Method and system for pyrolyzing plastic materials
The method and system for pyrolyzing plastics maintain controlled temperature and pressure through an extruder pump and angled, heated pipes, addressing inefficiencies in existing processes to enhance pyrolysis efficiency and product quality.
Patent Information
- Application Number
- JP2024064136
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-20
- Filing Date
- 2024-04-11
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2040-12-18
AI Technical Summary
Existing chemical recycling processes for plastics face inefficiencies in maintaining consistent temperature control during pyrolysis, leading to issues like decomposition, coke formation, and uneven material distribution, which affect the quality and consistency of hydrocarbon products.
A method and system involving heating and compressing plastic materials using an extruder pump, maintaining a controlled temperature range (265°C to 310°C) and transporting the material through angled, insulated pipes with heating elements to ensure consistent delivery to multiple reactors, while preventing air ingress and coke formation.
Ensures consistent temperature and pressure control, preventing decomposition and coke formation, allowing for efficient pyrolysis and uniform distribution of plastic feedstock to reactors, thereby improving the quality and consistency of hydrocarbon products.
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Abstract
Description
[Technical Field]
[0001] Technical Field The present disclosure relates to a method and system for pyrolyzing plastic materials. [Background technology]
[0002] background Chemical recycling of end-of-life plastics is an emerging technology developed to recycle mixtures of waste plastics into various liquid hydrocarbon products. The waste plastics used in this process may include, for example, low-density polyethylene (LDPE), high-density polyethylene (HDPE), polystyrene (PS), and / or polypropylene (PP). These waste plastics are converted into liquid hydrocarbon products by heating them and then pumping the molten plastic feedstock into a reactor vessel. The reactor vessel is heated to temperatures exceeding 350 °C by a combustion system. This heating produces rich saturated hydrocarbon vapors from the molten plastic. The saturated hydrocarbon vapors are then discharged from the reactor vessel and passed through a contact vessel, where the heavier vapor fractions are condensed to maintain a target outlet temperature setpoint determined by the end-product specifications. A downstream condensation column is then used to distill the saturated hydrocarbon vapors at near atmospheric pressure. Summary of the Invention [Means for solving the problem]
[0003] overview According to the present invention, there is provided a method for pyrolyzing a plastic material, the method comprising the steps of heating and compressing the plastic material, transporting the plastic material to one or more reactors, and pyrolyzing the plastic material in the one or more reactors, wherein the plastic material is maintained in a heated state during the transporting step.
[0004] If desired, the plastic material is transported to more than one reactor, with the heated plastic material being fed into one reactor at a time.
[0005] Optionally, the step of heating and compressing the plastic material is performed by extruding the plastic material.
[0006] If desired, the plastic material is maintained in a molten state during the transport process. If necessary, the temperature of the plastic material is maintained at a temperature within a target temperature range.
[0007] Optionally, the target temperature range is below the decomposition temperature of the plastic material. Optionally, the temperature of the plastic material is maintained at a temperature of at least 265°C.
[0008] Optionally, the temperature of the plastic material is maintained at a temperature of at least 280°C. If necessary, the temperature of the plastic material is maintained at a temperature below 310°C.
[0009] If necessary, the temperature of the plastic material is maintained at a temperature below 300°C. If necessary, the plastic material is heated to a temperature within a target temperature range during the heating and compression process.
[0010] Optionally, the temperature of the plastic material is in a target temperature range at the end of the heating and compression process.
[0011] If desired, the plastic material is transported at a positive angle to the horizontal. If necessary, the angle is selected from the range of 10° to 45°.
[0012] There is further provided in accordance with the present invention a system for pyrolyzing plastic material, the system comprising a pump for heating and compressing the plastic material, one or more reactors for pyrolyzing the plastic material, and piping for transporting the plastic material between the pump and the one or more reactors, the piping being configured to maintain the plastic material in a heated state.
[0013] Optionally, the system includes more than one reactor, and the system further includes a plurality of valves arranged to deliver the heated plastic material to one reactor at a time.
[0014] Optionally, the pump comprises an extruder. Optionally, the pipe is configured to maintain the plastic material in a molten state.
[0015] Optionally, the pipe comprises a heating means. Optionally, the heating means comprises electrical heat tracing.
[0016] Optionally, the pipe is oriented at a positive angle to the horizontal. If necessary, the angle is selected from the range of 10° to 45°.
[0017] Optionally, the system includes multiple interlocking valves for feeding the heated plastic material to two or more reactors. [Brief explanation of the drawings]
[0018] [Figure 1] FIG. 1 is a schematic diagram showing a known chemical recycling plant disclosed in WO2011077419A1. [Figure 2] FIG. 1 is a perspective view of an early stage of a chemical recycling plant forming part of a system according to the present disclosure. [Figure 3] 3 shows an alternative pipe arrangement to that shown in FIG. 2. FIG. [Figure 4]FIG. 4 is a perspective view of a pipe of the system of FIG. 2 or the alternative pipe arrangement of FIG. 3. DETAILED DESCRIPTION OF THE INVENTION
[0019] Detailed Description Preferred embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0020] End-of-life or contaminated plastic waste feedstock for plastic chemical recycling can be received, for example, from municipal collection facilities, recycling plants, or other plastic recovery sources. During a pretreatment process, the feedstock may be purified to contain only plastics suitable for the chemical recycling process, such as low-density polyethylene (LDPE), high-density polyethylene (HDPE), polystyrene (PS), and / or polypropylene (PP). In addition, unsuitable materials such as metals, paper, card, and glass, as well as moisture, may be removed from the plastic waste.
[0021] FIG. 1 shows a known chemical recycling plant 1, as disclosed in WO2011077419A1, in which pipes 2 according to the present disclosure can be used. The plastic raw materials may be processed into granule or flake form to enter the system through one or more feed hoppers 3. A conveyor 4 may deliver the plastic material to a pump 5 via a weighing belt 6. The plastic material may be melted in the pump 5 by a heating process that may include one or more heating and cooling stages, ultimately to a maximum temperature in the 300°C range. The molten plastic may be transported via pipe 2 to one or more reactors 10.
[0022] The feedstock is pyrolyzed in one or more reactors 10 by heating the feedstock in the absence of oxygen, thereby breaking down polymer molecules to form rich saturated hydrocarbon vapors. The hydrocarbon vapors are allowed to flow through a contactor 11 having a series of condenser elements 12, thereby condensing some of the long-chain hydrocarbon components and allowing them to be thermally degraded to shorter carbon-carbon chains by returning the condensed long-chain material to the reactor 10 for further pyrolysis. The components exit the contactor 11 as vapors.
[0023] The hydrocarbon vapors from the contactor are fed to condensation column 13. Condensation column 13 may separate the hydrocarbon vapors into condensable and non-condensable synthesis gas components based on molecular weight.
[0024] Condensable components having relatively large molecular weights may accumulate in and be discharged from one or more regions in the middle and bottom of condensation column 13. For example, gas oil and crude diesel may be discharged from condensation column 13.
[0025] Non-condensable synthesis gas components having relatively small molecular weights may accumulate in a region near the top of the condensation column 13 and be discharged from the top of the condensation column 13. The non-condensable synthesis gas components may be combusted, for example, in a combustion furnace (not shown) of the recycle plant 1.
[0026] By this process, the condensable gases are converted into hydrocarbon products, and the non-condensable synthesis gas can be collected separately and combusted to produce energy. The hydrocarbon products may be sold to the petrochemical industry, which can convert the hydrocarbon products into primary plastics, oil, or transportation fuels, for example. The synthesis gas may be used in chemical recycling plants.
[0027] Figure 2 shows in more detail the initial stages of a chemical recycling plant 1, such as that shown in Figure 1, prior to pyrolysis of the feedstock of the chemical recycling plant 1. The feed system 30 may include a feed hopper 3 (or silo), a conveyor (not shown), a weighing belt (or a scale known as a "load cell") (not shown), and a pump 5.
[0028] Advantageously, the feedstock may be fed to each reactor 10 at a controlled temperature within a target temperature range. Optimally, the feedstock temperature should be as close to the reactor 10's operating temperature as possible without adversely affecting the reactor's thermal performance. Reducing the reactor 10's temperature can slow or stop the depolymerization process. The reactor 10's operating temperature during feedstock feeding may be in the range of 380°C to 410°C. Also, if the feedstock temperature is too low, the feedstock transported along the pipe 2 may be too sticky. Therefore, the feedstock temperature may be at least 265°C, or at least 280°C if necessary. This temperature can ensure that the feedstock is in a properly molten state. However, if the feedstock temperature is too high, the feedstock may decompose before reaching the reactor 10. Feedstock decomposition can lead to the formation of coke (a type of carbon residue), which is disadvantageous as explained below. Therefore, the target temperature range may be lower than the feedstock's decomposition temperature. Therefore, the feedstock temperature should be below 310°C, or lower if necessary. It may be 300° C. or lower. Therefore, a suitable target temperature range may be 265° C. to 310° C., or 280° C. to 300° C. as needed.
[0029] The pump 5 can perform three functions: heating the feedstock to a temperature within a target temperature range, compressing the feedstock to remove air pockets from the feedstock, and providing a driving force for transporting the feedstock to the reactor 10 via the pipe 2. In an exemplary embodiment, the pump 5 can include an extruder, which typically includes an auger 40 (or screw) housed within a tight-fitting barrel 41. The three functions may be achieved by the operation of the auger 40. The pump 5 can heat the feedstock from ambient temperature to a temperature within the target temperature range by applying shear forces generated by relative motion between the auger 40 and the wall of the barrel 41. In this way, the temperature of the feedstock within the pump 5 can gradually increase toward the outlet 42 of the pump 5. This is advantageous for achieving a temperature within the target temperature range. In contrast, during normal operation of existing pumps, the temperature of the feedstock peaks at a certain point within the pump and then decreases toward the outlet. Pump 5 may optionally include a variable speed drive (not shown) that allows for a lower flow rate to be delivered to reactor 10 while maintaining the temperature at outlet 42 of pump 5 within a target temperature range.
[0030] The pump 5 may include one or more dual heating and cooling zones 43. The one or more dual heating and cooling zones 43 can help incrementally control the temperature of the feedstock as it passes along the auger 40. Primarily, the heating function can be used to melt the feedstock present in the auger 40 upon system startup. During normal operation, the cooling function can be used to prevent the zone temperatures from exceeding their respective set points. The heating function is rarely used during normal operation because the shear forces from the operation of the auger screw provide enough heat to melt the feedstock and achieve a temperature within the target temperature range at the outlet 42.
[0031] Cooling of the barrel 41 may be accomplished by a closed-loop oil cooling circuit or a fan (not shown). Temperature sensors can monitor the temperature of each barrel zone. If the temperature sensors detect an excessive temperature rise, each barrel zone can be cooled to a set temperature by opening the oil supply valve for that barrel zone or by activating individual cooling fans.
[0032] The pipe 2 can connect the pump 5 to one or more reactors 10. Preferably, the pipe 2 can connect the pump 5 to multiple reactors 10. In one exemplary configuration shown in FIG. 2, the pipe 2 can connect the pump 5 to one or more reactors 10 via a single header pipe 50. The header pipe 50 may be connected to each of the one or more reactors 10 via respective feed pipes 61. In an alternative exemplary embodiment shown in FIG. 3, the pipe 2 can connect the pump 5 to one or more reactors 10 via auxiliary pipes 60 provided in each reactor 10. Each auxiliary pipe 60 may be connected to each reactor 10 via a feed pipe 61. In both configurations, the feed pipes 61 may be substantially vertical.
[0033] The compressed and melted raw material discharged from outlet 42 of pump 5 can be forced into pipe 2 and driven along pipe 2 at the required flow rate and temperature with sufficient pressure to prevent the raw material from reaching reactor 10 at too high a pressure, taking into account the pressure drop along pipe 2. A suitable pressure of the raw material when discharged from pump 5 (i.e., at pump outlet 42) may be in the range of 3 MPaG to 15 MPaG (30 BarG to 150 BarG), or 5 MPaG to 8 MPaG (50 BarG to 80 BarG) as needed.
[0034] Figure 4 shows the pipe 2 in more detail. The pipe 2 may be made from any suitable material, for example stainless steel or carbon steel. The pipe 2 may include heating means 51. The heating means 51 may include electric heat tracing (also known as "heat tape" or "surface heating"). The heating means 51 may be used to heat the target It can be ensured that temperatures within the target temperature range are maintained along the pipe 2. Furthermore, heating means 51 can be used to heat (and melt) the raw material present in the pipe 2 when the system is started up.
[0035] One or more temperature sensors 52 and / or pressure sensors (not shown) may be provided to monitor the temperature and pressure along the pipe 2 to ensure a steady flow. The temperature sensors 52 may include thermocouples. The pipe 2 may further include insulation 53.
[0036] The diameter of pipe 2 may be selected to be small enough to maintain heat within pipe 2 via heating means 51 (or to heat the feedstock during system start-up). Nevertheless, the diameter must be large enough to achieve the required flow rate and pressure. The diameter of pipe 2 may be selected from the range of 150 mm to 200 mm, and may be 200 mm if necessary.
[0037] The length of the pipe 2 can be minimized while maintaining a sufficient length to allow mechanical flexibility (allowing the pipe 2 to absorb thermal expansion stresses). Minimizing the length of the pipe 2 can be advantageous in that it reduces the extent of the heating means 51 required for the pipe 2. Minimizing the length of the pipe 2 can also be advantageous in that it reduces the possibility of "coking" the pipe 2. This is a greater risk for longer pipes 2 due to the longer residence time of the raw materials in the longer pipe 2. If a continuous flow of raw materials is not maintained within the pipe 2 and the raw materials are left standing at high temperatures for long periods of time within the pipe 2, coke (carbon residue) begins to deposit on the inside of the pipe 2. Such coke deposits reduce the diameter of the pipe 2, thereby reducing the flow rate within the pipe 2 and increasing the pressure within the pipe 2. Furthermore, because the coke deposits act as an insulator, more energy must be input from the heating means 51. The length of the pipe 2 can be selected from a range of 5 m to 11 m, and can be as long as 8 m if necessary.
[0038] Pipe 2 may be oriented at a positive angle relative to the horizontal, so that it slopes at a generally upward angle (i.e., not downward or horizontal) along the direction from pump 5 to header pipe 50 or auxiliary pipe 60. A suitable angle may be in the range of 10° to 45°. Feedstock at temperatures within the target temperature range can flow by gravity. Orienting pipe 2 at an upward angle ensures that pipe 2 is discharged only by pump 5 and not by gravity. This prevents the pipe from running dry during operation. If pipe 2 runs dry, a void will be created in the pipe between pump 5 and reactor 10, potentially allowing hydrocarbon vapors from reactor 10 to escape into the void in the pumping section and / or allowing air to enter the reactor system, potentially causing an ignition.
[0039] If pipe 2 is split into two (or more) auxiliary pipes and a portion of the molten material in pipe 2 is simultaneously fed to each of the auxiliary pipes, the molten material may not be evenly distributed between the two (or more) auxiliary pipes due to unclear and variable preferential flow. Instead, one auxiliary pipe may have an unexpectedly preferred flow. Thus, if each auxiliary pipe 60 simultaneously feeds multiple reactors 10 (e.g., as shown in FIG. 3), or if a single header pipe 50 feeds multiple reactors 10 (e.g., as shown in FIG. 2), When simultaneously feeding all 0, it can be extremely difficult (or impossible) to control the amount of raw material fed to each reactor 10. As a result, it is not possible to control a consistent, repeatable batch cycle.
[0040] Advantageously, feed may instead be fed to only one reactor 10 at a time. Two or more reactors 10 may be fed sequentially from pipe 2 via header pipe 50 or auxiliary pipe 60. Each reactor 10 may be provided with a valve 54 to allow or prevent the feed of the respective reactor 10. Depending on the configuration, the valve 54 for a particular reactor 10 may be located, for example, in the header pipe 50, the auxiliary pipe 60, or the feed pipe 61. The valves 54 of each of two or more reactors 10 may be interlocked to ensure that feed is fed to only a single reactor 10 at any given time. With such a configuration, a single pump 5 and a single pipe 2 can feed multiple reactors 10 independently of each other.
[0041] The header pipe 50 may have a configuration similar to that of the pipe 2. The header pipe 50 may include one or more of the following features of the pipe 2: a heating means 51, one or more temperature and / or pressure sensors, and / or an insulator 53. The header pipe 50 may be oriented horizontally. The diameter of the header pipe 50 may be selected from the range of 100 mm to 200 mm, and may be 150 mm if necessary. The length of the header pipe 50 may be selected from the range of 7 m to 16 m, and may be 11 m if necessary. The pressure in the header pipe 50 may be selected from the range of 1 MPaG to 6 MPaG (10 BarG to 60 BarG), and may be selected from the range of 2 MPaG to 4 MPaG (20 BarG to 40 BarG) if necessary.
[0042] The auxiliary pipes 60 may also have a similar configuration to the pipe 2. The auxiliary pipes 60 may include one or more of the following features of the pipe 2: heating means 51, one or more temperature and / or pressure sensors, and / or insulators 53. The auxiliary pipes 60 may be oriented horizontally. The diameter of each auxiliary pipe 60 may be selected from the range of 100 mm to 200 mm, or 150 mm if necessary. The pressure in each auxiliary pipe 60 may be selected from the range of 1 MPaG to 6 MPaG (10 BarG to 60 BarG), or 2 MPaG to 4 MPaG (20 BarG to 40 BarG) if necessary.
[0043] In use, when starting up the system (e.g. after a turnaround), raw material already present in the system, which may be in a solid state, may be heated. Raw material present in pump 5 may be heated using the heating function of one or more dual heating and cooling zones 43. Raw material present in pipe 2 may be heated using heating means 51.
[0044] New feedstock can be added to the system when the existing feedstock in the system reaches a temperature within the target temperature range. The new feedstock may be fed to pump 5 in granular or flake form and heated by pump 5 to a temperature within the target temperature range by applying shear forces to the feedstock. Auger 40 can also operate to force the feedstock into pipe 2 and drive it along pipe 2.
[0045] As the feedstock is transported along the pipe 2, the temperature of the feedstock may be maintained within a target temperature range by heating means 51.
[0046] The feedstock may be continuously fed to the reactor 10. In an exemplary system including three reactors 10, the first reactor may be connected and fed with a predetermined volume of feedstock, and then the first reactor may be isolated. After the first reactor is isolated, the second reactor may be connected and fed with a predetermined volume of feedstock. After the feedstock is supplied, the second reactor may be isolated. The same process can be repeated for the third reactor. While each reactor 10 is isolated, each reactor 10 can continue to pyrolyze the feedstock to produce hydrocarbon vapors. After all processes, the pyrolysis of the existing feedstock in the first reactor is substantially complete. The first reactor can again receive a feedstock.
[0047] Advantageously, a closed system can prevent air from entering pipe 2. Additionally, in a closed system, forcing the feedstock in one direction (from pump 5 towards reactor 10) can compress the molten feedstock and push any air pockets out in the opposite direction.
Claims
1. 1. A method for pyrolyzing plastic materials, comprising: The method comprises: heating and compressing the plastic material with a pump; transporting the plastic material in a pipe between the pump and one or more reactors, the pipe being oriented at a positive angle relative to the horizontal; pyrolyzing the plastic material in the one or more reactors; and maintaining the plastic material in a heated state during the transporting step; The method wherein the plastic material is transported at a positive angle to the horizontal.
2. The method of claim 1 , wherein the angle is greater than or equal to 10°.
3. The method according to claim 1 or claim 2, wherein the angle is selected from the range of 10° to 45°.
4. 4. A method according to any one of claims 1 to 3, wherein the heated plastic material is fed into one reactor at a time.
5. 5. A method according to any one of claims 1 to 4, wherein the step of heating and compressing the plastic material is carried out by extruding the plastic material.
6. 6. The method of any one of claims 1 to 5, wherein the plastic material is maintained in a molten state during the transporting step.
7. 7. A method according to any one of claims 1 to 6, wherein the temperature of the plastic material is maintained within a target temperature range.
8. The method of claim 7 , wherein the target temperature range is below a decomposition temperature of the plastic material.
9. 9. A method according to any one of claims 1 to 8, wherein the temperature of the plastic material is maintained at a temperature of at least 265°C.
10. 10. A method according to any one of the preceding claims, wherein the temperature of the plastic material is maintained at a temperature of at least 280°C.
11. 11. A method according to any one of claims 1 to 10, wherein the temperature of the plastic material is maintained at a temperature of 310°C or less.
12. 12. A method according to any one of claims 1 to 11, wherein the temperature of the plastic material is maintained at a temperature of 300°C or less.
13. 13. The method of claim 7 or any one of claims 8 to 12 when dependent thereon, wherein the plastic material is heated to a temperature within the target temperature range during the heating and compressing step.
14. 14. The method of claim 13, wherein the temperature of the plastic material is within the target temperature range at the end of the heating and compressing step.
15. A system for pyrolyzing plastic materials, comprising: The system comprises: a pump for heating and compressing the plastic material; one or more reactors for pyrolyzing said plastic material; a pipe between the pump and the one or more reactors for transporting the plastic material; the pipe is configured to maintain the plastic material in a heated state; The system wherein the pipe is oriented at a positive angle relative to the horizontal.
16. The system of claim 15 , wherein the angle is greater than or equal to 10 degrees.
17. The system of claim 15 or claim 16, wherein the angle is selected from the range of 10° to 45°.
18. the system comprises two or more reactors for pyrolyzing the plastic material; 18. The system of any one of claims 15 to 17, wherein the system further comprises a plurality of valves arranged to feed the heated plastic material into one reactor at a time.
19. 19. The system of any one of claims 15 to 18, wherein the pump comprises an extruder.
20. 20. The system of any one of claims 15 to 19, wherein the pipe is configured to maintain the plastic material in a molten state.
21. 21. A system according to any one of claims 15 to 20, wherein the pipe comprises a heating means.
22. 22. The system of claim 21, wherein the heating means comprises electrical heat tracing.
23. 23. The system of any one of claims 15 to 22, wherein the system comprises a plurality of ganged valves for feeding heated plastic material to two or more reactors.
Citation Information
Patent Citations
Screw feeder and conveying mechanism using-screw feeder
JP1997290907A