specific surface areas. By applying motion, e.g., vibration, relative to the tubular fiber spinning needle, the vibrating tubular fiber spinning needle ensures that the polymer does not precipitate from the polymer solution at the tip of the tubular fiber spinning needle. The disclosed method allows for the use of both synthetic and biopolymers to produce polymer fibers, offering more possibilities for producing different types of polymer nanofiber webs for different types of materials and applications. A further advantage of the disclosed method is that it allows for the production of microfiber and nanofiber materials from small to large scales (i.e., from research-scale production to large-scale production). Embodiments of the disclosed method do not require melting the polymer used in the polymer fiber production process. Therefore, it is possible to spin fibers from biopolymers, many of which cannot tolerate high temperatures. The disclosed method enables much higher polymer fiber production rates than existing technologies.
[0009] For example, the use of biopolymers offers several important advantages. Materials made from biopolymers are biodegradable and bioabsorbable. Because biopolymers generally do not melt, the only way to prepare them is by dissolving them in a solvent. For example, a significant advantage in the production of gelatin fibers is the ability to use water as a solvent. Therefore, no harmful chemicals are used in the production of gelatin fibers. When used with other types of solvents, the method disclosed herein allows for the evaporation of all solvents, thus obtaining harmless polymer fibers. Materials made from harmless polymer fibers are needed, for example, in the medical field. Furthermore, biopolymers are important for several additional reasons. Biopolymers offer a solution to the increasing amount of non-biodegradable plastic waste worldwide. Unlike many synthetic polymers, biopolymers are not derived from non-renewable resources. Third, one major area of use for biopolymers is the medical field, where it can be advantageous for the materials used to decompose in the body after completing their task. Biodegradability is an important aspect in such cases.
[0010] According to a third aspect, a polymer solution for producing polymer fibers is provided, comprising at least one polymer dissolved in at least one solvent. The concentration of the at least one polymer is 9% to 45% by weight of the at least one solvent, and the viscosity of the polymer solution is 1 mPa-s to 5000 mPa-s. Embodiments of the polymer solution, device, and method according to the present disclosure enable the production of polymer fibers at both the microscale and nanoscale. By varying the method parameters, it is possible to partially produce only nanofibers, only microfibers, or both micro- and nano-areas simultaneously. Which option is realized depends on the specific material and condition combination. A further advantage of using a polymer solution for producing polymer fibers is that the components of the polymer solution can evaporate, and therefore the resulting polymer fibers do not contain any harmful chemicals.
[0011] According to a fourth aspect, there is provided a material comprising the polymer fibers produced by the present method, which is used to make nonwoven filter materials, leather-like fabrics, biomaterials for bone regeneration, wound care materials, 3D scaffolds for cell culture and tissue engineering, electrode materials for capacitors, ceramic nanofibers (e.g., Al2O3 nanofibers), and cell-cultured meat. An advantage of materials produced from polymer fibers according to the present disclosure is that the polymer fiber-containing material has a twisted ribbon-type mesh morphology of the nanofibers, making it airy and fluffy. Polymer fiber-based materials also have superior tensile strength and superior mechanical properties than those enabled by conventional spinning techniques.
[0012] Embodiments of the present disclosure overcome the aforementioned problems with existing known approaches for producing polymer fibers. An advantage of embodiments according to the present disclosure is that they enable continuous, in-line production of polymer fibers at higher production rates with less expensive and simpler machinery requirements. The embodiments are compatible with a wide range of synthetic polymers, biological polymers, and solvents used for polymer fiber production. The embodiments do not require high voltages and are highly energy efficient. Further aspects, advantages, features, and objectives of the present disclosure will become apparent from the drawings and detailed description of exemplary embodiments taken in conjunction with the following appended claims. It will be understood that features of the present disclosure can be combined in various combinations without departing from the scope of the present disclosure, as defined by the appended claims. [Brief explanation of the drawings]
[0013] The foregoing summary and the following detailed description of exemplary embodiments will be better understood when read in conjunction with the accompanying drawings. For the purpose of illustrating the disclosure, there are shown in the drawings exemplary configurations of the disclosure. However, the disclosure is not limited to the particular methods and instrumentalities disclosed herein. Moreover, those skilled in the art will appreciate that the drawings are not to scale. Wherever possible, like elements have been designated with like numerals. Embodiments of the present disclosure will now be described, by way of example only, with reference to the following figures: [Figure 1]FIG. 1 is a schematic diagram of a device for producing polymer fibers according to an embodiment of the present disclosure. [Figure 2A] FIG. 2 is a schematic top view of the nozzle of FIG. 1 having a cylindrical body configured to produce polymer fibers, according to an embodiment of the present disclosure. [Figure 2B] FIG. 2 is a schematic top view of the nozzle of FIG. 1 having a conical body configured to produce polymer fibers, according to an embodiment of the present disclosure. [Figure 3A] FIG. 2B is a schematic diagram of a cross-sectional view AA of the nozzle of FIG. 2A having a cylindrical hollow space, according to an embodiment of the present disclosure. [Figure 3B] FIG. 2B is a schematic diagram of a cross-sectional view AA of the nozzle of FIG. 2A having a conical hollow space, according to an embodiment of the present disclosure. [Figure 3C] FIG. 2B is a schematic diagram of a cross-sectional view AA of the nozzle of FIG. 2A having a cylindrical-conical hollow space, according to an embodiment of the present disclosure. [Figure 3D] FIG. 2C is a schematic diagram of a cross-sectional view BB of the nozzle of FIG. 2B having a conical body and a conical hollow space, according to an embodiment of the present disclosure. [Figure 3E] FIG. 1 is a schematic diagram of a nozzle with a sleeve according to an embodiment of the present disclosure. [Figure 4A] 1 is a schematic illustration of the oscillatory movement of a tubular fiber spinning needle of a nozzle and a polymer fiber spinning process according to an embodiment of the present disclosure. FIG. [Figure 4B] 4B is a schematic illustration of the oscillating motion of the nozzle's tubular fiber spinning needle and the polymer fiber spinning process of the circularly moving polymer solution droplet of FIG. 4A according to an embodiment of the present disclosure. [Figure 5] FIG. 1 is a schematic diagram of a device for producing polymer fiber materials according to an embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic diagram of a device having a heating unit and a solvent evaporation chamber for producing polymer fiber materials according to an embodiment of the present disclosure. [Figure 7] FIG. 1 is a schematic diagram of a device including a spinneret configured to produce polymer fibers, according to an embodiment of the present disclosure. [Figure 8A] FIG. 1 is a schematic diagram of a spinneret configured to produce polymer fibers, according to an embodiment of the present disclosure. [Figure 8B] FIG. 1 is a schematic diagram of a spinneret configured to produce polymer fibers, according to an embodiment of the present disclosure. [Figure 9] 1 is a flow chart illustrating a method for producing polymer fibers according to an embodiment of the present disclosure. [Figure 10] FIG. 1 is a diagram of a polymer fiber morphology according to the present disclosure. Detailed Description of the Embodiments
[0014] The following detailed description illustrates embodiments of the present disclosure and how the embodiments may be practiced. Although several modes of carrying out the disclosure are disclosed, those skilled in the art will recognize that other embodiments for carrying out or practicing the disclosure are also possible.
[0015] According to a first aspect, there is provided a device for producing polymer fibers, comprising at least one nozzle configured to receive a polymer solution and a jet of compressed gas, the at least one nozzle comprising a body having a hollow space, an open first end and a second end opposite the first end, a first inlet for a jet of compressed gas at the second end, and at least one tubular fiber spinning needle mounted through the second end and the hollow space, the at least one tubular fiber spinning needle having a free distal end protruding from the open first end, a proximal end opposite the free distal end, a polymer solution inlet at the proximal end, and a polymer solution outlet at the free distal end, the proximal end of the at least one tubular fiber spinning needle being fixed to the second end of the at least one nozzle. The device further includes a pump configured to inject the polymer solution through at least one tubular fiber spinning needle of the at least one nozzle; a gas compressor configured to direct a jet of compressed gas into a first compressed gas jet inlet of the at least one nozzle; and a non-stationary distal end of the at least one tubular fiber spinning needle. The first way to move It is equipped with:
[0016] An advantage of the embodiments is that they enable continuous in-line production of polymer fibers at high production rates with inexpensive and simple machine requirements. The devices according to the embodiments allow for the use of a wide range of polymers (e.g., synthetic polymers, biopolymers, etc.) and solvents used for polymer fiber production. The devices do not require high voltage and are highly energy efficient. Furthermore, the devices facilitate the use of polymers that are resistant to low temperatures and that are dissolved in a solvent to produce polymer fibers. Thus, melting of the polymer is not required for the production of polymer fibers.
[0017] Thus, the device enables more efficient production of polymer fibers from a polymer solution at faster polymer fiber production rates. In an embodiment of the present disclosure, a jet of compressed gas creates a torque acting on at least one tubular fiber spinning needle. As used herein, the term "at least one tubular fiber spinning needle" refers to one or more tubular fiber spinning needles of the present disclosure, and is hereinafter referred to as a tubular fiber spinning needle throughout the present disclosure. According to one embodiment of the present disclosure, the tubular fiber spinning needle can be a syringe needle-type mechanism. The torque applied by the spinning air vortex then creates an oscillatory motion of the tubular fiber spinning needle. This creates a vibration effect on the non-fixed distal end of the tubular fiber spinning needle, which is useful for preventing deposition of the polymer solution at the tip of the tubular fiber spinning needle.
[0018] The device further provides a solution to the increasing amount of non-biodegradable plastic waste, as it allows for the production of polymer fibers from renewable resources (e.g., biopolymers such as gelatin, collagen, etc.). The device further enables the production of both micro- and nano-fibers, including a distribution of fiber diameters in both the micro- and nano-area simultaneously. Furthermore, the device enables the production of polymer fibers on small, medium, and large scales, with high fiber production rates and lower production costs.
[0019] A jet of compressed gas is delivered to the hollow space of the nozzle through a first compressed gas inlet. According to an embodiment of the present disclosure, the nozzle may have, for example, a cylindrical or conical profile. The conical shape of the nozzle allows the gas flow of the jet of compressed gas to exit the nozzle and gain additional air from the sides of the nozzle due to the Venturi effect. The Venturi effect is the resulting reduction in pressure when the jet of compressed gas flows through a conically shaped nozzle. Furthermore, the conical profile allows for material savings.
[0020] The compressed gas inlet is offset from the nozzle axis and extends through the nozzle body so that the distal edge of the nozzle's hollow space and the edge of the compressed gas first inlet are tangential, i.e., aligned. This is necessary to generate a rotating vortex of the compressed gas jet. The compressed gas jet exits the open first end of the nozzle. When directed into the nozzle's hollow space, the compressed gas jet moves toward the open first end of the nozzle, drawing the polymer solution away from the tubular fiber spinning needle and beginning to move in a circular motion around the polymer solution at the non-stationary distal end of the tubular fiber spinning needle. The combination of the forward and circular motion of the compressed gas jet results in a helical trajectory (e.g., a spiral motion) of the compressed gas jet, which in turn causes the non-stationary distal end of the tubular fiber spinning needle to rotate (i.e., rotate) or oscillate. This rotational or oscillatory motion of the free-standing distal end of the tubular fiber spinning needle creates centrifugal forces acting on the polymer solution, breaking it into droplets at the polymer solution outlet. Polymer fibers are formed from the polymer solution droplets as they are accelerated and drawn in a gas stream provided by the jet of compressed gas. The forming polymer fibers are elongated by the jet of compressed gas.
[0021] The polymer fiber can continue to grow due to the rotational or oscillatory motion of the free distal end until a jet of compressed gas separates the polymer fiber from the polymer solution droplet. The centrifugal force acting on the polymer solution improves the morphology of the polymer fiber because it helps make the polymer fiber airy or fluffy, which performs better than other dense materials.
[0022] The hollow space of the nozzle provides space for the tubular fiber spinning needle to oscillate or rotate the free distal end of the tubular fiber spinning needle, the hollow space defining the radius of rotational or oscillating motion of the free distal end of the tubular fiber spinning needle.
[0023] The jet of compressed gas can be heated before being directed into the hollow space of the nozzle to warm the nozzle assembly. This improves solubility and reduces the viscosity of the polymer solution. Another advantage of heated compressed air is that it mitigates the cooling effect as the gas expands to atmospheric pressure. The oscillatory motion of the tubular fiber spinning needle ensures that polymer does not precipitate from the polymer solution at the non-stationary distal end of the tubular fiber spinning needle.
[0024] In one embodiment, the open first end of the at least one nozzle and the non-stationary distal end of the tubular fiber spinning needle exert centrifugal force, which in turn acts on the polymer solution present in the at least one nozzle to produce droplets of the polymer solution. The first means for In some embodiments, the rotational or oscillatory motion of the free-standing distal end of the tubular fiber spinning needle may be sufficient to exert centrifugal force on the polymer solution present in the at least one nozzle to produce droplets of the polymer solution. The first means can cause a movement of the non-fixed distal end of the tubular fiber spinning needle that includes at least one of a rotation, an oscillation, a pivoting, a circular movement, or a combination of different types of movements.
[0025] The pivoting of the open first end of the at least one nozzle and the rotational or oscillating motion of the non-fixed distal end of the tubular fiber spinning needle can be produced by a jet of compressed gas moving in a helical trajectory to exert centrifugal force on the polymer solution exiting the at least one nozzle. The device can include an additional centrifugal force component acting on the polymer solution. This additional centrifugal force can further improve the morphology of the produced polymer fibers and the fiber production rate of the device. The centrifugal force acting on the polymer solution exiting the at least one nozzle at the non-fixed distal end of the tubular fiber spinning needle breaks the polymer solution at the tip of the distal end into droplets that oscillate in a circular fashion with the distal end of the tubular fiber spinning needle.
[0026] The tubular fiber spinning needles are optionally mounted through the second end and hollow space of the at least one nozzle in various geometric configurations. The tubular fiber spinning needles can be mounted through the second end and hollow space of the at least one nozzle in a circular configuration. The tubular fiber spinning needles are optionally mounted through the second end and hollow space of the at least one nozzle in a stacked configuration.
[0027] The device may produce at least one of microfibers and nanofibers. The device may produce at least one of nanofibers and microfibers by varying process parameters. The process parameters may vary depending on conditions and may be selected from at least one of an injection rate of the polymer solution, a pressure of the injected polymer solution, a pressure of the jet of compressed gas, and a rate of polymer fiber production. The device allows distribution of polymer fiber production in at least one of a micro-area or a nano-area based on the specific type of polymer used for production, along with a combination of operating conditions. The operating conditions of the device may include a temperature of the jet of compressed gas. The device may include a control unit for controlling the operation of at least one of a pump, a gas compressor, and a mechanical or electromechanical device.
[0028] In one embodiment, the device produces polymer fibers at a rate of 1 to 1.5 kg / hour. This rate improves the morphology of the polymer fibers, allowing them to perform better than other dense polymer materials. The rate can be from 1, 1.1, 1.2, 1.3, or 1.4 kg / hour to 1.1, 1.2, 1.3, 1.4, or 1.5 kg / hour. For example, the device produces polymer fibers at a rate of 21 grams per nozzle hole per hour. This rate improves the morphology of the resulting polymer fibers and is useful for large-scale production of polymer fibers. The rate can be, for example, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, or 28 grams per nozzle hole per hour.
[0029] According to embodiments of the present disclosure, the cross-section of the resulting polymer fiber can be oval, dumbbell, or circular, to a lesser extent. The oval cross-section of the polymer fiber provides a flat, tape-like appearance to the polymer fiber. The dumbbell cross-section provides a flat, tape-like appearance to the polymer fiber. During the spinning process, some of the polymer fiber first solidifies on the surface of the polymer solution, creating a structure with an empty polymer cylinder inside. The empty polymer cylinder structure formed inside the polymer fiber can collapse to create an oval or dumbbell cross-section. The cross-section of the polymer fiber can have a structure resembling a helix due to the twisting of the polymer fiber caused by the rotational movement of the polymer fiber during the fiber formation process.
[0030] According to one embodiment, the device further comprises two or more nozzles and a spinneret comprising a hollow body having a second inlet for the jet of compressed gas, The two or more nozzles are connected to the hollow body at the second end; The gas compressor is configured to direct a jet of compressed gas into the hollow body of the spinneret through the second compressed gas jet inlet and through the hollow body to the first compressed gas jet inlet of each of the two or more nozzles. In this embodiment, the device includes a spinneret with two or more nozzles, or two or more nozzles connected to the spinneret. Each of the nozzles has a tubular fiber spinning needle for forming polymer fibers. The two or more nozzles attached to the spinneret can be, for example, cylindrical or conical nozzles. The spinneret is configured to perform a spinning process to produce polymer fibers.
[0031] According to one embodiment, the device may further comprise two or more spinnerets mounted together to form a set, each of the spinnerets comprising two or more nozzles. Such an embodiment allows for stacking multiple spinnerets on top of each other in a row or other configuration, which allows for doubling of fiber production rate.
[0032] The tubular fiber spinning needle may be fixed to the hollow body of the spinneret, and when the tubular fiber spinning needle vibrates due to the oscillatory motion caused by the jet of compressed gas, the spinneret may also be configured to vibrate to ensure that the polymer solution does not precipitate out of the polymer solution at the unfixed distal end of the tubular fiber spinning needle.
[0033] According to embodiments, the hollow body of the spinneret may have a triangular, flattened triangular, circular, or pyramidal shape. Each spinneret may include one or more nozzles protruding from the hollow body of the spinneret and one or more secondary inlets for jets of compressed gas. In one example, each spinneret may include a circular hollow body with at least four nozzles protruding from the circular hollow body and at least four secondary inlets for jets of compressed gas.
[0034] According to an embodiment, the polymer solution is injected into the spinneret through two or more nozzles connected to the hollow body of the spinneret. The polymer solution may be heated before passing through the two or more nozzles. A compressed gas jet directed into the hollow body of the spinneret through the second compressed gas jet inlet and the first compressed gas jet inlet of each of the two or more nozzles may be heated before entering the hollow body of the spinneret. The compressed gas jet may be heated to mitigate cooling effects due to reduced pressure. The compressed gas jet is directed through the two or more nozzles such that the gas flow of the compressed gas jet at the open first end of each of the two or more nozzles includes a component parallel to the direction of polymer solution flow and a component tangential to the surface of the polymer solution jet and perpendicular to the direction of polymer solution flow. This causes a tubular fiber spinning needle to oscillate, and the oscillating motion of the tubular fiber spinning needle generates centrifugal forces acting on the polymer solution, breaking it into droplets to produce polymer fibers.
[0035] The polymer solution is directed into each tubular fiber spinning needle disposed within the two or more nozzles through a polymer solution inlet, which may optionally be disposed in an inlet housing configured to receive the polymer solution from the second inlet and further configured to direct the polymer solution into the inlet.
[0036] The device optionally includes a frame on which two or more nozzles or two or more spinnerets are mounted, and the two or more nozzles or two or more spinnerets are driven by means of a mechanical or electromechanical device. move The two or more nozzles or two or more spinnerets may be mounted in a horizontal orientation on the frame or in a vertical orientation on the fixed frame. The two or more nozzles or two or more spinnerets may be mounted in a front-to-back or up-and-down orientation on the fixed frame to deposit the polymer fibers onto the air permeable fiber collecting surface. To be moved The two or more nozzles of the spinneret may be connected to the frame in an up-down direction on the frame to deposit the polymer fibers onto the surface of the air permeable fiber collecting surface. While being moved It may be configured to rotate.
[0037] According to one embodiment, the non-fixed distal end of at least one tubular fiber spinning needle The first way to move a non-fixed distal end of at least one tubular fiber spinning needle; move a mechanical or electromechanical device for vibrating the at least one nozzle; and a first inlet for a jet of compressed gas at a second end of the at least one nozzle. The first means is selected from the group comprising: The first meansThe method may involve rotating, oscillating, pivoting, circular, or a combination of different types of motion of the non-fixed distal end of a tubular fiber spinning needle at the nozzle or open first end of the nozzle by a jet of compressed gas moving in a helical trajectory. The rotating, oscillating, pivoting, circular, or a combination of different types of motion of the tubular fiber spinning needle may be achieved by rotating the non-fixed distal end of the tubular fiber spinning needle at the nozzle or open first end using a mechanical or electromechanical device attached to the nozzle or spinneret. move The spinning motion can be initiated by providing a vibration directly to the tubular fiber spinning needle. The rotational, oscillating, pivoting, circular motion of the tubular fiber spinning needle, or a combination of different types of motion, can be achieved by a second end of the tubular fiber spinning needle secured to a spinneret through the hollow space of the nozzle. The spinneret is configured to transfer the motion to the tubular fiber spinning needle by a mechanical or electromechanical device.
[0038] According to one embodiment, the device further comprises a collection unit for collecting the polymer fibers, The collection unit includes an air-permeable fiber collecting surface and a suction unit configured to draw air through the air-permeable fiber collecting surface to generate a suction pressure for depositing polymer fibers on the air-permeable fiber collecting surface. In one embodiment, the collection unit is positioned at a distance of 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, or 1.9 meters to 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, or 2 meters from the at least one nozzle or at least one spinneret. The suction pressure is at least 10 Pascals below ambient pressure. The air-permeable fiber collecting surface can serve as a substrate material for the polymer fiber material. The air permeable fiber collecting surface may include an air permeable fiber collecting material (e.g., a fabric) attached to the air permeable fiber collecting surface for collecting the resulting polymer fibers. The air permeable fiber collecting surface may include a surface that is oriented perpendicular to the spinning direction of the at least one nozzle or at least one spinneret. Move The thickness of the polymer fiber material is controlled by varying the speed at which the air-permeable fiber collecting surface moves. The suction unit can draw air through the air-permeable fiber collecting surface. A jet of compressed gas flowing along at least one nozzle enables the movement of the polymer fibers onto the air-permeable fiber collecting surface. The jet of compressed gas can flow through the collected polymer fiber material, thereby drying any solvent vapor that may remain on the polymer fiber material. The rate of evaporation of the solvent from the polymer fibers can be increased by drawing the jet of compressed gas through the polymer fiber material. The jet of compressed gas drawn into the polymer fiber material can guide the airborne polymer fibers onto the air-permeable fiber collecting surface and generate additional force that causes the polymer fibers to adhere to each other on the air-permeable fiber collecting surface to form the polymer fiber material.
[0039] The collecting unit may further include one or more rollers downstream of the collecting unit that allow the air permeable fiber collecting surface to move in a direction perpendicular to the spinning direction of the at least one nozzle. The collecting unit may further include a take-up roller, and the polymer fiber material is directed toward and wound onto the take-up roller. The one or more rollers and the take-up roller may be, for example, cylindrical rollers. The take-up roller may have a roll width of up to 1.2 meters, a roll width greater than 1.2 meters, or a customizable roll width.
[0040] According to one embodiment, the air permeable fiber collecting surface further comprises an air permeable fiber collecting material that facilitates collecting the resulting polymeric fibers. The air permeable fiber collecting material may be selected from a variety of porous materials, including spunbond nonwovens, needlepunched nonwovens, woven fabrics, knit fabrics, apertured films, paper, or combinations thereof.
[0041] According to one embodiment, the collecting unit further comprises a heating and solvent evaporation chamber, and the air-permeable fiber collecting surface is a movable air-permeable fiber collecting surface. The heating and solvent evaporation chamber may be provided with a heating unit. The resulting polymer fibers collected on the air-permeable fiber collecting surface are directed to the heating and solvent evaporation chamber to evaporate the solvent more quickly. The resulting polymer fibers may be directed to a heating and solvent evaporation chamber depending on the solvent used and the further use of the formed polymer fibers. The collecting unit may further comprise a heating chamber, to which the resulting polymer fibers are directed to heat the polymer fibers, and then further directed to the collecting unit. If solvent removal is not important, the formed polymer fibers may be guided directly to the collecting unit without passing through the heating and solvent evaporation chamber. The movable air-permeable fiber collecting surface allows the resulting polymer fibers to be directed to the collecting unit or the solvent evaporation chamber. The movable air-permeable fiber collecting surface may be, for example, an air-permeable conveyor, a continuous collecting belt, or a manually removable collecting surface. For example, the polymer fiber material may be collected on a continuous collection belt and pulled through a solvent evaporation section to evaporate the solvent from the resulting polymer fibers collected on the continuous collection belt. The solvent is evaporated, for example, by using a fan or heat.
[0042] According to one embodiment, the diameter of at least one nozzle is between 1.5 mm and 5.0 mm, and the diameter of at least one tubular fiber spinning needle is between 0.6 mm and 1.6 mm. A nozzle diameter of 1.5 to 5 mm provides sufficient space for the hollow space at the open first end of the nozzle, and therefore sufficient space for the tubular fiber spinning needle to rotate or oscillate. If the diameter is too small, there is not enough room at the open first end of the nozzle for the distal end of the tubular spinning needle to oscillate or rotate within the hollow space of the nozzle. If the diameter is too large, sufficient pressure will not build up within the hollow space. The diameter of the nozzle can be from 1.5, 2, 2.5, 3, 3.5, 4, or 4.5 mm to 2, 2.5, 3, 3.5, 4, 4.5, or 5 mm. The diameter of the tubular fiber spinning needle can be between 0.6 and 1.6 mm. A tubular fiber spinning needle with a larger diameter will not vibrate or rotate sufficiently, and a tubular fiber spinning needle with a smaller diameter will not pass enough polymer solution. Therefore, the diameter of the tubular fiber spinning needle can be from 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, or 1.5 mm to 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, or 1.6 mm. In one embodiment, the preferred diameter of the nozzle is 3 mm, and the preferred diameter of the tubular fiber spinning needle is 0.8 mm, which provides the best fiber formation results.
[0043] According to one embodiment, the device comprises a nozzle for applying at least one movement to the nozzle. The second way to move Further provided with The at least one movement may include rotation of the at least one nozzle, side-to-side movement of the at least one nozzle relative to the air permeable fiber collecting surface. Movement , and above and below at least one nozzle Movement In such an embodiment, The second means has at least one nozzle Move it, is configured to impart additional motion to the vibrating tubular fiber spinning needle, allowing the forming polymer fiber to be more effectively stretched, elongated, and ultimately detached from the distal end of the tubular fiber spinning needle.
[0044] In one embodiment, the device may include a frame having at least one nozzle attached thereto, or the frame may include one or more spinnerets, each spinneret including one or more nozzles. The second means The frame holding one or more nozzles or one or more spinnerets can be moved forward and backward, up and down, or up and down forward and backward. Move it , rotate or vibrate.
[0045] Furthermore, The second means makes it possible to control the deposition of the resulting polymer fibers on the polymer fiber collecting surface, achieving a higher and more uniform density of the deposited polymer fibers and thus obtaining different properties of the polymer fiber material.
[0046] The rotational and oscillatory motion of the tubular fiber spinning needle The first means a first inlet for a jet of compressed gas at a second end of the at least one nozzle, a mechanical device, an electromechanical device, etc., to form a circular non-stationary distal end of the at least one nozzle; Move to The rotational or oscillatory movement of the tubular fiber spinning needle can be achieved by: The second means Use the arrows to move left, right, up, or down to At least one nozzle move This can be achieved by: The second means may cause a movement of the at least one nozzle that includes at least one of a rotation, an oscillation, a pivoting, a circular movement, or a combination of different types of movements.
[0047] According to yet another embodiment, the device further comprises a compressed gas heating unit. The compressed gas heating unit comprises a heater configured to heat the compressed gas to a temperature of from 50°C, 52°C, 54°C, 56°C, 58°C, 60°C, 62°C, 64°C, 66°C, or 68°C to 54°C, 56°C, 58°C, 60°C, 62°C, 64°C, 66°C, 68°C, or 70°C to achieve better results. The compressed gas is optionally heated to a temperature of 60°C. The jet of compressed gas is optionally heated to offset cooling due to reduced pressure and to reduce the viscosity of the solution at the at least one spinning needle. The heating temperature of the compressed gas may depend on the different embodiments according to the present disclosure in which the gas is used, the concentration of the polymer solution and the polymer and solvent of the polymer solution, and the ambient temperature of the device when the device is operating.
[0048] According to one embodiment, the hollow space is an axisymmetric hollow space. According to embodiments of the present disclosure, the axisymmetric hollow space can be, for example, a cylindrical hollow space, a conical hollow space that narrows toward the open first end, or a cylindrical-conical hollow space having a cylindrical hollow space at the second end and a conical hollow space at the open first end. Nozzles with conical hollow spaces or cylindrical-conical hollow spaces are most effective at creating a compression effect at the nozzle due to the reduced surface area at the first end of the hollow space, resulting in more compressed air.
[0049] Optionally, in embodiments, at least one nozzle may further comprise a wear-resistant insert at the second end to reduce nozzle wear. According to embodiments of the present disclosure, a wear-resistant insert may also be attached to the hollow space of the nozzle at the open first end. A nozzle comprising a wear-resistant insert at the open first end provides an even more effective reduction in nozzle wear, since vibration causes the tubular fiber spinning needle to vibrate against the edge of the cylindrical hollow space at the open first end. MovementThe wear-resistant insert protects the edge of the cylindrical hollow space from wear, which would otherwise occur at the open first end. The wear-resistant insert can be, for example, a sleeve or other thin-walled cylindrical or conical part to prevent wear between the edge of the hollow space and the tubular fiber spinning needle. Mounting such a cylindrical or conical part within the cylindrical hollow space at the open first end prevents wear at the tip of the nozzle, thus extending the life of the nozzle. To further improve durability, the cylindrical or conical part can be made of a material with low friction properties (e.g., polytetrafluoroethylene (PTFE)) or a wear-resistant material (e.g., a bronze alloy).
[0050] In the example of a cylindrical-conical hollow space, if the first portion of the hollow space is cylindrical and the second portion of the hollow space is conical, the cylindrical portion at the second end can be 1 / 4 to 1 / 2 of the length of the hollow space. For example, 1 / 4 of the length of the hollow space is cylindrical and the second portion of the hollow space is conical, narrowing toward the open first end of the at least one nozzle.
[0051] The effect of the conical hollow space is to allow the gas stream to speed up near the tip of the tubular fiber spinning needle. A jet of compressed gas is directed into the hollow space perpendicular to the axis of the nozzle, creating a rotating gas stream that exerts a torque on the tubular fiber spinning needle. The linear velocity of the rotating gas stream increases as the hollow space narrows and is greatest as it exits the nozzle.
[0052] A jet of compressed gas is directed into the hollow space of the nozzle. This allows the tubular fiber spinning needle to rotate, thereby leading to the production of polymer fibers with smaller diameters (e.g., 0.2 to 10 micrometers). In one example, the jet of compressed gas can be directed perpendicular to its axis into the conical hollow space of the nozzle to create a spiral motion of the compressed gas jet. This spiral motion of the compressed gas jet causes the non-stationary distal end of the tubular fiber spinning needle to oscillate and rotate to produce fibers from the polymer solution. The linear velocity of the compressed gas stream of the rotating compressed gas jet increases as the conical hollow space narrows and is greatest as the compressed gas jet exits at least one nozzle. This results in an oscillatory motion at the non-stationary distal end of the tubular fiber spinning needle to produce fibers from the polymer solution.
[0053] According to a second aspect, there is provided a method for producing polymer fibers, the method comprising: injecting a polymer solution into at least one nozzle through a polymer solution inlet of at least one tubular fiber spinning needle of the at least one nozzle, directing a jet of compressed gas into the at least one nozzle through a compressed gas first inlet, imparting motion to the at least one tubular fiber spinning needle with the directed compressed gas jet, forming droplets of the polymer solution at the tip of a distal end of the at least one tubular fiber spinning needle, and obtaining a polymer fiber from the formed droplets, wherein the polymer fiber has a diameter of 0.2 to 10 micrometers, more particularly 0.1 to 10 micrometers.
[0054] When a polymer solution is injected through the polymer solution inlet of the tubular fiber spinning needle of the nozzle, the polymer solution exits the polymer solution outlet at the non-fixed distal end, polymer solution droplets begin to form, and the solvent begins to evaporate. A compressed gas (e.g., air) jet in the hollow space of the nozzle begins to rotate around the tubular fiber spinning needle, and the rotational motion of the compressed gas jet causes the tip of the tubular fiber spinning needle to vibrate and rotate. This additional centrifugal force component acting on the polymer solution affects the resulting fiber morphology and improved fiber production rate. By directing compressed gas into the hollow space of the nozzle through the first compressed gas jet inlet, the compressed gas flow at the tip of the nozzle includes a component parallel to the direction of polymer solution flow and a component tangential to the surface of the polymer solution jet and perpendicular to the direction of polymer solution jet flow.
[0055] The jet of polymer solution is first gradually transformed into droplets of polymer solution by the rotational action of a tubular fiber spinning needle, which breaks the polymer solution jet into droplets. The droplets are then accelerated and drawn in a jet of compressed gas, causing fibers to be formed from the polymer solution droplets. The formed polymer fibers are then elongated by a jet of compressed gas directed through the hollow space of the nozzle.
[0056] Polymer fibers begin to form and grow from the polymer solution droplets due to the force of the compressed gas jet and the oscillating, spiral motion of the tubular fiber spinning needle, which further induces circular motion of the polymer solution droplets. The forming polymer fiber oscillates with the polymer solution droplet until the force separates it from the polymer solution droplet. The polymer fiber eventually detaches from the distal end of the tubular fiber spinning needle, and the resulting polymer fiber flies through the air toward a surface, e.g., a fiber collection surface. On the fiber collection surface, the formed polymer fibers adhere to each other, forming a polymer fiber material. The rotational motion of the air jet also causes the tip of the needle to oscillate and rotate. This additional centrifugal force component acting on the polymer solution influences the resulting fiber morphology and improved fiber production rates.
[0057] Thus, the present method enables the production of polymer fibers from polymer solutions prepared from a wide range of biological and synthetic polymers. This embodiment of the method increases the rate of polymer fiber production by centrifugal force acting on at least one tubular fiber spinning needle. The rotational or oscillating motion of the non-stationary distal end of the at least one tubular fiber spinning needle generates centrifugal force acting on the polymer solution, breaking it into droplets. The polymer solution droplets are then accelerated and drawn in an airflow, resulting in the formation of fibers from each droplet. In embodiments of the present disclosure that include two or more nozzles, several fibers are formed simultaneously, resulting in higher fiber production rates. The rate of polymer fiber production further depends on optimized operating parameters, including the rate and pressure at which the polymer solution is injected into one or more nozzles, the diameter of the tubular fiber spinning needle, the total number of nozzles incorporated into the device, the viscosity of the polymer solution, the temperature of the compressed gas and polymer solution, and the diameter of the nozzle hollow space.
[0058] In one embodiment, the polymer solution is injected into a tubular fiber spinning needle at a pressure of, for example, 0.8 bar. The nozzle has a diameter of 3 mm, the tubular fiber spinning needle has a diameter of 0.8 mm, and a jet of compressed gas is delivered into the first compressed gas inlet of the nozzle at a pressure of 0.3 bar. Rotation of the tubular fiber spinning needle within the nozzle leads to the formation of polymer fibers having diameters ranging from 0.2 to 10 micrometers.
[0059] The resulting polymer fibers can have a diameter of 0.2 micrometers (μm) to 10 μm, more specifically, 0.1 to 10 micrometers. Thus, the diameter of the polymer fibers can be from 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, or 9 to 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, or 10 micrometers. A preferred diameter of the polymer fibers is from 0.1 micrometer to 5 micrometers. For example, in one embodiment, the concentration of the at least one polymer is 15% and the diameter of the resulting polymer fibers is 100 nanometers (nm).
[0060] According to one embodiment, the method is carried out under the following conditions: the polymer solution is injected into the at least one tubular fiber spinning needle at an injection rate of 1 microliter / minute to 3.5 ml / minute per nozzle; the polymer fiber spinning rate per nozzle is 0.2 to 25 grams per minute; the compressed gas is delivered at a pressure of 0.2 bar to 2 bar; the polymer solution is injected into the at least one tubular fiber spinning needle at a pressure of 0.5 to 2 bar; and the compressed gas has a temperature of 20 to 120° C. The compressed gas is selected from the group consisting of air, nitrogen, argon, oxygen, carbon dioxide, and mixtures thereof. The injection rate of the polymer solution into the tubular fiber spinning needle can be from 0.001, 0.01, 0.1, 0.5, 1, 1.5, 2, 2.5, or 3 milliliters per minute per nozzle to 0.005, 0.05, 0.1, 0.25, 0.5, 0.75, 1, 1.25, 1.5, 1.75, 2, 2.25, 2.5, 2.75, 3, 3.25, or 3.5 milliliters per minute per nozzle. Injection rates in this range are useful for improving fiber production rates and allowing for continuous in-line production of polymer. The polymer fiber spinning rate per nozzle can be from 0.2, 0.5, 1, 2.5, 5, 7.5, 10, 12.5, 15, 17.5, 20, or 22.5 grams per minute to 0.5, 1, 2.5, 5, 7.5, 10, 12.5, 15, 17.5, 20, 22.5, or 25 grams per minute, improving the morphology of the produced polymer fiber and the fiber production rate of the device. The compressed gas pressure can be from 0.2, 0.4, 0.6, 0.8, 1, 1.2, 1.4, 1.6, 1.8, or 2 bar to 0.3, 0.5, 0.7, 0.9, 1.1, 1.3, 1.5, 1.7, 1.9, or 2.1 bar. The polymer solution can be injected into the tubular fiber spinning needle at a pressure ranging from 0.5 to 2 bar.The pressure at which the pump injects the polymer solution into the tubular fiber spinning needle can be from 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, or 1.9 bar to 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, or 2 bar, which allows for continuous line production of polymer fibers, thereby improving fiber production rates. The polymer solution can be injected into the tubular fiber spinning needle through a polymer solution inlet under a pressure of, for example, 0.8 bar, which allows for continuous line production of polymer fibers. The temperature of the compressed gas can be from 20°C, 25°C, 30°C, 35°C, 40°C, 45°C, 50°C, 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, 90°C, 95°C, 100°C, 105°C, 110°C, or 115°C to 25°C, 30°C, 35°C, 40°C, 45°C, 50°C, 55°C, 60°C, 65°C, 70°C, 75°C, 80°C, 85°C, 90°C, 95°C, 100°C, 105°C, 110°C, 115°C, or 120°C. Preferably, the compressed gas is heated to a temperature of 60°C, which allows best results to be achieved. To increase evaporation, the temperature of the compressed gas can be higher than 60°C, i.e., from 60°C to 120°C. The jet of compressed gas may be heated to mitigate the cooling effect of the reduced pressure.
[0061] According to a third aspect, a polymer solution for producing polymer fibers is provided, comprising at least one polymer dissolved in at least one solvent. The concentration of the at least one polymer is between 9% and 45% by weight of the at least one solvent, and the viscosity of the polymer solution is between 1 millipascal-second and 5000 pascal-seconds. Such a polymer solution is useful for achieving higher fiber production rates for producing microfibers or nanofibers than conventional methods. This is achieved by applying centrifugal force to the spinning needle, allowing for polymer solution injection rates up to 3.5 ml / min per nozzle, more than 10 times higher than known methods. The polymer of the polymer solution according to the embodiment does not precipitate out of solution at the tip of the needle and has a viscosity suitable for polymer fiber spinning according to the present method. Optionally, the polymer solution may be heated to dissolve one or more polymers in the solvent to achieve a well-dispersed solution. The concentration of the at least one polymer can be from 9, 12, 15, 18, 21, 24, 27, 30, 33, 36, 39, or 42% by weight of the at least one solvent to 12, 15, 18, 21, 24, 27, 30, 33, 36, 39, 42, or 45% by weight of the at least one solvent. The viscosity of the polymer solution can be from 0.001, 0.01, 0.1, 1, 10, 100, 1000, 2000, 3000, 4000, 5000, 6000, or 7000 Pascal seconds to 0.01, 0.1, 1, 10, 100, 1000, 2000, 3000, 4000, 5000, 6000, 7000, or 8000 Pascal seconds. Such a polymer solution makes it possible to form polymer fibers with a unique twisted ribbon-type mesh morphology.
[0062] According to embodiments, the at least one polymer is selected from the group of biological polymers including gelatin, collagen, chitosan, chitin, proteins (e.g., soy protein, pea protein), silk protein, polylactic acid, polycaprolactone, alginic acid and algal polysaccharides, zein, gluten, poly-L-lactic acid, polyethylene oxide, cellulose acetate, poly(lactic-co-glycolic acid), mixtures thereof, and compounds derived therefrom; or the at least one polymer is optionally selected from the group of synthetic polymers including polymethylmethacrylate, polyvinyl alcohol, polystyrene, polyaniline, polyamide, polyacrylonitrile, polyurethane, styrene-acetonitrile copolymer, natural and synthetic rubber, mixtures thereof, and compounds derived therefrom. Biopolymers are significantly more sustainable materials for producing nanofibers than synthetic polymers. Polymer fiber materials made from biopolymers are biodegradable and bioabsorbable. The use of biopolymers reduces the use of non-biodegradable plastic waste. A key advantage of biopolymer fiber production is that the device uses water as a solvent. Therefore, the device does not use harmful chemicals to produce biopolymer fibers (e.g., gelatin fibers). Polymer fibers made from biological polymers are used in the medical field, where it can be advantageous for the materials used to degrade in the body after completing their task. The biocompatibility and absorbability of alginate and algae-based polysaccharides, zein, gluten, poly-L-lactic acid, polyethylene oxide, cellulose acetate, and poly(lactic-co-glycolic acid) allow these polymers to be used in the production of tissue engineering materials.
[0063] The use of synthetic polymers according to embodiments of the present disclosure makes it possible to obtain porous polymer fibers. Porous polymer fibers make it possible to produce materials with high specific surface areas, which are necessary, for example, for energy storage. The use of synthetic polymers according to embodiments of the present disclosure also makes it possible to obtain polymer fibers with smaller diameters, thus providing better properties (e.g., higher stiffness) for materials made from such polymer fibers. This allows such polymer fiber materials to be used in different applications.
[0064] According to one embodiment, the at least one solvent is selected from the group consisting of water, alcohol, ethyl acetate, tetrahydrofuran, acetone, acetic acid, formic acid, toluene, chloroform, dimethylformamide, and mixtures thereof. These solvents enable a non-electrostatic fiber spinning method according to the present disclosure, thus eliminating the need for high voltages and making it safer. This method requires that the polymer used be soluble in the solvent, allowing for the use of both the aforementioned synthetic and biological polymers to produce polymer fibers. Because biological polymers generally do not melt, the only way to create them is to dissolve them in a solvent. These solvents allow for the effective dissolution of both synthetic and biological polymers to prepare the polymer solution used in the polymer fiber spinning process according to the present disclosure. Because the polymer can be dissolved in the solvent, there is no need to use additional energy to melt the polymer, which allows for more energy-efficient production of polymer fibers.
[0065] In embodiments of the present disclosure, the solvent may damage portions of the nozzle or spinneret, and the nozzle and spinneret may be formed of a solvent-resistant material, such as metal or 3D printed plastic.
[0066] Furthermore, these solvents can evaporate as the polymer solution is forced out of the polymer solution outlet at the distal end of the tubular fiber spinning needle by a jet of compressed air, and the jet of polymer solution begins to gradually transform into polymer solution droplets and then into a polymer fiber. More specifically, the jet of compressed air is useful for drawing a polymer fiber from the polymer solution droplets and stretching it in a compressed gas stream in the spinning process, causing the solvent to begin to evaporate.
[0067] In one example, a 13% by weight (w / w) polymer solution is produced by dissolving styrene-acetonitrile copolymer (SAN) in ethyl acetate. The polymer solution is then stirred until completely dissolved. The polymer solution is injected into the tubular fiber spinning needles of at least one nozzle at a rate of 2.7 ml / min per nozzle. Compressed gas, e.g., air, is delivered into the hollow space of the nozzle at 0.3 bar. The polymer fiber spinning process is carried out, and the resulting polymer fibers are collected on the air-permeable fiber collection surface of a collection unit positioned approximately 70 cm from the non-fixed distal end of the tubular fiber spinning needle of at least one nozzle.
[0068] In another example, a 33 w / w% polymer solution is produced by dissolving gelatin in water. The polymer solution is stirred until completely dissolved. The polymer solution is injected into the tubular fiber spinning needles of at least one nozzle at a rate of 2.7 ml / min per nozzle. Compressed gas is delivered into the hollow space of the nozzle at 0.3 bar. The polymer fiber spinning process is carried out, and the resulting polymer fibers are collected on an air-permeable fiber collection surface of a collection unit located approximately 70 cm from the non-fixed distal end of the tubular fiber spinning needle of at least one nozzle. An advantage of producing biopolymers, such as gelatin fibers, is that water can be used as a solvent. Therefore, no harmful chemicals are used in the production of the polymer fibers.
[0069] In one example of producing a material containing polymer fibers, a 33 wt% solids solution is prepared in water. The solids include 14% sugar and 86% gelatin. The solids are mixed and heated in water to obtain a homogeneous polymer solution. The polymer solution is injected into one or more spinnerets under a pressure of 0.8 bar. Each spinneret is equipped with one or more nozzles. Compressed gas, e.g., air, is then directed into one or more nozzles, with the pressure inside the hollow space of the one or more nozzles being approximately 0.3 bar. The temperature of the compressed air can be 50-70°C, with best results being achieved when the temperature of the compressed air is 60°C. The polymer fiber spinning rate is approximately 0.2 grams per minute per nozzle. The moving speed of the air-permeable fiber collecting surface of the collection unit for collecting the polymer fibers is configured to be 5 meters per hour. The polymer fiber spinning process is carried out, and the resulting polymer fibers are collected on the moving air-permeable fiber collecting surface of the collection unit. The polymer fibers collected by being directed onto each other form a polymer fiber material. The resulting polymer fiber material has a density of 76 g / m 2 It has an areal density of
[0070] The advantage of using a readily volatile solvent, such as ethyl acetate, with a synthetic polymer, such as styrene-acetonitrile copolymer, to produce polymer fibers is that the readily volatile solvent, due to its low boiling point, evaporates quickly after polymer fiber formation, thus resulting in a harmless polymer fiber.
[0071] According to one embodiment, materials comprising polymer fibers produced by the present method are used to make nonwoven filter materials, leather-like fabrics, biomaterials for bone regeneration, wound care materials, 3D scaffolds for cell culture and tissue engineering, electrode materials for capacitors, ceramic nanofibers (e.g., Al2O3 nanofibers), and cell-cultured meat. The materials comprising polymer fibers are airy and fluffy with a twisted ribbon-type mesh morphology of the nanofibers, resulting in superior tensile strength and superior mechanical properties of the material than those previously possible with conventional spinning techniques. The thickness of the polymer material formed from the polymer fibers can be greater than 10 grams per square meter (g / m 2 ) to 400g / m 2 Thus, the thickness of the polymeric material may be from 10, 50, 100, 150, 200, 250, 300, or 350 to 50, 100, 150, 200, 250, 300, 350, or 400 g / m 2 It can be up to.
[0072] In one embodiment, the resulting polymer fiber has a tensile strength ranging from 1 gigapascal (GPa) to 3 GPa and a stiffness ranging from 50 GPa to 170 GPa. The polymer fiber optionally has a tensile strength of 1.3 GPa and a stiffness of 95 GPa. The polymer fiber optionally has a tensile strength of 2.3 GPa and a stiffness of 160 GPa. The tensile strength of the polymer material can be from 0.5, 1, 1.5, 2, or 2.5 GPa to 1, 1.5, 2, 2.5, or 3 GPa. Thus, the stiffness of the polymer material can be from 2.3, 5, 10, 20, 40, 60, 80, 100, 120, or 140 GPa to 10, 20, 40, 60, 80, 100, 120, 140, or 160 GPa. This tensile strength and stiffness of the polymer fiber provides an improved morphology for the polymer fiber that performs better than other dense polymer materials. The polymer fiber material has a density of 60 g / m 2 from 120 g / m 2 The polymer fiber material may optionally have an areal density ranging from about 76 g / m 2 It has an areal density of
[0073] Polymer fiber materials are optionally used to fabricate air filtration devices such as high-efficiency particulate air (HEPA) filters, industrial dust collectors, face masks, and respirators. Polymer fiber materials are optionally used to fabricate liquid filtration devices used for drinking water purification, wastewater treatment, and fuel and oil filtration. Polymer fiber materials can be used in fuel cells as battery separators, battery electrodes, and catalyst supports; in wound care, to fabricate 3D scaffolds for musculoskeletal tissue engineering (e.g., bone, cartilage, ligament, and skeletal muscle), skin tissue engineering, vascular tissue engineering, and nerve tissue engineering; and as carriers for controlled delivery of drugs, proteins, and DNA. Polymer fiber materials are optionally used in applied acoustics for noise control, in various industrial equipment such as beverage and water purification equipment for capturing hydrocarbon pollutants, and to fabricate a wide range of sports apparel. Sports apparel produced with polymer fiber materials can include an optimal balance of comfort, air permeability, wind resistance, and water resistance for cryogenic weather sports.
[0074] Polymer fiber materials are optionally used to make non-slip footwear soles, sports apparel with improved wicking to provide protection against cold and rain, and breathable clothing to regulate body temperature in extreme climates, and are used to make edible scaffolds for producing lab-grown cultured meat products. Polymer fiber materials can be used to make gelatin-based, leather-like fabrics that are cheaper than leather and can be used in face masks and respirators that can improve filtration performance to capture naturally occurring nanoparticles such as viruses as well as micron-sized particles such as bacteria or man-made particles such as soot from diesel exhaust. Polymer fiber materials can optionally be used in dentistry to produce biomaterials for tooth tissue regeneration and in supercapacitor electrode materials to improve electrochemical performance. DETAILED DESCRIPTION OF THE DRAWINGS
[0075] 1 is a schematic diagram of a device 124 for producing polymer fibers according to an embodiment of the present disclosure. The device 124 includes at least one nozzle 100 including a body 102 having a hollow space 128, an open first end 104, a second end 106 opposite the first end 104, a first inlet 108 for a jet of compressed gas at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 has a non-fixed distal end 112, a proximal end 114 opposite the non-fixed distal end 112, a polymer solution inlet 116 at the proximal end 114, and a polymer solution outlet 118 at the non-fixed distal end 112. The device 124 comprises a pump 120 configured to inject a polymer solution into a tubular fiber spinning needle 110 through a polymer solution inlet 116, and a gas compressor 122 configured to direct a jet of compressed gas into a hollow space 128 through a compressed gas jet first inlet 108. At least one nozzle 100 is configured to receive the jet of compressed gas through the compressed gas jet first inlet 108. A tubular fiber spinning needle 110 is mounted through a second end 106 of the at least one nozzle 100 and the hollow space. The tubular fiber spinning needle 110 protrudes from the open first end 104. A proximal end 114 of the tubular fiber spinning needle 110 is fixed to the second end 106 of the at least one nozzle 100. The jet of compressed gas may travel in a spiral or helical trajectory, causing the polymer solution droplets to rotate out of the non-fixed distal end 112 of the tubular fiber spinning needle 110 and out through the polymer solution outlet 118. A polymer fiber is formed from the polymer solution droplets as they are accelerated and drawn in the gas stream provided by the jet of compressed gas.
[0076] 2A and 2B are schematic top views of the nozzle 100 of FIG. 1. FIG. 2A illustrates an embodiment in which the nozzle 100 includes a cylindrical body 102a configured to produce polymer fibers according to embodiments of the present disclosure. FIG. 2B illustrates an embodiment in which the nozzle 100 includes a conical body 102b configured to produce polymer fibers according to embodiments of the present disclosure. In the embodiment illustrated in FIGS. 2A and 2B, the nozzle 100 includes bodies 102a, 102b having a hollow space, an open first end 104, a second end 106 opposite the first end 104, a first inlet 108 for a jet of compressed gas at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 includes an unfixed distal end 112, a proximal end 114 opposite the unfixed distal end 112, a polymer solution inlet 116, and a polymer solution outlet 118. The nozzle 100 is configured to receive a jet of compressed gas through a first compressed gas inlet 108. The first compressed gas inlet 108 is formed away from the nozzle axis 126 such that a distal edge 130 of the nozzle's hollow space 128 and the edge of the first compressed gas inlet 108 are tangential, i.e., aligned, through the nozzle body 102a, 102b of the nozzle. This is necessary to generate a rotating vortex of compressed gas. A tubular fiber spinning needle 110 is mounted through the second end 106 and hollow space of the nozzle 100. The tubular fiber spinning needle 110 protrudes from the open first end 104. A polymer solution inlet 116 is provided at the proximal end 114 for receiving the polymer solution. The proximal end 114 of the tubular fiber spinning needle 110 is fixed to the second end 106 of the nozzle 100. A polymer solution outlet 118 is provided at the non-fixed distal end 112 of the at least one tubular fiber spinning needle 110 for allowing the polymer solution to exit the non-fixed distal end 112 of the at least one tubular fiber spinning needle 110. The jet of compressed gas may travel in a spiral or helical trajectory, causing the non-fixed distal end 112 of the tubular fiber spinning needle 110 to oscillate and rotate.
[0077] 3A is a schematic diagram of a cross-sectional view AA of the nozzle 100 of FIG. 1 having a cylindrical hollow space 302, according to an embodiment of the present disclosure. The nozzle 100 includes a cylindrical body 102a having the cylindrical hollow space 302, an open first end 104, a second end 106 opposite the first end 104, a first inlet 108 for a jet of compressed gas at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 includes a free distal end 112, a proximal end 114 opposite the free distal end 112, a polymer solution inlet 116, and a polymer solution outlet 118. The nozzle 100 is configured to receive a jet of compressed gas through the first inlet 108 for the jet of compressed gas. A tubular fiber spinning needle 110 is mounted through the second end 106 of the nozzle 100 and the cylindrical hollow space 302. The tubular fiber spinning needle 110 protrudes from the open first end 104. A polymer solution inlet 116 is provided at the proximal end 114, and a polymer solution outlet 118 is provided at the free-standing distal end 112. The proximal end 114 of the tubular fiber spinning needle 110 is fixed to the second end 106 of the nozzle 100. A jet of compressed gas is directed into the cylindrical hollow space 302 perpendicular to the axis 126 of the nozzle 100 to create a spiraling motion of the compressed gas jet. The spiraling motion of the compressed gas jet causes the free-standing distal end 112 of the tubular fiber spinning needle 110 to oscillate and rotate to produce fibers from the polymer solution.
[0078] 3B is a schematic illustration of a cross-sectional view AA of at least one nozzle 100 of FIG. 1 having a conical hollow space 304, according to an embodiment of the present disclosure. The nozzle 100 includes a cylindrical body 102a having the conical hollow space 304, an open first end 104, a second end 106 opposite the first end 104, a first inlet 108 for a jet of compressed gas at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 includes a non-fixed distal end 112, a proximal end 114 opposite the non-fixed distal end 112, a polymer solution inlet 116, and a polymer solution outlet 118. The nozzle 100 is configured to receive a jet of compressed gas through the first inlet 108 for the jet of compressed gas. A tubular fiber spinning needle 110 is mounted through the second end 106 of the nozzle 100 and the conical hollow space 304. The tubular fiber spinning needle 110 protrudes from the open first end 104. A polymer solution inlet 116 is provided at the proximal end 114, and a polymer solution outlet 118 is provided at the free-standing distal end 112. The proximal end 114 of the tubular fiber spinning needle 110 is fixed to the second end 106 of the nozzle 100. A jet of compressed gas is directed into the conical hollow space 304 perpendicular to the axis 126 of the nozzle 100 to create a spiraling motion of the compressed gas jet. The spiraling motion of the compressed gas jet causes the free-standing distal end 112 of the tubular fiber spinning needle 110 to oscillate and rotate to produce fibers from the polymer solution.
[0079] 3C is a schematic illustration of a cross-sectional view AA of at least one nozzle 100 of FIG. 1 having a cylindrical conical hollow space 306, according to an embodiment of the present disclosure. The nozzle 100 includes a cylindrical body 102a having the cylindrical conical hollow space 306, an open first end 104, a second end 106 opposite the first end 104, a first inlet 108 for a jet of compressed gas at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 includes a non-fixed distal end 112, a proximal end 114 opposite the non-fixed distal end 112, a polymer solution inlet 116, and a polymer solution outlet 118. The nozzle 100 is configured to receive a jet of compressed gas through the first inlet 108 for the jet of compressed gas. A tubular fiber spinning needle 110 is mounted through the second end 106 of the nozzle 100 and the cylindrical-conical hollow space 306. The tubular fiber spinning needle 110 protrudes from the open first end 104. A polymer solution inlet 116 is provided at the proximal end 114, and a polymer solution outlet 118 is provided at the free-standing distal end 112. The proximal end 114 of the tubular fiber spinning needle 110 is fixed to the second end 106 of the nozzle 100. A jet of compressed gas is directed into the axisymmetric hollow space 306 perpendicular to the axis 126 to create a spiraling motion of the compressed gas jet. The spiraling motion of the compressed gas jet causes the free-standing distal end 112 of the tubular fiber spinning needle 110 to oscillate and rotate to produce fibers from the polymer solution.
[0080] 3D is a schematic diagram of a cross-sectional view BB of the nozzle of FIG. 2B according to an embodiment of the present disclosure. The nozzle 310 includes a conical body 312 having a conical hollow space 314, an open first end 316, a second end 318 opposite the first end 316, a first inlet 320 for a jet of compressed gas at the second end 318, and a tubular fiber spinning needle 322. The tubular fiber spinning needle 322 includes a non-fixed distal end 324, a proximal end 326 opposite the non-fixed distal end 324, a polymer solution inlet 328, and a polymer solution outlet 330. The nozzle 310 is configured to receive a jet of compressed gas through the first inlet 320 for the jet of compressed gas. The tubular fiber spinning needle 322 is attached to the second end 318 of the nozzle 310 and through the conical hollow space 314. A tubular fiber spinning needle 322 projects from the open first end 316. A polymer solution inlet 328 is provided at the proximal end 326, and a polymer solution outlet 330 is provided at the free-standing distal end 324. The proximal end 326 of the tubular fiber spinning needle 322 is fixed to the second end 318 of the nozzle 310. A jet of compressed gas is directed perpendicular to the axis 126 into the conical hollow space 314 of the conical body 312 to create a spiraling motion of the compressed gas jet. The spiraling motion of the compressed gas jet causes the free-standing distal end 324 of the tubular fiber spinning needle 322 to oscillate and rotate to produce fibers from the polymer solution.
[0081] 3E is a schematic diagram of a nozzle 311 including a sleeve 340, according to an embodiment of the present disclosure. According to an embodiment, the nozzle 311 includes a sleeve 340 at the open first end 104. The sleeve 340 is attached to the cylindrical body 102a at the open first end 104.
[0082] 4A is a schematic diagram of the nozzle 100 of FIG. 1 illustrating the oscillatory motion of the tubular fiber spinning needle 110 and the process of spinning a polymer fiber 406, according to an embodiment of the present disclosure. The nozzle 100 includes a body 102, an open first end 104, a second end 106 opposite the first end 104, a first compressed gas inlet 108 at the second end 106, and a tubular fiber spinning needle 110. The tubular fiber spinning needle 110 includes a non-fixed distal end 112, a proximal end 114 opposite the non-fixed distal end 112, a polymer solution inlet 116, and a polymer solution outlet 118. The nozzle 100 is configured to receive a jet of compressed gas through the first compressed gas inlet 108. The tubular fiber spinning needle 110 receives the polymer solution through its inlet 116. The jet of compressed gas moves in a forward and circular motion within the hollow space 128 of the nozzle 100. The combination of the forward and circular motion of the jet of compressed gas creates a spiral or helical motion of the non-stationary distal end 112 of the tubular fiber spinning needle 110, causing the non-stationary distal end 112 to rotate (e.g., oscillating rotation). The polymer solution exits through the polymer solution outlet 118, and the oscillating rotation of the distal end of the tubular fiber spinning needle creates centrifugal forces acting on the polymer solution, breaking it into droplets 404. Polymer fibers 406 begin to grow from the polymer solution droplets 404 as they are accelerated and stretched in the gas flow provided by the jet of compressed gas. The polymer fibers 406 grow from the polymer solution droplets 404 due to the rotational motion of the non-stationary distal end 112 of the tubular fiber spinning needle 110. The nozzle 100 may be moved in at least one of the left-right and up-down directions to provide additional movement to the nozzle 100. Move It can be configured as follows.
[0083] 4B is a schematic diagram of the oscillatory motion of the tubular fiber spinning needle of the nozzle 100 and the polymer fiber growth process of the circularly moving polymer solution droplet of FIG. 4A , according to an embodiment of the present disclosure. The compressed gas jet and oscillatory motion at the non-fixed distal end 112 of the tubular fiber spinning needle 110 further results in a circular oscillation of the polymer solution droplet 404. While the distal end 112 of the tubular fiber spinning needle 110 is undergoing an oscillatory motion, the polymer solution droplet 404 and growing polymer fiber 406 oscillate in a circular motion along with the distal end 112. The polymer fiber 406 continues to grow from the polymer solution droplet 404 until the compressed gas jet detaches the polymer fiber 406 from the polymer solution droplet 404. Growth of the polymer fiber 406 is initiated by the oscillatory motion at the non-fixed distal end 112 of the tubular fiber spinning needle 110. The polymer fibers 406 formed by separating from the polymer solution droplets are then carried away by the gas flow through the air away from the nozzle 100. The centrifugal force acting on the polymer solution affects the morphology of the polymer fibers 406 and improves the production rate of the polymer fibers 406.
[0084] 5 is a schematic diagram of a device 500 for producing a polymer fiber material 534 according to an embodiment of the present disclosure. The device 500 includes at least one nozzle 502, a pump 504 for injecting a polymer solution, a gas compressor 506 for directing a jet of compressed gas, an air-permeable fiber collecting surface 508, a suction unit 510, a first roller 512A, a second roller 512B, a third roller 512C, and a take-up roller 536. The at least one nozzle 502 includes a body 514, an open first end 516, a second end 518 opposite the first end 516, a first inlet 520 for a jet of compressed gas at the second end 518, and a tubular fiber spinning needle 522. The tubular fiber spinning needle 522 includes a non-fixed distal end 524, a proximal end 526 opposite the non-fixed distal end 524, a polymer solution inlet 528, and a polymer solution outlet 530. A polymer solution is injected into the tubular fiber spinning needle 522 of the at least one nozzle 502 through the polymer solution inlet 528, and a jet of compressed gas is directed through the first compressed gas jet inlet 520 into the hollow space of the nozzle 502 to produce a polymer fiber 532 at the non-fixed distal end 524. The resulting polymer fibers 532 are collected on the air permeable fiber collecting surface 508 by a suction unit 510 on the back side of the air permeable fiber collecting surface 508, which generates a suction pressure in a direction opposite to the direction of the polymer fibers 532 produced at the non-fixed distal end 524, and the produced polymer fibers 532 are guided toward the air permeable fiber collecting surface 508 and become deposited on the air permeable fiber collecting surface 508. A first roller 512A, a second roller 512B, and a third roller 512C enable the air permeable fiber collecting surface 508 to move in a direction perpendicular to the direction of spinning of the at least one nozzle 502. The formed polymer fibers 532 are detached from the non-fixed distal end 524 by air currents and forces caused by the growth and vibration of the polymer fibers, and are collected and deposited on the air permeable fiber collecting surface 508, becoming attached to each other on the air permeable fiber collecting surface 508 and forming a polymer fiber material 534 that is collected on the take-up roller 512D.A jet of compressed gas is directed into the hollow space of the nozzle 502. The jet of compressed gas further guides the produced polymer fibers 532 towards the air permeable fiber collecting surface 508.
[0085] 6 is a schematic diagram of a device 600 having a heating and solvent evaporation chamber 616 for producing a polymer fiber material 640 according to an embodiment of the present disclosure. The device 600 includes at least one nozzle 602, a pump 604 for injecting a polymer solution, a gas compressor 606 for directing a jet of compressed gas, an air-permeable fiber collection surface 608, a suction unit 610, a first roller 612A, a second roller 612B, a third roller 612C, a take-up roller 612D, and the heating and solvent evaporation chamber 616. The at least one nozzle 602 includes a body 618 having a hollow space, an open first end 620, a second end 622 opposite the first end 620, a first inlet 624 for a jet of compressed gas at the second end 622, and a tubular fiber spinning needle 626. Tubular fiber spinning needle 626 includes a non-fixed distal end 628, a proximal end 630 opposite non-fixed distal end 628, a polymer solution inlet 632, and a polymer solution outlet 634. Polymer solution is injected by pump 604 into tubular fiber spinning needle 626 of nozzle 602 through polymer solution inlet 632, and a jet of compressed gas is directed through first compressed gas jet inlet 624 into the hollow space of nozzle 602 to produce a polymer fiber 636 at non-fixed distal end 628 of tubular fiber spinning needle 626. The resulting polymer fibers 636 are collected on the air permeable fiber collecting surface 608 by a suction unit 610 on the back side of the air permeable fiber collecting surface 608, which generates a suction pressure in a direction opposite to the direction of the polymer fibers 636 produced at the non-fixed distal end 628, and the produced polymer fibers 636 are guided toward and deposited on the air permeable fiber collecting surface 608. A first roller 612A, a second roller 612B, and a third roller 612C enable the air permeable fiber collecting surface 608 to move in a direction perpendicular to the direction of spinning of the at least one nozzle 602. The resulting polymer fibers 636 leave the non-fixed distal end 628 and are collected and deposited on the air permeable fiber collecting surface 608, where they become attached to each other on the air permeable fiber collecting surface 608 to form a polymer fiber material 638.The polymer fiber material 638 on the air permeable fiber collecting surface 608 further passes through a heating and solvent evaporation chamber 616 to more quickly evaporate the solvent and produce a solvent- and harmful chemical-free polymer fiber material 640. The solvent- and harmful chemical-free polymer fiber material 640 is collected on take-up roller 612D.
[0086] 7 is a schematic diagram of a device 700 including a spinneret 702 for producing polymer fibers according to an embodiment of the present disclosure. The device 700 includes a spinneret 702 including a first cylindrical nozzle 704A, a second cylindrical nozzle 704B, and a third cylindrical nozzle 704C attached to the spinneret 702, a second inlet 710 for a jet of compressed gas into the spinneret 702, an air permeable fiber collecting surface 720, a suction unit 722, a first roller 726A, a second roller 726B, a third roller 726C, and a take-up roller 726D. Each of the cylindrical nozzles 704A, 704B, and 704C includes a corresponding tubular fiber spinning needle 706A, 706B, and 706C, and a corresponding first inlet 712A, 712B, and 712C for a jet of compressed air. Each of the tubular fiber spinning needles 706A, 706B, 706C includes a polymer solution inlet 714A, 714B, 714C and a non-stationary distal end 708A, 708B, 708C. The spinneret 702 includes a hollow body 716 to which a first cylindrical nozzle 704A, a second cylindrical nozzle 704B, and a third cylindrical nozzle 704C are attached. A jet of compressed gas, e.g., air, passes through the spinneret 702 through a second compressed gas jet inlet 710. The jet of compressed gas is further directed through the second compressed gas jet inlet 710 to each of the cylindrical nozzles 704A, 704B, 704C through a first compressed gas jet inlet 712A, 712B, 712C. The polymer solution is directed through polymer solution inlets 714A, 714B, 714C into the first cylindrical nozzle 704A, the second cylindrical nozzle 704B, and the third cylindrical nozzle 704C, respectively, to produce polymer fibers 718A, 718B, 718C at the non-fixed distal ends 708A, 708B, 708C of the tubular fiber spinning needles 706A, 706B, 706C.The polymer fibers 718A, 718B, 718C are collected on the air permeable fiber collecting surface 720 by a suction unit 722 on the back side of the air permeable fiber collecting surface 720 that generates a suction pressure in a direction opposite to the direction of the polymer fibers 718A, 718B, 718C being produced at the free distal ends 708A, 708B, 708C of the tubular fiber spinning needles 706A, 706B, 706C, and guides the produced polymer fibers 718A, 718B, 718C toward and deposits on the air permeable fiber collecting surface 720. The first roller 726A, the second roller 726B, and the third roller 726C are configured to move the air permeable fiber collecting surface 720 in a direction perpendicular to the direction of spinning of the spinneret 702. The resulting polymer fibers 718A, 718B, 718C detach from the free distal ends 708A, 708B, 708C, are collected and deposited on the air permeable fiber collecting surface, and become attached to each other on the air permeable fiber collecting surface 720 to form the polymer fiber material 724. The polymer fiber material 724 is collected on the take-up roller 726D. The second way to move 728 moves the spinneret 702 in at least one of the left-right and up-down directions to provide additional motion to the spinneret 702 to achieve a higher and more uniform density of the deposited polymer fibers and thus enable different properties of the polymer fiber material to be obtained. move It is structured as follows.
[0087] 8A is a schematic diagram of a spinneret 800 configured to produce polymer fibers according to an embodiment of the present disclosure. The triangular-shaped spinneret 800 includes a hollow body 802, a first conical nozzle 804A, a second conical nozzle 804B, a third conical nozzle 804C, and a fourth conical nozzle 804D protruding from the hollow body 802, a second inlet 808 for a jet of compressed gas, and a second inlet 818 for a polymer solution. Each of the conical nozzles 804A, 804B, 804C, and 804D includes a tubular fiber spinning needle 812A, 812B, 812C, and 812D having a corresponding inlet 810A, 810B, 810C, and 810D for the polymer solution. The polymer solution is injected into tubular fiber spinning needles 812A, 812B, 812C, 812D through corresponding polymer solution inlets 810A, 810B, 810C, 810D. The polymer solution inlets 810A, 810B, 810C, 810D are disposed in an inlet housing 816. The inlet housing 816 is configured to receive the polymer solution from its second inlet 818 and to direct the polymer solution into its inlets 810A, 810B, 810C, 810D. Each of the tubular fiber spinning needles 812A, 812B, 812C, 812D includes an unfixed distal end 814A, 814B, 814C, 814D. A jet of compressed gas is directed into the hollow body 802 of the spinneret 800 through a second compressed gas jet inlet 808, and polymer solution is directed into polymer solution inlets 810A, 810B, 810C, 810D to produce polymer fibers, the functions of which are described above.
[0088] 8B is a schematic diagram of a spinneret 840 configured to produce polymer fibers according to an embodiment of the present disclosure. The spinneret 840 has a circular shape and includes a hollow body 822, a first conical nozzle 824A, a second conical nozzle 824B, a third conical nozzle 824C, and a fourth conical nozzle 824D connected to the hollow body 822, a second inlet 826 for a jet of compressed gas, and a second inlet 834 for a polymer solution. Each of the conical nozzles 824A, 824B, 824C, and 824D includes a corresponding tubular fiber spinning needle 828A, 828B, 828C, and 828D. Each of the tubular fiber spinning needles has a corresponding inlet 832A, 832B, 832C, and 832D for a polymer solution. The polymer solution is injected into tubular fiber spinning needles 828A, 828B, 828C, and 828D through corresponding polymer solution inlets 832A, 832B, 832C, and 832D. The polymer solution inlets 832A, 832B, 832C, and 832D are disposed in an inlet housing 836. The inlet housing 836 is configured to receive the polymer solution from its second inlet 834 and to direct the polymer solution into its inlets 832A, 832B, 832C, and 832D. At least one of the tubular fiber spinning needles 828A, 828B, 828C, and 828D includes an unfixed distal end 830A, 830B, 830C, and 830D. A jet of compressed gas is directed through a second compressed gas jet inlet 826 into the hollow body 822 of the circular spinneret 840, and polymer solution is directed into polymer solution inlets 832A, 832B, 832C, 832D to produce polymer fibers, the functions of which are described above.
[0089] FIG. 9 is a flowchart illustrating a method for producing polymer fibers according to an embodiment of the present disclosure. In step 902, a polymer solution is injected from a polymer solution pump into at least one nozzle comprising a tubular fiber spinning needle of a device through a polymer solution inlet of the tubular fiber spinning needle. In step 904, a jet of compressed gas is delivered by a gas compressor through a compressed gas first inlet into the at least one nozzle. In step 906, motion is imparted to the at least one tubular fiber spinning needle by the compressed gas jet. In step 908, droplets are formed at the tip of the distal end of the at least one tubular fiber spinning needle. In step 910, a polymer fiber is obtained from the formed droplets. In one embodiment, the polymer fiber has a diameter of 0.2 to 10 micrometers.
[0090] FIG. 10 is a diagram of the morphology of polymer fibers according to the present disclosure. Images of polymer fibers obtained from a gelatin solution according to the present disclosure are shown. The gelatin fibers were analyzed using a scanning electron microscope (SEM) device, VEGA Tescan, and tensile strength testing. The SEM analysis parameters were as follows: accelerating voltage (HV): 10.00 kV, working distance (WD): 12.6480 mm, field of view: 95.74 micrometers, and detector: secondary electron (SE). The SEM analysis results demonstrated the nanofiber nature of the material and the twisted ribbon-like morphology of the individual fibers. Tensile strength testing demonstrated the material's superior mechanical properties compared to known spinning techniques.
[0091] Modifications can be made to the embodiments of the present disclosure described above without departing from the scope of the disclosure, which is defined by the appended claims. The terms "including," "comprising," "incorporating," "having," "being," and the like, used to describe and claim the present disclosure, are intended to be interpreted in an open-ended manner, meaning that there may be items, parts, or elements not expressly recited. The singular is also to be interpreted as relating to the plural.
Claims
1. 1. A device for producing polymer fibers, comprising: at least one nozzle configured to receive a polymer solution and a jet of compressed gas; the at least one nozzle comprises a body having a hollow space, an open first end and a second end opposite the first end, a first inlet for the jet of compressed gas at the second end, and at least one tubular fiber spinning needle mounted at the second end and through the hollow space; the at least one tubular fiber spinning needle having a non-fixed distal end protruding from the open first end, a proximal end opposite the non-fixed distal end, an inlet for the polymer solution at the proximal end, and an outlet for the polymer solution at the non-fixed distal end, the proximal end of the at least one tubular fiber spinning needle being fixed to the second end of the at least one nozzle; the first inlet for the jet of compressed gas is offset from a nozzle axis of the at least one nozzle so that the jet of compressed gas forms a rotating vortex within the hollow space, causing the free distal end of the at least one tubular fiber spinning needle to move or oscillate in a circular motion; The device further comprises: a pump configured to inject the polymer solution through the at least one tubular fiber spinning needle of the at least one nozzle; a gas compressor configured to direct the jet of compressed gas into the first inlet of the jet of compressed gas of the at least one nozzle; A device comprising:
2. 1. A device for producing polymer fibers, comprising: at least one nozzle configured to receive a polymer solution and a jet of compressed gas; the at least one nozzle comprises a body having a hollow space, an open first end and a second end opposite the first end, a first inlet for the jet of compressed gas at the second end, and at least one tubular fiber spinning needle mounted at the second end and through the hollow space; the at least one tubular fiber spinning needle having a non-fixed distal end protruding from the open first end, a proximal end opposite the non-fixed distal end, an inlet for the polymer solution at the proximal end, and an outlet for the polymer solution at the non-fixed distal end, the proximal end of the at least one tubular fiber spinning needle being fixed to the second end of the at least one nozzle; The device further comprises: a pump configured to inject the polymer solution through the at least one tubular fiber spinning needle of the at least one nozzle; a gas compressor configured to direct the jet of compressed gas into the first inlet of the jet of compressed gas of the at least one nozzle; A device comprising: the number of said nozzles is two or more, said two or more nozzles being attached to a spinneret having a hollow body having a second inlet for said jet of compressed gas, said spinneret being provided with a mechanical or electromechanical device for moving said spinneret so as to rotate, move in a circular motion or oscillate said two or more nozzles; the two or more nozzles are connected to the hollow body at the second end; the gas compressor is configured to direct the jet of compressed gas into the hollow body of the spinneret through the second jet of compressed gas inlet and through the hollow body to the first jet of compressed gas inlet of each of two or more nozzles. device.
3. the device further comprises a collection unit for collecting the polymer fibers; 3. The device of claim 1 or 2, wherein the collection unit comprises an air-permeable fiber collection surface and a suction unit configured to draw air through the air-permeable fiber collection surface to generate a suction pressure for depositing the polymer fibers on the air-permeable fiber collection surface.
4. The device of claim 3 , wherein the air permeable fiber collecting surface further comprises an air permeable fiber collecting material.
5. 4. The device of claim 3, wherein the collection unit further comprises a heating and solvent evaporation chamber, and the air permeable fiber collection surface is a movable air permeable fiber collection surface.
6. 6. A device according to any preceding claim, wherein the diameter of said at least one nozzle is between 1.5 mm and 5.0 mm and the diameter of said at least one tubular fibre spinning needle is between 0.6 mm and 1.6 mm.
7. The device of claim 1 , further comprising a compressed gas heating unit.
8. The device according to claim 1 , wherein the hollow space is an axisymmetric hollow space.
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