Pyrolysis process for dismantling photovoltaic modules
An automated pyrolysis process with controlled thermal phases and gas management addresses the safety and efficiency issues in photovoltaic module dismantling, ensuring safe and efficient material separation.
Patent Information
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-10-01
- Publication Date
- 2026-04-03
AI Technical Summary
Existing pyrolysis processes for dismantling photovoltaic modules face challenges in safely transitioning between thermal phases due to uncontrolled oxygen content and flammable gases, leading to potential fires and explosions, and inefficient material separation.
An automated pyrolysis process with controlled thermal phases and sensors to ensure safe transitions, using temperature and carbon monoxide sensors to initiate phases only when specific conditions are met, and injecting neutral gas to manage gas flow, ensuring a safe and efficient dismantling process.
The process ensures safe and efficient recycling of photovoltaic module materials by preventing sudden temperature or pressure changes, reducing the risk of fires and explosions, and facilitating easy separation of mineral materials.
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Abstract
Description
Title of the invention: Pyrolysis process for dismantling photovoltaic modules. FIELD OF THE INVENTION
[0001] The present invention relates to the field of photovoltaic module recycling. It relates in particular to a pyrolysis process, implemented in a batch-operated pyrolysis furnace, particularly suitable for the thermal dismantling of photovoltaic modules for the purpose of recycling the materials from which they are made. TECHNOLOGICAL BACKGROUND OF THE INVENTION
[0002] Given the exponential increase in photovoltaic panels produced and installed, their recycling becomes essential to recover and valorize the precious materials that compose them (metals, glass, silicon...).
[0003] In a recycling process, the metal frame 110 (“frame”) of the end-of-life photovoltaic panels 200 and the junction box 150 are first separated from the photovoltaic module 100, which is a sandwich of functional layers, generally including a stack of glass 120, polymer layers 131, 132, 133 and photovoltaic cells 140 with semiconductor and metal contacts ([Fig. 1]). The polymer layers may include, in particular, ethylene vinyl acetate (EVA), polyethylene terephthalate (PET), polyvinyl fluoride (PVF) or polyvinylidene fluoride (PVDF).
[0004] It is then known to dismantle the photovoltaic module 100 either by a mechanical process or by thermal treatment based on a pyrolysis and / or combustion process. Tunnel furnaces (continuous processing, combustion process) or batch furnaces (batch processing, pyrolysis or combustion process) can be used. The polymer layers 131, 132, 133, included in the sandwich of functional layers (photovoltaic module), are formed of organic compounds, which can be decomposed by pyrolysis or burned by combustion, thus inducing the separation of the layers into mineral materials of the sandwich.
[0005] In general, a pyrolysis process comprises four main phases: - a preheating phase of the chamber up to approximately 300°C, - a pyrolysis phase, between 300°C and 500°C, under an oxygen-poor or oxygen-free atmosphere, during which the polymers are decomposed and pyrolysis gases are generated, - an oxidation phase, between 450°C and 600°C, under an oxidizing atmosphere (air), during which the carbon residues potentially formed during pyrolysis are decomposed, - a cooling phase, down to a temperature allowing the removal of mineral materials from the dismantling of the modules.
[0006] The gases produced by polymer pyrolysis are highly flammable and release a large amount of energy during combustion. The composition of the gaseous atmosphere within the furnace is therefore critical and must be very carefully controlled, particularly to ensure a safe transition from the pyrolysis phase to the oxidation phase. SUBJECT OF THE INVENTION
[0007] The present invention proposes an automated and safe pyrolysis process, particularly suitable for the thermal dismantling of photovoltaic modules for the purpose of the efficient recycling of the materials from which they are formed. BRIEF DESCRIPTION OF THE INVENTION
[0008] The invention relates to a pyrolysis process for dismantling photovoltaic modules, comprising different thermal phases and operating in a pyrolysis chamber having an internal atmosphere isolated from the outside, the thermal phases being as follows:
[0009] - a pyrolysis phase, referred to as the first phase, during which polymers included in the photovoltaic modules are decomposed into pyrolysis gas, said gases passing from the pyrolysis chamber to a post-combustion chamber to be incinerated;
[0010] - an oxidation phase, called the second phase, after the first phase, to oxidize carbonaceous residues generated during the pyrolysis phase. According to the method of the invention, a temperature sensor measures a temperature in the afterburner chamber, referred to as the core temperature, and a carbon monoxide sensor measures the carbon monoxide concentration in the pyrolysis chamber. The second phase is not initiated until at least one of the following two conditions is met:
[0011] - first condition: the difference between the core temperature and a temperature The setpoint temperature is lower than a predefined threshold temperature difference.
[0012] - second condition: the concentration of carbon monoxide in the enclosure of pyrolysis is below a predefined threshold concentration.
[0013] According to other advantageous and non-limiting features of the invention, taken alone or in any technically feasible combination: • the setpoint temperature is greater than or equal to 850°C, preferably between 850°C and 1000°C; the threshold temperature difference is between 1°C and 5°C; the difference between the core temperature and the setpoint temperature must be less than the predefined threshold temperature difference for a measurement period of between 10s and 5min, preferably between 20s and 1min, before considering the first condition satisfied; the threshold concentration is less than or equal to 5%, or even less than or equal to 2%; the carbon monoxide concentration must be below the predefined threshold concentration for a measurement period of between 10s and 5min, preferably between 20s and 1min, before considering the second condition satisfied; the carbon monoxide sensor is placed in an extreme area of the pyrolysis chamber, near the fluidic link between the pyrolysis chamber and the post-combustion chamber; the pyrolysis process includes, before starting the second phase, an injection of neutral gas into the pyrolysis chamber, and as long as at least one of the first and second conditions is not met with this injection of neutral gas, the second phase is not started; if at least one of the first and second conditions is met for a neutral gas flow rate equal to a predetermined maximum flow rate, the second phase can be initiated; the second phase is automatically engaged if the first and second conditions are met, for a neutral gas flow rate equal to a predetermined maximum flow rate; the injection of neutral gas is carried out at increasing flow rates up to a predetermined maximum flow rate; the maximum predetermined flow rate is less than or equal to 600 Nm3 / h, preferably between 50 Nm3 / h and 300 Nm3 / h; the pyrolysis process includes a cooling phase, called the third phase, which follows the second phase, and the third phase is not initiated until at least one of the first and second conditions is met; the pyrolysis process includes, before starting the third phase, an injection of neutral gas into the pyrolysis chamber, and as long as at least one of the first and second conditions is not met with this injection of neutral gas, the third phase is not started; • the third phase is engaged automatically if the first and second conditions are met, for a neutral gas flow rate equal to a predetermined maximum flow rate. BRIEF DESCRIPTION OF THE FIGURES
[0014] Other features and advantages of the invention will become apparent from the detailed description of the invention which follows with reference to the accompanying figures in which:
[0015] [Fig.1] Fig.1 presents an exploded view of a photovoltaic panel;
[0016] [Fig.2] Figure [Fig.2] shows a batch pyrolysis oven, in which a a pyrolysis process according to the present invention can be implemented;
[0017] [Fig.3] Fig.3 presents a thermal cycle graph of a pyrolysis process according to the invention;
[0018] [Fig.4] Fig.4 presents a graph representing temperatures (measured and setpoint) in the pyrolysis chamber and in the post-combustion chamber of a furnace, and a carbon monoxide level in the pyrolysis chamber, during a pyrolysis process according to the invention.
[0019] The figures are schematic representations which, for the purpose of readability, are not necessarily to scale. DETAILED DESCRIPTION OF THE INVENTION
[0020] The present invention relates to a pyrolysis process for dismantling photovoltaic modules 100. Such a process is preferred to a combustion process in which the risk of degradation of the materials to be recycled is high because the temperature during combustion is not controlled (possible melting of metals).
[0021] The pyrolysis process takes place in a pyrolysis chamber whose internal atmosphere is isolated from the outside. It should be noted that pyrolysis is an anaerobic process, during which organic matter (polymers, fats, etc.) is evaporated by the action of heat. It is therefore critical in such a process to limit the oxygen content in the chamber to prevent the combustion of polymers. The gases produced during pyrolysis are organic, toxic, and combustible. Typically, an afterburner is used to treat these gases by burning them at high temperature to ensure their complete combustion.
[0022] The process according to the invention can be implemented in a pyrolysis oven 1, adapted for batch processing, as illustrated in [Fig. 2]. It comprises a pyrolysis chamber 2, isolated from the outside by a sealed door 25. The pyrolysis chamber 2 is fluidly connected to an afterburner chamber 3. Heating means are available for heating the pyrolysis chamber 2 and the afterburner chamber 3. Preferably, at least one burner 41 is arranged in the lower part of the pyrolysis chamber 2, and at least two burners 42, 43 are provided. in the afterburner chamber 3. They are supplied with a commercial combustible gas, for example natural gas or liquefied petroleum gas (LPG), and with an oxygen-containing oxidizing gas, for example air. The photovoltaic modules 100 are held in a support 500, which is introduced into the chamber 2 to apply the pyrolysis process to said modules 100.
[0023] Prior to their placement on the support 500, it is advantageous to break the glass layer 120 of the photovoltaic modules 100. Since this layer is made of tempered glass, it fractures into small, non-cutting pieces a few millimeters in size upon impact. Thanks to the presence of polymer layers, each module 100 nevertheless retains its intact form, typically a rectangle of 1 to several square meters, and can be easily placed on the support 500. This pre-fracturing of the glass layer 120 allows for the recovery, at the end of the pyrolysis process, of fragments of mineral materials (glass, semiconductors, metals), which are easier to sort and handle than large layers.
[0024] The pyrolysis process, as mentioned in the introduction, comprises different thermal phases. An example of a temperature cycle for said process is shown in [Fig.3].
[0025] A preliminary preheating phase of chamber 2 begins after the photovoltaic modules 100 are loaded into said chamber and after the door 25 of the furnace 1 is closed. This phase raises the temperature of chamber 2 from an initial temperature typically between 150°C and 300°C to a temperature of approximately 400°C to 450°C; the internal atmosphere of chamber 2 is reducing, consisting mainly of the combustion gases from the burner 4L
[0026] This is followed by a pyrolysis phase, referred to as the first phase, during which polymers (polymer layers 131, 132, 133), included in the photovoltaic modules 100, are decomposed into flammable gases, referred to as pyrolysis gases. These gases pass from the pyrolysis chamber 2 to the afterburner chamber 3 to be incinerated. The pyrolysis phase takes place in the pyrolysis chamber 2, which is heated to a temperature Tchamber between 300°C and 800°C, preferably between 400°C and 600°C. The injection of oxidizer (air) at the burner 41 is such that the internal atmosphere of the chamber 2 contains less than 4%, or even 2%, oxygen; The internal atmosphere of enclosure 2, during pyrolysis, is not imposed but endured, as it results from the decomposition of polymers; it mainly comprises combustion gases and pyrolysis gases (including carbon monoxide).
[0027] A layered dislocation of the module 100, linked to the decomposition of the polymer layers, occurs during pyrolysis. The glass layer 120 having been previously broken, glass fragments fall into the support 500, and the layer of cells (silicon and contact) also breaks into pieces due to its fall into / onto the support 500.
[0028] The post-combustion chamber 3 is subjected to a temperature above 850°C (in accordance with waste incineration legislation) to ensure complete combustion of the pyrolysis gases; the residual gases are then evacuated (evacuation 9) to a combustion gas treatment unit (for example, scrubber), after which the fluid can be released into the atmosphere.
[0029] The process then includes an oxidation phase, referred to as the second phase, to oxidize carbonaceous residues generated during the pyrolysis phase. The temperature range is typically [500°C - 800°C], and the internal atmosphere of chamber 2 can contain between 5% and 20% oxygen, preferably between 5% and 10%.
[0030] Finally, following the second phase, a cooling phase, referred to as the third phase, is carried out to lower the temperature of the mineral material fragments resulting from pyrolysis, in order to remove them from chamber 2 of the furnace. This third phase is preferably carried out under a neutral atmosphere, for safety reasons, and lowers the temperature of chamber 2 to approximately 300°C or less.
[0031] It is particularly critical to move from the first phase to the second phase. Indeed, the addition of oxygen to enclosure 2 for the oxidation phase must take place when there is no more pyrolysis gas left (or very little of it remains), to avoid inducing combustion in the pyrolysis enclosure 2, which would release a huge amount of energy and could therefore cause a sudden rise in temperature (risk of fire) and / or pressure (explosion in enclosure 2).
[0032] The pyrolysis process according to the invention provides that a temperature sensor 31 measures a temperature of the post-combustion chamber 3, called central temperature Tc, and that a carbon monoxide sensor 26 measures the concentration of carbon monoxide in the pyrolysis chamber 2.
[0033] The temperature sensor 31 is advantageously located in a central position in the post-combustion chamber 3, so as to translate the temperature (central temperature Tc) at the heart of the chamber 3. The carbon monoxide sensor 26 is, for its part, preferably located in an extreme area of the pyrolysis chamber 2, near the fluidic link between the pyrolysis chamber 2 and the post-combustion chamber 3, as illustrated in [Fig.2].
[0034] According to the invention, the second phase is not initiated until at least one of the following two conditions is met.
[0035] The first condition relates to the central temperature Tc of the afterburner chamber 3.
[0036] According to the first condition, the difference between the core temperature Tc and a setpoint temperature TCCh.p_c must be less than a predefined threshold temperature difference ATseuii. The setpoint temperature TCk|kp_k must be equal to or greater than 850°C, preferably between 850°C and 1000°C. The threshold temperature difference ATseuii is preferably between 1°C and 10°C, and even more preferably between 1°C and 5°C.
[0037] The fact that the core temperature Tc does not differ by more than 1 to 10°C from the setpoint temperature TCk|kpk indicates a decrease in the arrival of pyrolysis gases. As can be seen in the graph in [Fig. 4], the core temperature Tc is very close to the setpoint temperature TCk|kpk in a first sequence Pi of the pyrolysis phase; in a second sequence P2, large differences AT are observed between the core temperature Tc of the afterburner chamber 3 and the setpoint temperature TCch.p_c, linked to the arrival of pyrolysis gases (resulting from the decomposition of the polymer layers in the pyrolysis chamber 2) in said chamber 3.
[0038] Preferably, the difference between the core temperature Tc and the setpoint temperature TCchp c must be less than the predefined threshold temperature difference ATseuii for a measurement time of between 10s and 5min, preferably between 20s and 1min, before considering the first condition satisfied.
[0039] The second condition relates to the carbon monoxide content: the concentration of carbon monoxide CCo in the pyrolysis chamber 2 must be less than a predefined threshold concentration Cseuii.
[0040] Advantageously, the threshold concentration Cseuii is less than or equal to 5% (by volume of CO in the atmosphere of enclosure 2), preferably less than or equal to 3%, or even less than or equal to 2%. The low carbon monoxide concentration reflects a decrease in the arrival of pyrolysis gases, which are usually laden with CO.
[0041] Preferably, the carbon monoxide concentration CCo must be less than the predefined threshold concentration Cseuii for a measurement period of between 10s and 5min, preferably between 20s and 1min, before considering the second condition satisfied.
[0042] To secure the transition from the first phase to the second phase, the process according to the invention may provide for not engaging the second phase until the two aforementioned conditions are satisfied.
[0043] Another variant of the process can be implemented to further secure the transition from the pyrolysis phase to the oxidation phase. When at least one of the first and second conditions is met, and before initiating the second phase, the pyrolysis process can further include an injection of neutral gas in the pyrolysis chamber 2, aiming to play a piston effect to push the maximum amount of pyrolysis gas towards the post-combustion chamber 3. This injection of neutral gas (for example, nitrogen) is advantageously carried out via an injection system 6, which may include a plurality of nozzles, arranged in a proximal area of the chamber 2, opposite to the extremity area located near the junction with the post-combustion chamber 3.
[0044] With this neutral gas injection, pyrolysis gases residing in the pyrolysis chamber 2 can be pushed towards the afterburner chamber 3, thereby inducing an increase in the carbon monoxide concentration in the outermost zone of the chamber 2, as well as an increase in combustion in the afterburner chamber 3 (with heat release) and thus an increase in the core temperature Tc. Therefore, with the neutral gas injection activated, the second phase is not initiated as long as at least one of the first and second conditions is not met.
[0045] The piston effect of the neutral gas injection can depend on the applied gas flow rate. Advantageously, the condition(s) must be met for a neutral gas flow rate equal to a predetermined maximum flow rate. The maximum flow rate is preferably less than or equal to 600 Nm³ / h (norm cubic meters per hour), and even more preferably between 50 and 300 Nm³ / h. The pyrolysis chamber 2 typically has a volume of approximately 20 m³ to 50 m³.
[0046] Preferably, the neutral gas is injected at an increasing flow rate up to the predetermined maximum flow rate. It is also advantageous for the neutral gas to have a high temperature (above 300°C, or even above 400°C) at the time of injection, in order to limit its impact on the temperature of enclosure 2.
[0047] According to the invention, the second phase can thus be initiated: - if the first condition, the second condition, or both conditions are met at the end of the pyrolysis phase, - if the first condition, the second condition or both conditions are satisfied at the end of the pyrolysis phase, and after injection of neutral gas.
[0048] It is easy to trigger the second phase automatically, based on the information returned by the temperature sensors 31 and carbon monoxide concentration 26 and by the neutral gas injection system 6, to a controller, and based on a decision algorithm.
[0049] Advantageously, to ensure a high level of safety, the second phase is automatically engaged if the first and second conditions are met, for a neutral gas flow equal to the predetermined maximum flow.
[0050] As mentioned previously, the pyrolysis process according to the invention includes a cooling phase (third phase), which follows the second phase. The transition from the second phase (oxidation phase) to the third phase is also critical because incomplete oxidation will leave highly reactive carbon residues in the pyrolysis chamber 2, and the release of air during the unloading of the support 500 with the dislocated modules, at a high temperature (typically around 300°C), can lead to spontaneous ignition of the carbon residues.
[0051] Thus, according to the pyrolysis process of the invention, the third phase is advantageously not initiated before at least one of the first and second conditions is satisfied.
[0052] The pyrolysis process may also include, when at least one of the first and second conditions is met, and before initiating the third phase, an injection of neutral gas into the pyrolysis chamber 2; as long as at least one of the first and second conditions is not met, the third phase is not initiated. Advantageously, the condition(s) must be met for a neutral gas flow rate equal to the predetermined maximum flow rate. The neutral gas injection is typically carried out at an increasing flow rate up to the maximum flow rate.
[0053] The automation of the transition from the second to the third phase can be easily achieved. Preferably, to maximize safety, the cooling phase is initiated automatically if the first and second conditions are met, for a neutral gas flow rate equal to the predetermined maximum flow rate.
[0054] Of course, the invention is not limited to the embodiments and examples described, and alternative embodiments can be made without departing from the scope of the invention.
Claims
Demands
1. A pyrolysis process for dismantling photovoltaic modules (100), comprising different thermal phases and operating in a pyrolysis chamber (2) having an internal atmosphere isolated from the outside: - a pyrolysis phase, called the first phase, during which polymers included in the photovoltaic modules (100) are decomposed into pyrolysis gases, said gases passing from the pyrolysis chamber (2) to a post-combustion chamber (3) to be incinerated; - an oxidation phase, called the second phase, after the first phase, to oxidize carbonaceous residues generated during the pyrolysis phase; in which: - a temperature sensor (31) measures a temperature in the post-combustion chamber (3), called central temperature (Tc), and a carbon monoxide sensor (26) measures the carbon monoxide concentration in the pyrolysis chamber (2);- the second phase is not started until at least one of the following two conditions is met: > first condition: the difference between the core temperature (Tc) and a setpoint temperature (TCCh.pc) is less than a predefined threshold temperature difference (ATseuU), > second condition: the carbon monoxide (Cco) concentration in the pyrolysis chamber (2) is less than a predefined threshold concentration (Cseuii).
2. Pyrolysis process according to the preceding claim, wherein the setpoint temperature (TCch.p_c) is greater than or equal to 850°C, preferably between 850°C and 1000°C.
3. Pyrolysis process according to any one of the preceding claims, wherein the threshold temperature deviation (ATseuii) is between 1°C and 5°C.
4. A pyrolysis process according to any one of the preceding claims, wherein the difference between the core temperature (Tc) and the setpoint temperature (TCCh.pc) is less than the predefined threshold temperature deviation (ATseuU) for a measurement time between 10s and 5min, preferably between 20s and 1min, before considering the first condition satisfied.
5. Pyrolysis process according to any one of the preceding claims, wherein the threshold concentration (Cseuii) is less than or equal to 5%, or even less than or equal to 2%.
6. Pyrolysis process according to any one of the preceding claims, wherein the carbon monoxide (Cco) concentration must be less than the predefined threshold concentration (Cseuii) for a measurement time of between 10s and 5min, preferably between 20s and 1min, before considering the second condition satisfied.
7. Pyrolysis method according to any one of the preceding claims, wherein the carbon monoxide sensor (26) is placed in an extreme area of the pyrolysis chamber (2), near the fluidic link between the pyrolysis chamber (2) and the post-combustion chamber (3).
8. A pyrolysis process according to any one of the preceding claims, comprising, before engaging the second phase, an injection of neutral gas into the pyrolysis chamber (2), and in which, as long as at least one of the first and second conditions is not satisfied with this injection of neutral gas, the second phase is not engaged.
9. Pyrolysis process according to the preceding claim, wherein, if at least one of the first and second conditions is satisfied for a neutral gas flow rate equal to a predetermined maximum flow rate, the second phase can be initiated.
10. Pyrolysis process according to one of the two preceding claims, wherein the second phase is automatically engaged if the first and second conditions are satisfied, for a neutral gas flow rate equal to a predetermined maximum flow rate.
11. A pyrolysis process according to any one of the three preceding claims, wherein the injection of neutral gas is made at an increasing flow rate up to a predetermined maximum flow rate.
12. Pyrolysis process according to one of the three preceding claims, wherein the predetermined maximum flow rate is less than or equal to 600 Nm3 / h, preferably between 50 Nm3 / h and 300 Nm3 / h.
13. A pyrolysis process according to any one of the preceding claims, comprising a cooling phase, referred to as the third phase, which follows the second phase, and in which the third phase is not initiated before at least one of the first and second conditions is satisfied.
14. Pyrolysis process according to the preceding claim, comprising, before engaging the third phase, an injection of neutral gas into the pyrolysis chamber (2), and in which, as long as at least one of the first and second conditions is not satisfied with this injection of neutral gas, the third phase is not engaged.
15. Pyrolysis process according to one of the two preceding claims, wherein the third phase is automatically engaged if the first and second conditions are satisfied, for a neutral gas flow rate equal to a predetermined maximum flow rate.
Citation Information
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