System and method for pyrolysis
A system for processing a material includes a pre-processing module configured to receive the material, mechanically stress the received material, and output the mechanically stressed material. The system also includes a pyrolysis module communicatively coupled to the pre-processing module and downstream of the pre-processing module. The pyrolysis module is configured to receive the mechanically stressed material from the pre-processing module and to perform a pyrolysis process on the received mechanically stressed material, thereby to produce one or more pyrolysis products.
1. A system for processing a material, the system comprising:
a pre-processing module configured to receive the material, mechanically stress the received material, heat the received material to less than or equal to 375° C., and output the mechanically stressed and heated material; and
a pyrolysis module communicatively coupled to the pre-processing module and downstream of the pre-processing module, the pyrolysis module configured to receive the mechanically stressed and heated material from the pre-processing module and to perform a pyrolysis process on the received mechanically stressed material, thereby to produce one or more pyrolysis products, wherein the pyrolysis process comprises heating the material received from the pre-processing module to greater than or equal to 450° C., wherein
the pre-processing module comprises:
a pre-processing chamber comprising a first inlet and a first outlet; and
a plurality of rotors located within the pre-processing chamber;
the plurality of rotors comprises at least one pair of rotors arranged at least partially side-by-side, the rotors of the at least one pair of rotors having substantially parallel axes of rotation;
the rotors of the at least one pair of rotors are configured to be simultaneously rotated thereby to subject the material within the pre-processing chamber to mechanical stresses;
the first inlet is disposed directly above the at least one pair of rotors and is configured for introduction of the material into the pre-processing chamber by gravity in a direction substantially perpendicular to the substantially parallel axes of rotation; and
the first outlet is disposed directly below the at least one pair of rotors and is configured for expulsion of the mechanically stressed material from the pre-processing chamber by gravity in the direction substantially perpendicular to the substantially parallel axes of rotation.
2. The system of claim 1 , wherein the pre-processing module and the pyrolysis module are independent modules that are configured to be controlled independently of one another.
3. The system of claim 1 , wherein the pre-processing module and the pyrolysis module are configured to be operated simultaneously such that the pre-processing module may process a received feedstock material at the same time as the pyrolysis module performs the pyrolysis process on material that has been output by the pre-processing module.
4. The system of claim 1 , wherein the pre-processing module is configured to heat the received material to between 200° C. and 350° C.
5. The system of claim 1 , wherein the pyrolysis module is configured to heat the mechanically stressed material to between 450° C. and 750° C.
6. The system of claim 1 , wherein the pre-processing module further comprises one or more heaters configured to increase a temperature of the material during mechanical stressing of the material.
7. The system of claim 1 , wherein the pyrolysis module comprises:
a pyrolysis chamber comprising a second inlet and a second outlet; and
one or more heaters operatively coupled to the pyrolysis chamber, wherein
the second inlet is communicatively coupled to the pre-processing module and is for introduction of the mechanically stressed and heated material into the pyrolysis chamber;
the one or more heaters are configured to heat the pyrolysis chamber so as to cause the mechanically stressed and heated material within the pyrolysis chamber to undergo pyrolysis, thereby to produce pyrolysis products; and
the second outlet is for expulsion of the pyrolysis products from the pyrolysis chamber.
8. The system of claim 7 , wherein:
the pyrolysis chamber comprises multiple, independently controllable heating zones;
there are a plurality of the heaters; and
each of the heating zones is heated by a respective one of the plurality of the heaters.
9. The system of claim 7 , wherein:
the pyrolysis chamber comprises an elongate conduit and a screw located in the elongate conduit, the screw being for transferring material through the elongate conduit; and
an outside radial edge of the screw is engaged so as to form a seal with an internal surface of the elongate conduit.
10. The system of claim 7 , wherein the one or more heaters comprise at least one annular heater disposed around the pyrolysis chamber.
11. The system of claim 7 , wherein:
the pyrolysis chamber comprises:
a first conduit comprising:
the second inlet; and
a third outlet; and
a second conduit substantially parallel to the first conduit, the second conduit being disposed below the first conduit, the second conduit comprising:
a third inlet; and
the second outlet; and
the pyrolysis module is configured to:
transfer the material in a first direction along the first conduit from the second inlet to the third outlet;
expel the material from the first conduit via the third outlet by gravity in a direction substantially perpendicular to the first direction;
introduce the material into the second conduit via the third inlet by gravity in a direction substantially perpendicular to the first direction; and
transfer the material in a second direction along the second conduit from the third inlet to the second outlet, the second direction being opposite to the first direction.
12. The system of claim 1 , wherein:
a residence time of the received material within the pre-processing module is less than or equal to 10 secs; and
a residence time of the mechanically stressed material within the pyrolysis module is between 5 mins and 25 mins.
13. The system of claim 1 , wherein the system further comprises a cooling module configured to receive the one or more pyrolysis products from the pyrolysis module, wherein the cooling module comprises:
a first cooler;
a storage tank; and
a second cooler; wherein
the first cooler is configured to receive one or more pyrolysis products from the pyrolysis module, cool the received one or more pyrolysis products, and provide the cooled one or more pyrolysis products to the storage tank;
the storage tank is configured to store the cooled one or more pyrolysis products received from the first cooler;
the second cooler is configured to receive the cooled one or more pyrolysis products from the storage tank, further cool the received one or more pyrolysis products, and output the further cooled one or more pyrolysis products.
14. The system of claim 13 , wherein:
the first cooler comprises a first conduit having a first feeder screw therein;
the second cooler comprises a second conduit having a second feeder screw therein; and
the first and second feeder screws are independently controllable.
15. The system of claim 13 , wherein:
the first cooler comprises a first conduit having a first feeder screw therein;
the second cooler comprises a second conduit having a second feeder screw therein; and
the first and second feeder screws are independently controllable.
16. The system of claim 1 , wherein:
the system is a recycling system;
the material is at least one of a solid organic material, a waste material of one or more processes, or a material selected from a group of materials consisting of long molecular chain organic matter, tire material, shredded tires, crumb rubber, plastic materials, polymeric materials, wood, wood shavings, saw dust, paper, cardboard, a material from which refuse-derived fuel can be obtained, a material from which solid recovered fuel can be obtained, and biological material; and
the one or more pyrolysis products comprises a material selected from a group of materials consisting of short molecular chain organic matter, a vapor, and carbon black.
17. The system of claim 1 , wherein the pre-processing module is located directly above the pyrolysis module such that the mechanically stressed material expelled from the first outlet of the pre-processing module enters the pyrolysis module by gravity.
18. The system of claim 1 , wherein the rotors of the at least one pair of rotors are configured to be counter-rotated.
19. The system of claim 1 , wherein the pyrolysis module is configured to heat the mechanically stressed material to between 450° C. and 550° C., or between 500° C. and 550° C., or between 500° C. and 525° C.
20. A method for processing a material, the method comprising:
receiving, by a pre-processing module, the material;
mechanically stressing and heating, by the pre-processing module, the received material, wherein the received material is heated to less than or equal to 375° C. by the pre-processing module;
outputting, by the pre-processing module, the mechanically stressed and heated material;
receiving, by a pyrolysis module, from the pre-processing module, the mechanically stressed and heated material; and
performing, by the pyrolysis module, a pyrolysis process on the received mechanically stressed and heated material, thereby to produce one or more pyrolysis products, wherein the pyrolysis process comprises heating the material received from the pre-processing module to greater than or equal to 450° C., and wherein:
the pre-processing module comprises:
a pre-processing chamber comprising a first inlet and a first outlet; and
a plurality of rotors located within the pre-processing chamber;
the plurality of rotors comprises at least one pair of rotors arranged at least partially side-by-side, the rotors of the at least one pair of rotors having substantially parallel axes of rotation;
the rotors of the at least one pair of rotors are configured to be simultaneously rotated thereby to subject the material within the pre-processing chamber to mechanical stresses;
the first inlet is disposed directly above the at least one pair of rotors and is configured for introduction of the material into the pre-processing chamber by gravity in a direction substantially perpendicular to the substantially parallel axes of rotation; and
the first outlet is disposed directly below the at least one pair of rotors and is configured for expulsion of the mechanically stressed material from the pre-processing chamber by gravity in the direction substantially perpendicular to the substantially parallel axes of rotation.