Low-water-intensity biocarbon products, and processes for producing low-water-intensity biocarbon products
The processes disclosed herein are environmentally friendly technologies to produce biocarbon products with low water intensity as well as low carbon intensity. Some variations provide a low-water-intensity process for producing a biocarbon product, comprising: providing a starting feedstock comprising biomass and water; drying the starting feedstock to generate a dried feedstock and a first vapor; pyrolyzing the dried feedstock to generate hot solids and a second vapor; condensing the first vapor to generate a first condensed liquid having a first pH from about 1 to about 7; condensing the second vapor to generate a second condensed liquid having a second pH from about 1 to about 7; forming acid water comprising the first condensed liquid, the second condensed liquid, or a mixture thereof; washing and cooling the hot solids using the acid water, to generate washed, cooled solids; and recovering the washed, cooled solids as a low-water-intensity biocarbon product.
1 . A negative-water-intensity process for producing a biocarbon product, the process comprising:
providing a feedstock, wherein the feedstock comprises biomass and from at least about 0 wt % to at most about 75 wt % water;
drying the feedstock, thereby generating a dried feedstock and a first vapor, wherein the dried feedstock comprises from at least about 0 wt % to at most about 50 wt % water;
pyrolyzing the dried feedstock, thereby generating hot solids and a second vapor;
condensing at least a portion of the first vapor, thereby generating a first condensed liquid, wherein the first condensed liquid has a first pH of at least about 1 to at most about 7;
condensing at least a portion of the second vapor, thereby generating a second condensed liquid, wherein the second condensed liquid has a second pH of at least about 1 to at most about 7;
generating acid water, wherein the acid water comprises at least some of the first condensed liquid, at least some of the second condensed liquid, or a mixture thereof;
washing and cooling the hot solids, wherein the washing and cooling is achieved using the acid water, thereby generating washed and cooled solids; and
recovering the washed and cooled solids as a biocarbon product, wherein the biocarbon product comprises at least about 50 wt % carbon,
wherein the process has a water intensity defined as kilograms of net external water utilized divided by metric tons of the biocarbon product, wherein the water intensity is less than 0 kg H 2 O per metric ton of the biocarbon product; and
wherein the process does not utilize a source of external water as a process input.
2 . The negative-water-intensity process of claim 1 , wherein the biomass 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 or demolition waste, railroad ties, lignin, animal manure, municipal solid waste, municipal sewage, or a combination thereof.
3 . The negative-water-intensity process of claim 1 , wherein the dried feedstock comprises at least about 0 wt % to at most about 25 wt % water.
4 . The negative-water-intensity process of claim 1 , wherein the dried feedstock comprises at most about 10 wt % water.
5 . The negative-water-intensity process of claim 1 , wherein the drying is achieved using a steam-driven dryer.
6 . The negative-water-intensity process of claim 1 , wherein the drying is achieved using an air-driven dryer.
7 . The negative-water-intensity process of claim 1 , wherein the first pH is at least about 2 to at most about 7.
8 . The negative-water-intensity process of claim 1 , wherein the first pH is at least about 3 to at most about 6.5.
9 . The negative-water-intensity process of claim 1 , wherein the second pH is at least about 2 to at most about 7.
10 . The negative-water-intensity process of claim 1 , wherein the second pH is at least about 3 to at most about 6.5.
11 . The negative-water-intensity process of claim 1 , wherein the first pH is about 7, and wherein the second pH is about 7.
12 . The negative-water-intensity process of claim 1 , wherein the acid water comprises the first condensed liquid and the second condensed liquid.
13 . The negative-water-intensity process of claim 1 , wherein the acid water comprises essentially all of the first condensed liquid and essentially all of the second condensed liquid.
14 . The negative-water-intensity process of claim 1 , wherein the generating acid water comprises generating at least about 1 to at most about 500 gallons of acid water per dry metric ton of the feedstock.
15 . The negative-water-intensity process of claim 1 , the process further comprising recovering a portion of the acid water as a water co-product.
16 . The negative-water-intensity process of claim 1 , wherein the washing and cooling is achieved using a water source, wherein the water source consists essentially of the acid water.
17 . The negative-water-intensity process of claim 1 , wherein the hot solids are generated at a substrate temperature of at least about 300° C. to at most about 800° C., and wherein the cooling comprises cooling the hot solids to a cooled-substrate temperature that is less than the substrate temperature.
18 . The negative-water-intensity process of claim 17 , wherein the cooled-substrate temperature is at most about 200° C.
19 . The negative-water-intensity process of claim 17 , wherein the cooled-substrate temperature is at most about 100° C.
20 . The negative-water-intensity process of claim 17 , wherein the cooled-substrate temperature is at most about 50° C.
21 . The negative-water-intensity process of claim 1 , wherein the washing comprises removing ash from the hot solids.
22 . The negative-water-intensity process of claim 21 , wherein the washed and cooled solids comprise, after the removing, at most about 5 wt % total ash.
23 . The negative-water-intensity process of claim 21 , wherein the washed and cooled solids comprise, after the removing, at most about 1 wt % total ash.
24 . The negative-water-intensity process of claim 21 , wherein the washed and cooled solids comprise, after the removing, at most about 0.2 wt % total ash.
25 . The negative-water-intensity process of claim 1 , wherein the washing comprises removing, from the hot solids, an impurity selected from aluminum, aluminum oxides, antimony, arsenic, barium, beryllium, boron, boron oxides, bromine, cadmium, calcium, chlorine, chromium, cobalt, copper, fluorine, gold, iron, iron oxides, lead, lithium, magnesium, manganese, mercury, molybdenum, nickel, phosphorus, potassium, selenium, silicon, silicon oxides, silver, sodium, strontium, sulfur, tellurium, thallium, tin, titanium, titanium oxides, tungsten, vanadium, zinc, zirconium, or a combination thereof.
26 . The negative-water-intensity process of claim 25 , wherein the washed and cooled solids comprise, after the removing, at most about 1000 ppm of the impurity.
27 . The negative-water-intensity process of claim 25 , wherein the washed and cooled solids comprise, after the removing, at most about 100 ppm of the impurity.
28 . The negative-water-intensity process of claim 25 , wherein the washed and cooled solids comprise, after the removing, at most about 50 ppm of the impurity.
29 . The negative-water-intensity process of claim 1 , wherein the washed and cooled solids have a heating value of at least about 22 MJ/kg on a dry basis.
30 . The negative-water-intensity process of claim 1 , wherein the washed and cooled solids have a heating value of at least about 33 MJ/kg on a dry basis.
31 . The negative-water-intensity process of claim 1 , the process further comprising pelletizing the washed and cooled solids, thereby generating biocarbon pellets.
32 . The negative-water-intensity process of claim 31 , wherein the pelletizing does not comprise introducing an external binder to the washed and cooled solids.
33 . The negative-water-intensity process of claim 31 , wherein the pelletizing comprises introducing a binder to the washed and cooled solids.
34 . The negative-water-intensity process of claim 33 , 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, a derivative thereof, or a combination of any of the foregoing.
35 . The negative-water-intensity process of claim 1 , wherein the water intensity is at most about −10 kg H 2 O per metric ton of the biocarbon product.
36 . The negative-water-intensity process of claim 1 , wherein the water intensity is at most about −100 kg H 2 O per metric ton of the biocarbon product.
37 . The negative-water-intensity process of claim 1 , wherein the water intensity is at most about −200 kg H 2 O per metric ton of the biocarbon product.
38 . The negative-water-intensity process of claim 1 , wherein the water intensity is at most about −500 kg H 2 O per metric ton of the biocarbon product.
39 . The negative-water-intensity process of any one of claims 1-34 and 35-38 , wherein the water intensity is at most about −1000 kg H 2 O per metric ton of the biocarbon product.
40 . The negative-water-intensity process of claim 1 , wherein the biocarbon product comprises a CO 2 -equivalent carbon intensity of at most about 0 kg CO 2 e per metric ton of the biocarbon product, wherein the CO 2 -equivalent carbon intensity is the net quantity by weight of carbon dioxide equivalent generated per ton of biocarbon product, and wherein the carbon dioxide equivalent is the amount of CO 2 which would have the equivalent global-warming impact.
41 . The negative-water-intensity process of claim 1 , wherein the biocarbon product comprises a CO 2 -equivalent carbon intensity of at most about −100 kg CO 2 e per metric ton of the biocarbon product, wherein the CO 2 -equivalent carbon intensity is the net quantity by weight of carbon dioxide equivalent generated per ton of biocarbon product, and wherein the carbon dioxide equivalent is the amount of CO 2 which would have the equivalent global-warming impact.
42 . The negative-water-intensity process of claim 1 , wherein the biocarbon product comprises a total carbon, and wherein the total carbon is at least about 90% biogenic carbon as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.
43 . The negative-water-intensity process of claim 1 , wherein the biocarbon product comprises a total carbon, and wherein the total carbon is about 100% biogenic carbon as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.
44 . A low-water-intensity process for producing a biocarbon product, the process comprising:
providing a feedstock, wherein the feedstock comprises biomass and from at least about 0 wt % to at most about 75 wt % water;
optionally, drying the feedstock, thereby generating a dried feedstock and a first vapor, wherein the feedstock comprises from at least about 0 wt % to at most about 50 wt % water;
pyrolyzing the dried feedstock or the feedstock, thereby generating hot solids and a second vapor;
optionally, condensing at least a portion of the first vapor, thereby generating a first condensed liquid, wherein the first condensed liquid is characterized by a first pH of at least about 1 to at most about 7;
condensing at least a portion of the second vapor, thereby generating a second condensed liquid, wherein the second condensed liquid is characterized by a second pH of at least about 1 to at most about 7;
generating acid water, wherein the acid water comprises at least some of the second condensed liquid, at least some of the first condensed liquid, or a mixture comprising at least some of the first condensed liquid and at least some of the second condensed liquid;
washing and cooling the hot solids, wherein the washing and cooling is achieved using the acid water, thereby generating washed and cooled solids; and
recovering the washed and cooled solids as a biocarbon product, wherein the biocarbon product comprises at least about 50 wt % carbon,
wherein the process has a water intensity defined as kilograms of net external water utilized divided by metric tons of the biocarbon product; and
wherein the water intensity is at most about 1000 kg H 2 O per metric ton of the biocarbon product.
45 . The low-water-intensity process of claim 44 , wherein the drying the feedstock is performed, and wherein the dried feedstock comprises at least about 0 wt % to at most about 25 wt % water.
46 . The low-water-intensity process of claim 45 , wherein the dried feedstock comprises at least about 0 wt % to at most about 10 wt % water.
47 . The low-water-intensity process of claim 44 , wherein the first pH is at least about 2 to at most about 7.
48 . The low-water-intensity process of claim 44 , wherein the first pH is at least about 3 to at most about 6.5.
49 . The low-water-intensity process of claim 44 , wherein the second pH is at least about 2 to at most about 7.
50 . The low-water-intensity process of claim 44 , wherein the second pH is at least about 3 to at most about 6.5.
51 . The low-water-intensity process of claim 44 , wherein the first pH is about 7, and wherein the second pH is about 7.
52 . The low-water-intensity process of claim 44 , wherein the acid water comprises the first condensed liquid and the second condensed liquid.
53 . The low-water-intensity process of claim 44 , wherein the acid water comprises essentially all of the first condensed liquid that is generated and essentially all of the second condensed liquid that is generated.
54 . The low-water-intensity process of claim 44 , wherein the generating acid water comprises generating at least about 1 to at most about 500 gallons of acid water per dry metric ton of the feedstock.
55 . The low-water-intensity process of claim 44 , the process further comprising recovering a portion of the acid water as a water co-product.
56 . The low-water-intensity process of claim 44 , wherein the washing and cooling is achieved using a water source, wherein the water source consists essentially of the acid water.
57 . The low-water-intensity process of claim 44 , wherein the hot solids are generated at a substrate temperature of at least about 300° C. to at most about 800° C., and wherein the cooling comprises cooling the hot solids to a cooled-substrate temperature that is less than the substrate temperature.
58 . The low-water-intensity process of claim 57 , wherein the cooled-substrate temperature is at most about 100° C.
59 . The low-water-intensity process of claim 57 , wherein the cooled-substrate temperature is at most about 50° C.
60 . The low-water-intensity process of claim 44 , wherein the washing comprises removing ash from the hot solids.
61 . The low-water-intensity process of claim 60 , wherein the washed and cooled solids comprise, after the removing, at most about 1 wt % total ash.
62 . The low-water-intensity process of claim 44 , wherein the washing comprises removing, from the hot solids, an impurity selected from aluminum, aluminum oxides, antimony, arsenic, barium, beryllium, boron, boron oxides, bromine, cadmium, calcium, chlorine, chromium, cobalt, copper, fluorine, gold, iron, iron oxides, lead, lithium, magnesium, manganese, mercury, molybdenum, nickel, phosphorus, potassium, selenium, silicon, silicon oxides, silver, sodium, strontium, sulfur, tellurium, thallium, tin, titanium, titanium oxides, tungsten, vanadium, zinc, zirconium, or a combination thereof.
63 . The low-water-intensity process of claim 62 , wherein the washed and cooled solids comprise, after the removing, at most about 1000 ppm of the impurity.
64 . The low-water-intensity process of claim 44 , the process further comprising pelletizing the washed and cooled solids, thereby generating biocarbon pellets.
65 . The low-water-intensity process of claim 64 , wherein the pelletizing does not comprise introducing an external binder to the washed and cooled solids.
66 . The low-water-intensity process of claim 64 , wherein the pelletizing comprises introducing a binder to the washed and cooled solids.
67 . The low-water-intensity process of claim 66 , 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.
68 . The low-water-intensity process of claim 44 , wherein the process does not utilize a source of external water as a process input.
69 . The low-water-intensity process of claim 44 , wherein the water intensity is at most about 100 kg H 2 O per metric ton of the biocarbon product.
70 . The low-water-intensity process of claim 44 , wherein the water intensity is at most about 0 kg H 2 O per metric ton of the biocarbon product.
71 . The low-water-intensity process of claim 44 , wherein the water intensity is at most about-100 kg H 2 O per metric ton of the biocarbon product.
72 . The low-water-intensity process of claim 44 , wherein the biocarbon product comprises a CO 2 -equivalent carbon intensity of at most about 0 kg CO 2 e per metric ton of the biocarbon product, wherein the CO 2 -equivalent carbon intensity is the net quantity by weight of carbon dioxide equivalent generated per ton of biocarbon product, and wherein the carbon dioxide equivalent is the amount of CO 2 which would have the equivalent global-warming impact.
73 . The low-water-intensity process of claim 44 , wherein the biocarbon product comprises a total carbon, and wherein the total carbon is at least about 90% biogenic carbon as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.
74 . The low-water-intensity process of claim 44 , wherein the biocarbon product comprises a total carbon, and wherein the total carbon is about 100% biogenic carbon as determined from a measurement of the 14 C/ 12 C isotopic ratio of the total carbon.