Electroconductive polyamide resin composition
US-9206048-B2 · Dec 8, 2015 · US
US11299396B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11299396-B2 |
| Application number | US-201816628490-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 26, 2018 |
| Priority date | Jul 3, 2017 |
| Publication date | Apr 12, 2022 |
| Grant date | Apr 12, 2022 |
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The present invention relates to a system for the production of carbon nanotubes from carbonaceous matter, preferably, plastic waste and solar energy; Method of production.
Opening claim text (preview).
The invention claimed is: 1. A system for obtaining carbon nanotubes (CNT) from carbonaceous matter using solar radiation as energy source comprising: a) a solar tracking sub-system along of a length of the system or X axis and at altitude or Y axis to provide solar radiation to two zones of a two-zone solar reactor, comprising: a.1) an upper support providing stability, housing Fresnel lenses that allow the tracking and concentration of incident solar radiation in at least one focal point; a.2) at least four upper actuators for positioning at least two Fresnel lenses; a.3) a central actuator to fit a height of said upper support in relation to said two-zone solar reactor in order to control a circle radius of sunlight generated by the concentration of solar radiation, and a.4) a photo-detector that cooperates with a balance set for moving said upper support according to the sun's path and keeping the circle radius of sunlight at a same point, wherein said balance set comprises: i) a hydraulic arm actuator, ii) a bearing-shaft coupling that receives the hydraulic arm actuator, and iii) a lower support of the hydraulic arm actuator, which serves as a support point to actuate said actuator and which is adhered to said lower support; wherein said upper support comprises a central structure that supports said central actuator and keeps the center of mass of said upper support; a control board adhered to said lower support, containing a controller for said central actuator and said photo-detector, in order to automatically or manually control the movement of said upper support along the length of system (X axis) and/or altitude (Y axis) and said at least two Fresnel lenses each independently, based on the information received from the photo-detector, and a base where the solar reactor is coupled in order to be able to rotate together with the upper support structure; b) a two-zone solar reactor sub-system comprising a two-zone reactor, a carbonaceous matter pyrolysis zone and a carbon nanotube synthesis zone, which may be separated by use of at least one catalyst; and optionally c) an energy conversion sub-system to convert solar to electrical energy that continuously feeds the controller of said control board with electrical energy, and which comprises a system for solar to electrical energy conversion. 2. The system of claim 1 , WHEREIN said lower support is fixed to the ground or has wheels that allow a movement in depth/width (Z axis). 3. The system of claim 1 , WHEREIN said upper support has a range of motion in X and Y axes with respect to the lower support from an angle α=40°, measured counterclockwise from the X axis to an angle β=40°, measured clockwise from the X axis. 4. The system of claim 1 , WHEREIN said radius of the circle of sunlight generated by the concentration of the solar radiation of each of the Fresnel lenses on each solar reactor zone reaches a maximum radius of 20.5 cm. 5. The system of claim 1 , WHEREIN said system for solar to electrical energy conversion is selected from rechargeable batteries, an electrical connection, a regulating device and photovoltaic cells for transforming light energy into electrical energy. 6. The system of claim 1 , WHEREIN a ratio of a total height taken from the base in said lower support to the highest point of said upper support, to a total length referred to a distance between the ends of the axes coupled to said bearing-shaft coupling, to a total length of said upper support, to a length of said reactor, to the height of said reactor, to the maximum coupling point of said hydraulic arm with said bearing-shaft coupling is as 1:1:1:1:1. 7. The system of claim 1 , WHEREIN a ratio of the length of said carbonaceous matter pyrolysis zone to said carbon nanotube synthesis zone is 2:1, 1:1 or 1:2. 8. The system of claim 1 , WHEREIN said carbonaceous matter pyrolysis zone and said carbon nanotube synthesis zone are made of a heat conducting material resistant to temperatures greater than 900° C. 9. The system of claim 1 , WHEREIN said reactor has an insulator. 10. The system of claim 1 , WHEREIN said reactor has a first temperature sensor and a second temperature sensor, said first temperature sensor is located on the outside of the reactor, adjacent to the edge of the sunlight focus which is concentrated by the Fresnel lenses in order to monitor the temperature outside of it, and said second temperature sensor is located in the inner part of each of the carbonaceous matter pyrolysis zone and the carbon nanotube synthesis zone, in order to monitor the temperature inside the carbonaceous matter pyrolysis zone and carbon nanotube synthesis zone. 11. The system of claim 1 , WHEREIN said solar reactor in each of said carbonaceous material pyrolysis zone and said nanotube synthesis zone has pressure sensors. 12. The system of claim 1 , further comprising a vacuum system that allows the evacuation of the air which is located inside the two-zone solar reactor. 13. The system of claim 1 , further comprising an inlet for entering an inert gas into the reactor to help the transportation of the carbonaceous gases generated in the carbonaceous material pyrolysis zone to the synthesis zone and generate a protective environment favorable to the reactions in the carbon nanotube synthesis catalyst. 14. The system of claim 1 , WHEREIN the carbonaceous matter pyrolysis zone and the carbon nanotube synthesis zone comprises a sealant resistant to high temperatures and preventing gas permeation produced in pyrolysis outwards. 15. The system of claim 1 , WHEREIN the carbonaceous matter is plastic waste including polypropylene, high density polypropylene or mixture of both. 16. The system of claim 1 , WHEREIN said carbonaceous matter pyrolysis zone and said carbon nanotubes synthesis zone are connected. 17. The system of claim 16 , WHEREIN said carbonaceous matter pyrolysis zone and said carbon nanotube synthesis zone are connected by a flow regulator. 18. The system of claim 17 , WHEREIN said flow regulator is a valve or a flow valve. 19. The system of claim 1 , WHEREIN said reactor has a first gate and a second gate for feeding the reactor with carbonaceous raw material including polypropylene, high density polyethylene or mixtures of both, at least one plastic pyrolysis catalyst and at least one carbon nanotube synthesis catalyst. 20. The system of claim 19 , WHEREIN said at least one carbon nanotube synthesis catalyst is a catalyst based on nickel, cobalt, iron, aluminum and zeolite, or combinations thereof. 21. The system of claim 19 , WHEREIN said first gate and second gate are located at each end of each carbonaceous matter pyrolysis zone and carbon nanotube synthesis zone of the reactor. 22. The system of claim 21 , WHEREIN said first gate and second gate comprise sliding rails for sliding and positioning the mixture of carbonaceous material and optionally the mixture of carbonaceous material and said at least one plastic pyrolysis catalyst, in the carbonaceous material pyrolysis zone. 23. The system of claim 22 , WHEREIN said at least one plastic pyrolysis catalyst is a catalyst based on aluminum oxides, silicon oxides, mixtures in aluminosilicates, optionally with the presence of alkali and alkaline earth metals. 24. The system of claim 22 , WHEREIN said rails enter directly into each zone of the reactor or through an arm support that allows an operator to move away from the incident radiation on the rea
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