Patent · US10253979B2 · B2 · US
Flow regulation for a biochar kiln
- (11) Publication number
- US10253979B2
- (21) Application number
- 15/997,418
- (22) Filing date
- 2018-06-04
- (30) Priority date
- 2012-03-11
- (43) Publication date
- 2019-04-09
- (45) Date of grant
- 2019-04-09
- (52) CPC
- F23L Supplying air or non-combustible liquids or gases to combustion apparatus in general; valves or dampers specially adapted for controlling air supply or draught in combustion apparatus {}; inducing draught in combustion apparatus; tops for chimneys or ventilating shafts; terminals for flues: 17/005, 11/02, 2700/001, 3/00, 5/02
- C10B Destructive distillation of carbonaceous materials for production of gas, coke, tar, or similar materials: 1/02, 49/02, 53/02
- F23B Methods or apparatus for combustion using only solid fuel: 90/06, 90/08
- F23G Cremation furnaces; consuming waste products by combustion: 7/07, 7/10
- F23N Regulating or controlling combustion: 2033/04, 2233/04
- Y02E Reduction of greenhouse gas [ghg] emissions, related to energy generation, transmission or distribution: 50/10, 50/14
- (73) Assignee
- BIOCHAR NOW LLC
- (54) Title
- Flow regulation for a biochar kiln
- (57) Abstract
An example flow regulation system for a biochar kiln includes an air inlet port of the biochar kiln. The example flow regulation system also includes a port cover coupled to the air inlet ports. The example flow regulation system also includes an external flow regulation assembly coupled with the port cover. The example flow regulation system also includes a controller operating the external flow regulation assembly based on monitoring conditions of the biochar kiln to open and close the air inlet port.
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Claims (15)
- A flow regulation system for a biochar kiln, comprising: a combustion chamber of the biochar kiln; a plurality of quadrants of the combustion chamber; a plurality of air inlet ports, at least one of the plurality of air inlet ports provided for each quadrant of the biochar kiln; a plurality of port covers each coupled to the plurality of air inlet ports; a flow regulation assembly coupled with the plurality of port covers; and a controller operating the flow regulation assembly based on monitoring conditions of the biochar kiln to independently open and close the plurality of air inlet ports and provide local fire control in each quadrant; wherein independently opening and closing the plurality of air inlet ports is gradual over time during pyrolysis.
- The flow regulation system of claim 1, wherein the plurality of air inlet ports are opened to provide additional oxygen and closed to reduce oxygen in the combustion chamber of the biochar kiln.
- The flow regulation system of claim 1, wherein opening and closing the plurality of air inlet ports is immediate.
- The flow regulation system of claim 1, wherein the flow regulation assembly comprises a butterfly valve with a butterfly disc, wherein rotation of the disc about an axis through a shaft is enacted by servomotor.
- The flow regulation system of claim 4, wherein the butterfly disc is rotated to a closed position where its surface normal-line is colinear with a longitudinal axis of an air inlet pipe, to completely prevent air flow from outside the biochar kiln through a damper pipe and into the combustion chamber of the biochar kiln.
- The flow regulation system of claim 5, wherein the butterfly disc is rotated 90 degrees from the closed position.
- The flow regulation system of claim 4, further comprising a servomotor capable of rotating the disc to any of a variety of angles intermediate between completely closed and completely open.
- The flow regulation system of claim 7, further comprising a housing to protect working components of the servomotor.
- The flow regulation system of claim 1, further comprising a shield provided between the servomotor and the biochar kiln to protect a servomotor from heat generated by the combustion chamber of the biochar kiln.
- The flow regulation system of claim 1, further comprising a constant speed blower at an outside end of a damper pipe of the biochar kiln for providing forced air regulated at least in part by the flow regulation assembly, a computer controller, or both.
- The flow regulation system of claim 10, wherein the constant speed blower provides variable speed airflow without a damper.
- The flow regulation system of claim 1, wherein local fire control in each quadrant limits air in a particular one of the quadrants to even out burning across all of the quadrants.
- The flow regulation system of claim 1, wherein local fire control in each quadrant increases air in a particular one of the quadrants to even out burning across all of the quadrants.
- The flow regulation system of claim 1, wherein local fire control in each quadrant increases air in a particular one of the quadrants and decreases air in another one of the quadrants, to provide even burning across all of the quadrants.
- The flow regulation system of claim 1, further comprising: a flow actuation assembly; and an auto-shutdown system to actuate the flow actuation assembly based on feedback from at least one sensor and shut down a biochar conversion process even when the biochar kiln in unmanned, thereby stopping the biochar conversion process in sufficient time to reduce burning that would otherwise reduce quantity and/or quality of yield from the biochar conversion process.
Citations (90)
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Record as JSON
{
"publication_number": "US10253979B2",
"country": "US",
"kind": "B2",
"title": "Flow regulation for a biochar kiln",
"abstract": "An example flow regulation system for a biochar kiln includes an air inlet port of the biochar kiln. The example flow regulation system also includes a port cover coupled to the air inlet ports. The example flow regulation system also includes an external flow regulation assembly coupled with the port cover. The example flow regulation system also includes a controller operating the external flow regulation assembly based on monitoring conditions of the biochar kiln to open and close the air inlet port.",
"claims": [
"1. A flow regulation system for a biochar kiln, comprising: a combustion chamber of the biochar kiln; a plurality of quadrants of the combustion chamber; a plurality of air inlet ports, at least one of the plurality of air inlet ports provided for each quadrant of the biochar kiln; a plurality of port covers each coupled to the plurality of air inlet ports; a flow regulation assembly coupled with the plurality of port covers; and a controller operating the flow regulation assembly based on monitoring conditions of the biochar kiln to independently open and close the plurality of air inlet ports and provide local fire control in each quadrant; wherein independently opening and closing the plurality of air inlet ports is gradual over time during pyrolysis.",
"2. The flow regulation system of claim 1, wherein the plurality of air inlet ports are opened to provide additional oxygen and closed to reduce oxygen in the combustion chamber of the biochar kiln.",
"3. The flow regulation system of claim 1, wherein opening and closing the plurality of air inlet ports is immediate.",
"4. The flow regulation system of claim 1, wherein the flow regulation assembly comprises a butterfly valve with a butterfly disc, wherein rotation of the disc about an axis through a shaft is enacted by servomotor.",
"5. The flow regulation system of claim 4, wherein the butterfly disc is rotated to a closed position where its surface normal-line is colinear with a longitudinal axis of an air inlet pipe, to completely prevent air flow from outside the biochar kiln through a damper pipe and into the combustion chamber of the biochar kiln.",
"6. The flow regulation system of claim 5, wherein the butterfly disc is rotated 90 degrees from the closed position.",
"7. The flow regulation system of claim 4, further comprising a servomotor capable of rotating the disc to any of a variety of angles intermediate between completely closed and completely open.",
"8. The flow regulation system of claim 7, further comprising a housing to protect working components of the servomotor.",
"9. The flow regulation system of claim 1, further comprising a shield provided between the servomotor and the biochar kiln to protect a servomotor from heat generated by the combustion chamber of the biochar kiln.",
"10. The flow regulation system of claim 1, further comprising a constant speed blower at an outside end of a damper pipe of the biochar kiln for providing forced air regulated at least in part by the flow regulation assembly, a computer controller, or both.",
"11. The flow regulation system of claim 10, wherein the constant speed blower provides variable speed airflow without a damper.",
"12. The flow regulation system of claim 1, wherein local fire control in each quadrant limits air in a particular one of the quadrants to even out burning across all of the quadrants.",
"13. The flow regulation system of claim 1, wherein local fire control in each quadrant increases air in a particular one of the quadrants to even out burning across all of the quadrants.",
"14. The flow regulation system of claim 1, wherein local fire control in each quadrant increases air in a particular one of the quadrants and decreases air in another one of the quadrants, to provide even burning across all of the quadrants.",
"15. The flow regulation system of claim 1, further comprising: a flow actuation assembly; and an auto-shutdown system to actuate the flow actuation assembly based on feedback from at least one sensor and shut down a biochar conversion process even when the biochar kiln in unmanned, thereby stopping the biochar conversion process in sufficient time to reduce burning that would otherwise reduce quantity and/or quality of yield from the biochar conversion process."
],
"cpc": [
"F23L 17/005",
"C10B 1/02",
"C10B 49/02",
"C10B 53/02",
"F23B 90/06",
"F23B 90/08",
"F23G 7/07",
"F23G 7/10",
"F23L 11/02",
"F23L 2700/001",
"F23L 3/00",
"F23L 5/02",
"F23N 2033/04",
"F23N 2233/04",
"Y02E 50/10",
"Y02E 50/14"
],
"assignees": [
"BIOCHAR NOW LLC"
],
"filing_date": "2018-06-04",
"publication_date": "2019-04-09",
"grant_date": "2019-04-09",
"priority_date": "2012-03-11",
"application_number": "US-201815997418-A",
"family_id": "51610660",
"citations": [
"JP4267968B2",
"KR20020010902A",
"KR20020070872A",
"US2003024165A1",
"US2003034286A1",
"US2003136734A1",
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"US2010120128A1",
"US2011100272A1",
"US2011114144A1",
"US2011172092A1",
"US2011252699A1",
"US2012079762A1",
"US2012116589A1",
"US2012193212A1",
"US2012237994A1",
"US2012304718A1",
"US2012305380A1",
"US2013068690A1",
"US2013341175A1",
"US2013341176A1",
"US2014151296A1",
"US2014323297A1",
"US2015040804A1",
"US2015136581A1",
"US2015144564A1",
"US2015237813A1",
"US2016075567A1",
"US2016229709A1",
"US2017055502A1",
"US2017283703A1",
"US2017283704A1",
"US2017369785A1",
"US2018072953A1",
"US2018072954A1",
"US2018105437A1",
"US2018282628A1",
"US2018282630A1",
"US2018327329A1",
"US2847369A",
"US3595181A",
"US3695192A",
"US3777676A",
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"US4167909A",
"US4261269A",
"US4419942A",
"US4810385A",
"US5014680A",
"US5018458A",
"US5160259A",
"US5190901A",
"US5499622A",
"US5770079A",
"US5799590A",
"US5968320A",
"US6484714B1",
"US6790317B2",
"US7354557B2",
"US7371308B1",
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"US7399458B1",
"US8100990B2",
"US8287728B2",
"US8361186B1",
"US8419812B2",
"US8673150B2",
"US8747797B2",
"US8812162B2",
"US8986507B2",
"US9139790B2",
"US9321966B2",
"US9725371B2",
"US9878301B1",
"US9975792B2",
"WO2006117006A1",
"WO2010122525A1",
"WO2010129996A1",
"WO2011097183A2",
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"WO2013126477A1",
"WO2013152337A1",
"WO2014059141A1",
"WO2014179670A1"
]
}
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