Nanocatalysts for hydrocracking and methods of their use
Novel catalysts comprising nickel oxide nanoparticles supported on alumina nanoparticles, methods of their manufacture, heavy oil compositions contacted by these nanocatalysts and methods of their use are disclosed. The novel nanocatalysts are useful, inter alia, in the upgrading of heavy oil fractions or as aids in oil recovery from well reservoirs or downstream processing.
1. A method for providing an upgraded heavy oil fraction in a well comprising:
contacting a heavy oil in a well producing the heavy oil with a nanocatalyst for a time and under intrinsic well temperature conditions sufficient to increase the H/C ratio;
said nanocatalyst comprising:
nickel oxide nanoparticles supported on alumina nanoparticles;
wherein the alumina nanoparticle to nickel oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500;
wherein the particle size of the alumina nanoparticle is in the range of from about 30 to about 100 nanometers;
wherein the catalyst does not further comprise silver nanoparticles supported on the alumina nanoparticles; and
wherein the alumina nanoparticles are present in an amount of at least 99% by weight of catalyst.
2. A method according to claim 1 , said catalyst further comprising nanoparticles of at least one Group VIIIB metal oxide supported on the alumina nanoparticles;
wherein:
the Group VIIIB metal is selected from the group consisting of Pd and Pt, or combination thereof; and
the alumina nanoparticle to Group VIIIB metal oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500.
3. A method according to claim 1 , wherein the alumina nanoparticle to nickel oxide nanoparticle weight to weight ratio is in the range of from about 99 to about 400.
4. A method according to claim 1 , wherein the nickel oxide (NiO) nanoparticles are present in an amount of about 0.2% to about 1% by weight of catalyst.
5. A method according to claim 4 , wherein the SBET surface area is from about 17 to about 70 m 2 /g.
6. A method according to claim 1 further comprising contacting the heavy oil with a hydrogen transfer agent.
7. A method according to claim 6 , wherein the hydrogen transfer agent comprises 1,2,3,4-tetrahydronaphthalene.
8. A method according to claim 1 , wherein the contacting does not exceed the intrinsic fracture pressure of the oil well.
9. A method according to claim 1 , wherein, subsequent to said contacting, the well is maintained in a static condition for a period of time before heavy oil removal is initiated.
10. A method according to claim 1 , wherein the heavy oil in the well is retreated by contacting with a nanocatalyst for a time and under intrinsic well temperature conditions sufficient to increase the H/C ratio;
said nanocatalyst comprising:
nickel oxide nanoparticles supported on alumina nanoparticles;
wherein the alumina nanoparticle to nickel oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500;
wherein the particle size of the alumina nanoparticle is in the range of from about 30 to about 100 nanometers;
wherein the catalyst does not further comprise silver nanoparticles supported on the alumina nanoparticles; and
wherein the alumina nanoparticles are present in an amount of at least 99% by weight of catalyst or wherein the SBET surface area is from about 17 to about 70 m 2 /g.
11. A method for providing an upgraded heavy oil fraction in a well comprising: contacting a heavy oil in a well producing the heavy oil with a nanocatalyst for a time and under intrinsic well temperature conditions sufficient to increase the H/C ratio;
said nanocatalyst comprising:
nickel oxide nanoparticles supported on alumina nanoparticles;
wherein the alumina nanoparticle to nickel oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500;
wherein the particle size of the alumina nanoparticle is in the range of from about 30 to about 100 nanometers;
wherein the catalyst does not further comprise silver nanoparticles supported on the alumina nanoparticles; and
wherein the SBET surface area is from about 17 to about 70 m 2 /g.
12. A method according to claim 11 , said catalyst further comprising nanoparticles of at least one Group VIIIB metal oxide supported on the alumina nanoparticles;
wherein:
the Group VIIIB metal is selected from the group consisting of Pd and Pt, or combination thereof; and
the alumina nanoparticle to Group VIIIB metal oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500.
13. A method according to claim 11 , wherein the ratio is in a range of from about 99 to about 400.
14. A method according to claim 13 , wherein the alumina nanoparticles are present in an amount of at least 99% by weight of catalyst.
15. A method according to claim 11 , wherein the nickel oxide (NiO) nanoparticles are present in an amount of about 0.2% to about 1% by weight of catalyst.
16. A method according to claim 11 further comprising contacting the heavy oil with a hydrogen transfer agent.
17. A method according to claim 16 , wherein the hydrogen transfer agent comprises 1,2,3,4-tetrahydronaphthalene.
18. A method according to claim 11 , wherein the contacting does not exceed the intrinsic fracture pressure of the oil well.
19. A method according to claim 11 , wherein, subsequent to said contacting, the well is maintained in a static condition for a period of time before heavy oil removal is initiated.
20. A method according to claim 11 , wherein the heavy oil in the well is retreated by contacting with a nanocatalyst for a time and under intrinsic well temperature conditions sufficient to increase the H/C ratio;
said nanocatalyst comprising:
nickel oxide nanoparticles supported on alumina nanoparticles; wherein the alumina nanoparticle to nickel oxide nanoparticle weight to weight ratio in the catalyst is in a range of from about 99 to about 500;
wherein the particle size of the alumina nanoparticle is in the range of from about 30 to about 100 nanometers;
wherein the catalyst does not further comprise silver nanoparticles supported on the alumina nanoparticles; and
wherein the alumina nanoparticles are present in an amount of at least 99% by weight of catalyst or wherein the SBET surface area is from about 17 to about 70 m 2 /g.