IP Library Granted Patent US 12,570,904
Granted Patent B2
US 12,570,904 · App. 17/879,010 · Granted Mar 10, 2026

Processes and systems for recapturing carbon from biomass pyrolysis liquids

Inventors: James A Mennell (Brighton, UT); Daren Daugaard (Newburg, MO); Dustin Slack (Gwinn, MI)
Assignee: Carbon Technology Holdings, LLC
C10B53/02C10B53/06C10B57/005C10B57/02C10B57/06C10B57/10C10L5/06C10L5/08C10L5/10C10L5/14C10L5/28C10L5/363C10L5/44C10L5/442C10L5/447C10L2200/0469C10L2290/02C10L2290/06C10L2290/08C10L2290/10C10L2290/24C10L2290/30
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Quick Facts
Patent No.
US 12,570,904
App. No.
17/879,010
Granted
Mar 10, 2026
Kind
B2
Abstract

This disclosure provides a method of making a high-fixed-carbon material comprising pyrolyzing biomass to generate intermediate solids and a pyrolysis vapor; condensing the pyrolysis vapor to generate pyrolysis liquid; blending the pyrolysis liquid with the intermediate solids, to generate a mixture; and further pyrolyzing the mixture to generate a high-fixed-carbon material. A process can comprise: pyrolyzing a biomass-comprising feedstock in a first pyrolysis reactor to generate a first biogenic reagent and a first pyrolysis vapor; introducing the first pyrolysis vapor to a condensing system to generate a condenser liquid; contacting the first biogenic reagent with the condenser liquid, thereby generating an intermediate material; further pyrolyzing the intermediate material in a second pyrolysis reactor to generate a second biogenic reagent and a second pyrolysis vapor; and recovering the second biogenic reagent as a high-yield biocarbon composition. The process can further comprise pelletizing the intermediate material. Many process and system configurations are disclosed.

Claims (72)

1 . A process for producing a biocarbon composition, the process comprising:

pyrolyzing a feedstock in a first pyrolysis reactor, wherein the feedstock comprises biomass, thereby generating a first pyrolysis solid and a first pyrolysis vapor;

condensing, utilizing a condenser, the first pyrolysis vapor, thereby generating a condenser liquid and a condenser vapor, wherein the condenser comprises multiple condenser stages, and wherein the condenser liquid comprises less than 1 wt % ash;

thermally treating the condenser liquid in a second reactor, thereby generating a solid material;

blending the first pyrolysis solid with the solid material, thereby generating a biogenic reagent; and

recovering the biogenic reagent as a biocarbon composition, wherein the biocarbon composition is characterized by at most 20 wt % water uptake at 25° C. after 24 hours of soaking in water.

2 . The process of claim 1 , wherein the feedstock is selected from softwood chips, hardwood chips, timber harvesting residues, tree branches, tree stumps, leaves, bark, sawdust, corn, corn stover, wheat, wheat straw, rice, rice straw, sugarcane, sugarcane bagasse, sugarcane straw, energy cane, sugar beets, sugar beet pulp, sunflowers, sorghum, canola, algae, miscanthus, alfalfa, switchgrass, fruits, fruit shells, fruit stalks, fruit peels, fruit pits, vegetables, vegetable shells, vegetable stalks, vegetable peels, vegetable pits, grape pumice, almond shells, pecan shells, coconut shells, coffee grounds, food waste, commercial waste, grass pellets, hay pellets, wood pellets, cardboard, paper, paper pulp, paper packaging, paper trimmings, food packaging, construction and/or demolition waste, railroad ties, lignin, animal manure, municipal solid waste, municipal sewage, or a combination thereof.

3 . The process of claim 1 , further comprising drying or thermally treating the biogenic reagent.

4 . The process of claim 1 , further comprising pelletizing the biogenic reagent.

5 . The process of claim 1 , further comprising drying or thermally treating the biogenic reagent, and further comprising pelletizing the biogenic reagent, wherein the pelletizing and the drying or thermally treating are integrated.

6 . The process of claim 4 , wherein the blending and the pelletizing are integrated.

7 . The process of claim 4 , further comprising introducing a binder to the biogenic reagent.

8 . The process of claim 7 , wherein the binder is selected from starch, thermoplastic starch, crosslinked starch, starch polymers, cellulose, cellulose ethers, hemicellulose, methylcellulose, chitosan, lignin, lactose, sucrose, dextrose, maltodextrin, banana flour, wheat flour, wheat starch, soy flour, corn flour, wood flour, coal tars, coal fines, met coke, asphalt, coal-tar pitch, petroleum pitch, bitumen, pyrolysis tars, gilsonite, bentonite clay, borax, limestone, lime, waxes, vegetable waxes, baking soda, baking powder, sodium hydroxide, potassium hydroxide, iron ore concentrate, silica fume, gypsum, Portland cement, guar gum, xanthan gum, polyvidones, polyacrylamides, polylactides, phenol-formaldehyde resins, vegetable resins, recycled shingles, recycled tires, derivatives thereof, or a combination of the foregoing.

9 . The process of claim 4 , wherein no external binder is introduced to the biogenic reagent during the pelletizing.

10 . The process of claim 1 , wherein the condenser liquid is a condensed product of a first stage of the multiple condenser stages.

11 . The process of claim 1 , wherein the condenser liquid is a condensed product of a plurality of stages of the multiple condenser stages.

12 . The process of claim 11 , wherein the plurality of stages does not include a final stage of the multiple condenser stages.

13 . The process of claim 1 , wherein the second reactor is a second pyrolysis reactor, and wherein the second pyrolysis reactor generates the solid material as well as a pyrolysis off-gas.

14 . The process of claim 1 , wherein the second reactor is a non-pyrolytic thermal reactor.

15 . The process of claim 1 , wherein the second reactor is a non-pyrolytic catalytic reactor.

16 . The process of claim 13 , further comprising conveying, to the condenser, the pyrolysis off-gas.

17 . The process of claim 13 , wherein the first pyrolysis reactor is distinct from the second pyrolysis reactor.

18 . The process of claim 13 , wherein the first pyrolysis reactor and the second pyrolysis reactor are the same unit, and wherein the pyrolyzing the feedstock and the thermally treating the condenser liquid occur at different times.

19 . The process of claim 1 , wherein at least 25 wt % of total carbon comprised in the condenser liquid is converted to fixed carbon in the solid material.

20 . The process of claim 1 , wherein at least 50 wt % of total carbon comprised in the condenser liquid is converted to fixed carbon in the solid material.

21 . The process of claim 1 , wherein at least 75 wt % of total carbon comprised in the condenser liquid is converted to fixed carbon in the solid material.

22 . The process of claim 1 , wherein the solid material forms at least 5 wt % of the biogenic reagent on an absolute basis.

23 . The process of claim 1 , wherein the solid material forms at least 10 wt % of the biogenic reagent on an absolute basis.

24 . The process of claim 1 , wherein the solid material forms at least 20 wt % of the biogenic reagent on an absolute basis.

25 . The process of claim 1 , wherein at least about 10 wt % to at most about 80 wt % of fixed carbon in the biogenic reagent is derived from the condenser liquid.

26 . The process of claim 1 , wherein at least about 20 wt % to at most about 60 wt % of fixed carbon in the biogenic reagent is derived from the condenser liquid.

27 . The process of claim 1 , wherein all of the condenser liquid is thermally treated in the second reactor.

28 . The process of claim 1 , wherein less than all of the condenser liquid is thermally treated in the second reactor.

29 . The process of claim 1 , wherein the condenser liquid is thermally treated in the second reactor without any intermediate chemical processing between the condenser and the second reactor.

30 . The process of claim 1 , wherein the condenser liquid is chemically processed prior to thermally treating in the second reactor.

31 . The process of claim 30 , wherein the condenser liquid is subjected to a purification step prior to thermally treating in the second reactor.

32 . The process of claim 30 , wherein the condenser liquid is subjected to a reaction step prior to thermally treating in the second reactor.

33 . The process of claim 1 , wherein the pyrolyzing the feedstock is conducted at a first pyrolysis temperature of at least about 250° C. to at most about 1250° C.

34 . The process of claim 33 , wherein the first pyrolysis temperature is at least about 300° C. to at most about 700° C.

35 . The process of claim 1 , wherein the second reactor is a second pyrolysis reactor operated at a second pyrolysis temperature, and wherein the second pyrolysis temperature is at least about 250° C. to at most about 1250° C.

36 . The process of claim 35 , wherein the second pyrolysis temperature is at least about 300° C. to at most about 700° C.

37 . The process of claim 1 , wherein the second reactor is operated at a temperature selected from about 80° C. to about 250° C.

38 . The process of claim 1 , further comprising oxidizing the condenser vapor, thereby generating heat.

39 . The process of claim 1 , further comprising oxidizing a reactor off-gas, thereby generating heat.

40 . The process of claim 1 , further comprising milling the biogenic reagent using a mechanical-treatment apparatus, wherein the mechanical-treatment apparatus is selected from a hammer mill, an extruder, an attrition mill, a disc mill, a pin mill, a ball mill, a cone crusher, a jaw crusher, or a combination thereof.

41 . The process of claim 4 , wherein the pelletizing the biogenic reagent utilizes a pelletizing apparatus selected from an extruder, a ring die pellet mill, a flat die pellet mill, a roll compactor, a roll briquetter, a wet agglomeration mill, a dry agglomeration mill, or a combination thereof.

42 . The process of claim 1 , wherein the biocarbon composition comprises at least 50 wt % fixed carbon.

43 . The process of claim 1 , wherein the biocarbon composition comprises at least 60 wt % fixed carbon.

44 . The process of claim 1 , wherein the biocarbon composition comprises at least 70 wt % fixed carbon.

45 . The process of claim 1 , wherein the biocarbon composition comprises at least 80 wt % fixed carbon.

46 . The process of claim 1 , wherein the biocarbon composition comprises at least 90 wt % fixed carbon.

47 . The process of claim 1 , wherein the biocarbon composition comprises less than 10 wt % ash.

48 . The process of claim 1 , wherein the biocarbon composition comprises less than 5 wt % ash.

49 . The process of claim 1 , wherein the biocarbon composition comprises less than 1 wt % ash.

50 . The process of claim 1 , wherein the condenser liquid comprises less than 0.1 wt % ash.

51 . The process of claim 1 , wherein the condenser liquid comprises essentially no ash.

52 . The process of claim 1 , wherein total carbon within the biocarbon composition is at least 50% renewable as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.

53 . The process of claim 1 , wherein total carbon within the biocarbon composition is at least 90% renewable as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.

54 . The process of claim 1 , wherein total carbon within the biocarbon composition is fully renewable as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.

55 . The process of claim 1 , wherein the biocarbon composition is characterized by a bulk density of at least about 5 lb/ft 3 on a dry basis.

56 . The process of claim 1 , wherein the biocarbon composition is characterized by a bulk density of at least about 10 lb/ft 3 on a dry basis.

57 . The process of claim 1 , wherein the biocarbon composition is characterized by a bulk density of at least about 20 lb/ft 3 on a dry basis.

58 . The process of claim 1 , wherein the biocarbon composition is characterized as non-self-heating when subjected to a self-heating test according to Manual of Tests and Criteria, Seventh revised edition 2019, United Nations, Page 375, 33.4.6 Test N.4: “Test method for self-heating substances”.

59 . The process of claim 1 , wherein the biocarbon composition is in the form of a pellet.

60 . The process of claim 59 , wherein the pellet is characterized by a bulk density of at least about 10 lb/ft 3 on a dry basis.

61 . The process of claim 59 , wherein the pellet is characterized by a bulk density of at least about 25 lb/ft 3 on a dry basis.

62 . The process of claim 59 , wherein the pellet is characterized by a bulk density of at least about 35 lb/ft 3 on a dry basis.

63 . The process of claim 59 , wherein the pellet is characterized by a Hardgrove Grindability Index of at least 30.

64 . The process of claim 59 , wherein the pellet is characterized by a Hardgrove Grindability Index of at least 50.

65 . The process of claim 59 , wherein the pellet is characterized by a Hardgrove Grindability Index of at least 70.

66 . The process of claim 59 , wherein the pellet is characterized by a pellet compressive strength at 25° C. of at least about 100 lb f /in 2 .

67 . The process of claim 59 , wherein the pellet is characterized by a pellet compressive strength at 25° C. of at least about 150 lb f /in 2 .

Assignments (4)
SECURITY INTEREST Recorded Feb 5, 2025
From: CARBON TECHNOLOGY HOLDINGS, LLC
To: ALTER DOMUS (US) LLC
Reel/Frame 070114/0775 →
RELEASE OF SECURITY INTEREST Recorded Feb 4, 2025
From: FORTRESS CREDIT CORP.
To: CARBON TECHNOLOGY HOLDINGS, LLC
Reel/Frame 070608/0239 →
SECURITY INTEREST Recorded Feb 12, 2024
From: CARBON TECHNOLOGY HOLDINGS, LLC
To: FORTRESS CREDIT CORP.
Reel/Frame 066552/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2022
From: MENNELL, JAMES A.; DAUGAARD, DAREN; SLACK, DUSTIN
To: CARBON TECHNOLOGY HOLDINGS, LLC
Reel/Frame 061212/0570 →
Continuity (2)
Provisional Application 63228536 · Aug 2, 2021
Related Publication 20230045385A1 · Feb 9, 2023
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