Biomass smokeless carbon dioxide gas fertilizer warming furnace for solar greenhouse
By designing a biomass smokeless carbon dioxide fertilizer heating furnace in a solar greenhouse, the heat flow of carbon dioxide fertilizer in the combustion chamber is first discharged to the heat exhaust chamber, and then evenly diffused through the air blowing pipe. This solves the environmental pollution and high cost problems of traditional greenhouse heating equipment, and achieves efficient and economical greenhouse heating and fertilizer supply.
Patent Information
- Application Number
- CN202520522712.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-24
AI Technical Summary
Traditional greenhouse heating equipment suffers from environmental pollution, high and unsustainable energy costs, and the separate setup of heating and gas fertilizer equipment increases investment costs and management difficulties.
A biomass smokeless carbon dioxide fertilizer heating furnace for solar greenhouses is designed. By setting a heat exhaust chamber on one side of the combustion chamber, the heat flow of carbon dioxide fertilizer in the combustion chamber is first discharged into the heat exhaust chamber, and then the heat flow is evenly diffused to the surrounding environment through the air blowing pipe. It integrates smokeless heating and carbon dioxide fertilizer supply into one unit, reducing energy loss and ash emissions.
It has achieved efficient and environmentally friendly greenhouse heating and fertilizer supply, reduced equipment investment costs and management difficulties, and provided a more economical and efficient crop growth environment.
Smart Images

Figure CN223943364U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to agricultural equipment technical field especially relates to a sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace. BACKGROUND
[0002] In agricultural production, the greenhouse is usually used to create suitable environmental conditions for crop growth. Among them, temperature is one of the key factors affecting the growth and development of crops, and suitable temperature in the greenhouse plays a decisive role in improving crop yield and quality. At the same time, as an important raw material for plant photosynthesis, reasonable supplement of carbon dioxide gas fertilizer can significantly enhance the photosynthetic efficiency of crops and promote crop growth.
[0003] Traditional greenhouse heating equipment, such as coal-fired boiler, oil heater, etc., not only has environmental pollution problems, such as a large amount of smoke, sulfur dioxide and other pollutants generated by burning coal, greenhouse gas emissions by burning oil, but also faces the dilemma of high energy cost and unsustainable energy. In addition, the equipment for supplementing carbon dioxide gas fertilizer for the greenhouse alone is often complex in structure and high in cost, which increases the difficulty of equipment investment and management. UTILITY MODEL CONTENT
[0004] The utility model provides a sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace to solve the problems of environmental pollution, high energy cost and non-sustainable energy of the heating equipment of the greenhouse in the prior art, and the separate setting of the heating equipment and the gas fertilizer equipment increases the equipment investment cost and management difficulty.
[0005] The utility model provides a sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace, comprising:
[0006] The combustion chamber and the heat exhaust cavity are arranged on one side of the combustion chamber and are in communication with the combustion chamber, and the top end of the heat exhaust cavity is provided with an opening;
[0007] The blowing pipeline is provided with an air inlet, a first blowing port and a second blowing port, the air inlet is used for connecting a blowing device, the first blowing port is located on one side above the opening and faces the opening, and the second blowing port is connected to the side wall of the heat exhaust cavity and is in communication with the heat exhaust cavity.
[0008] According to the sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model, the blowing pipeline further comprises a third blowing port, and the third blowing port is connected to the combustion chamber and is in communication with the combustion chamber.
[0009] According to the sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model, the number of the second blowing ports is multiple, and the multiple second blowing ports are sequentially and spacedly arranged along the height direction of the heat exhaust cavity.
[0010] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0011] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0012] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0013] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0014] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0015] According to the biomass smokeless carbon dioxide gas fertilizer heating furnace for sunlight greenhouse provided by the utility model, the cavity wall of the heat exhaust cavity is provided with a plurality of air blowing holes, the plurality of air blowing holes are evenly and spacedly arranged along the circumference of the heat exhaust cavity, and the second air blowing hole is communicated with the plurality of air blowing holes.
[0016] And / or, the cavity wall bottom of the heat exhaust cavity is further provided with a third air vent, a third door body and a third clamping piece; the third door body is correspondingly arranged with the third air vent, the third clamping piece is located on one side of the third air vent, a third extension rod is rotatably connected on the third door body, and the third extension rod can be rotated to be clamped with the third clamping piece.
[0017] The utility model provides a kind of solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace, the combustion chamber includes bin and bin cover, the top of bin is equipped with inlet, the bin cover is equipped in the inlet, the top of bin cover is equipped with bin cover handle, the opposite sides of bin are equipped with first side handle respectively;And / or, the opposite sides of the heat exhaust cavity are equipped with second side handle respectively.
[0018] The solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model saves heat, reduces energy loss, and reduces the ash in the combustion chamber from being discharged into the environment with airflow by setting a heat exhaust cavity on one side of the combustion chamber, connecting the heat exhaust cavity with the combustion chamber, discharging the heat flow containing carbon dioxide gas fertilizer generated by biomass combustion in the combustion chamber to the heat exhaust cavity first, and then discharging the heat flow through the top of the heat exhaust cavity. The heat exhaust cavity is blown through the second blowing port of the blowing pipeline, which can prevent the temperature in the heat exhaust cavity from being too high and drive the heat flow in the heat exhaust cavity to be discharged better through the opening. The heat flow discharged above the opening is blown through the first blowing port of the blowing pipeline, so that the heat flow is more evenly diffused to the surrounding environment, and the high-temperature heat flow of the heat exhaust cavity can be prevented from damaging the greenhouse shed film directly. The solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace integrates smokeless heating, burn resistance, energy saving and carbon dioxide gas fertilizer production, reduces equipment investment cost and management difficulty, and provides a more efficient, environmentally friendly and economical solution for the growth of greenhouse crops. BRIEF DESCRIPTION OF DRAWINGS
[0019] In order to more clearly illustrate the technical solutions in the utility model or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings in the following description are some embodiments of the utility model, and other drawings can be obtained by those skilled in the art without creative labor.
[0020] Figure 1 It is the rear view of the solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model.
[0021] Figure 2 It is the left view of the solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model.
[0022] Figure 3 It is the front view of the solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model.
[0023] Figure 4 It is the rear sectional view of the solar greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the utility model.
[0024] Figure 5It is the front sectional view of the biomass smokeless carbon dioxide gas fertilizer heating furnace of the sunlight greenhouse provided in the utility model.
[0025] Figure 6 It is the filter structure schematic view in the biomass smokeless carbon dioxide gas fertilizer heating furnace of the sunlight greenhouse provided in the utility model.
[0026] Figure 7 It is the bin cover structure schematic view in the biomass smokeless carbon dioxide gas fertilizer heating furnace of the sunlight greenhouse provided in the utility model.
[0027] Reference signs:
[0028] 1, combustion chamber; 111, first ventilation opening; 112, first door body; 113, first clamping piece; 114, first extension rod; 12, bin body; 121, ash removal opening; 122, second door body; 123, second clamping piece; 124, second extension rod; 125, first side handle; 13, bin cover; 131, bin cover handle; 2, heat removal cavity; 21, opening; 22, blowing hole; 23, filter; 231, filter screen; 232, filter screen handle; 241, second ventilation opening; 242, third door body; 243, third clamping piece; 244, third extension rod; 25, second side handle; 26, second connecting opening; 3, blowing pipeline; 30, air inlet; 31, first blowing opening; 32, second blowing opening; 33, third blowing opening; 300, main pipeline; 301, first blowing pipeline; 302, second blowing pipeline; 303, third blowing pipeline; 4, support frame. DETAILED DESCRIPTION
[0029] In order to make the purpose, technical scheme and advantages of the utility model more clear, the technical scheme in the utility model will be described clearly and completely below by combining with the drawings in the utility model. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled in the art without creative labor are within the protection scope of the utility model.
[0030] In the description of the embodiments of the utility model, it needs to explain that, unless there is definite stipulation and limitation, the term "first" "third" is for the numbering of the components of the product for clear explanation, and it does not represent any substantial difference. The term "mounting" "connecting" "connection" should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integrally connected; it can be directly connected, or indirectly connected through intermediate medium, or the communication inside two elements. For ordinary skilled in the art, the specific meaning of the above-mentioned term in the embodiments of the utility model can be understood according to the specific circumstances. In addition, the meaning of "a plurality of" is two or more than two. "And / or" in the specification and claims indicates at least one of the connected objects, and the character " / ", generally indicates that the front and rear associated objects are in a "or" relationship.
[0031] The utility model discloses a sunlit greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace. Figures 1-7 The utility model discloses a sunlit greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace.
[0032] As Figure 1 The utility model provides a sunlit greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace including combustion chamber 1, exhaust cavity 2 and blow pipe 3. Exhaust cavity 2 sets up at one side of combustion chamber 1 and is linked with combustion chamber 1, and the top of exhaust cavity 2 is equipped with opening 21. Blow pipe 3 is equipped with air inlet 30, first blow opening 31 and second blow opening 32. Air inlet 30 is used for connecting blowing equipment. First blow opening 31 is located at the side above opening 21 and is towards opening 21, and second blow opening 32 is connected to the lateral wall of exhaust cavity 2 and is linked with exhaust cavity 2.
[0033] Among them, combustion chamber 1 and exhaust cavity 2 can be the cylindrical structure of vertical direction setting, and combustion chamber 1 is equipped with first connecting port near the position of bottom, and exhaust cavity 2 is equipped with second connecting port 26 near the position of bottom, and first connecting port and second connecting port 26 are linked. The biomass fuel is used in combustion chamber 1. The blowing equipment can be air blower and the like for driving the equipment for the gas circulation in blow pipe 3. Optionally, the sunlit greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace further includes ventilation equipment, and the air inlet 30 of the blow pipe 3 is connected with the ventilation equipment.
[0034] When using, the hot flow including carbon dioxide gas fertilizer produced by the combustion of the biomass fuel in combustion chamber 1 enters exhaust cavity 2 through first connecting port and second connecting port 26. By blowing equipment to blow into blow pipe 3, a part of airflow is discharged to the outside from first blow opening 31, and a part of airflow is blown into exhaust cavity 2 from second blow opening 32, and then is discharged to the outside environment from the opening 21 of exhaust cavity 2. In this way, the heat can be saved through exhaust cavity 2, the energy loss is reduced, and the ash in combustion chamber 1 can be reduced and discharged to the environment with the airflow.
[0035] The air blown into the heat exhaust cavity 2 from the second air blowing port 32 can adjust the temperature of the airflow in the heat exhaust cavity 2, reduce energy loss, and promote the airflow in the heat exhaust cavity 2 to be discharged from the first air blowing port 31. After the air blown into the heat exhaust cavity 2 is mixed with the hot airflow from the combustion chamber 1, the hot airflow is discharged upward from the opening 21 at the top end of the heat exhaust cavity 2, and the air discharged from the first air blowing port 31 blows the hot airflow discharged from the opening 21 to the side of the opening 21, so that the hot airflow is more evenly diffused to the surrounding environment, and damage to the greenhouse shed film caused by the hot airflow directly upward from the opening 21 is prevented.
[0036] The sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace provided by the embodiment of the utility model, through setting heat exhaust cavity 2 on one side of combustion chamber 1, making heat exhaust cavity 2 and combustion chamber 1 communicate, the hot airflow containing carbon dioxide gas fertilizer generated by biomass combustion in combustion chamber 1 is discharged to heat exhaust cavity 2 first, and then is discharged through the top of heat exhaust cavity 2, which can save heat, reduce energy loss, and reduce the ash in combustion chamber 1 to be discharged to the environment with the airflow, through the second air blowing port 32 of blowing pipeline 3 to blow to heat exhaust cavity 2, the temperature in heat exhaust cavity 2 can be prevented from being too high, and the hot airflow in heat exhaust cavity 2 is better driven to be discharged from opening 21, through the first air blowing port 31 of blowing pipeline 3 to blow to the hot airflow discharged to the upper side of opening 21, the hot airflow is more evenly diffused to the surrounding environment, and the high-temperature hot airflow of heat exhaust cavity 2 can be prevented from damaging the greenhouse shed film directly upward. The sunlight greenhouse biomass smokeless carbon dioxide gas fertilizer heating furnace integrates smokeless heating, energy-saving and carbon dioxide gas fertilizer production, reduces equipment investment cost and management difficulty, and provides a more efficient, environmentally friendly and economical solution for the growth of greenhouse crops.
[0037] Further, as shown in Figure 1 and Figure 3 , the blowing pipeline 3 further includes a third air blowing port 33 connected to the combustion chamber 1 and in communication with the combustion chamber 1. During use, air is blown into the blowing pipeline 3 by the blowing device, and a part of the airflow is blown into the combustion chamber 1 from the third air blowing port 33, which can supplement sufficient oxygen for the combustion chamber 1 to achieve the effect of combustion support.
[0038] Specifically, as shown in Figure 1 , the blowing pipeline 3 includes a main pipeline 300, a first air blowing pipeline 301, a second air blowing pipeline 302, and a third air blowing pipeline 303. The first air blowing pipeline 301, the second air blowing pipeline 302, and the third air blowing pipeline 303 are respectively connected to the main pipeline 300. The end of the first air blowing pipeline 301 away from the main pipeline 300 forms the first air blowing port 31, the end of the second air blowing pipeline 302 away from the main pipeline 300 forms the second air blowing port 32, and the end of the third air blowing pipeline 303 away from the main pipeline 300 forms the third air blowing port 33.
[0039] Wherein, referring to Figure 2The main pipeline 300 includes a first pipeline section and a second pipeline section connected together. The first pipeline section extends vertically, and the second pipeline section extends horizontally. The first air blowing pipeline 301 and the second air blowing pipeline 302 are respectively connected to the first pipeline section, and the third air blowing pipeline 303 is connected to the second pipeline section.
[0040] Furthermore, this embodiment of the utility model also includes a support frame 4, which is fixed to the combustion chamber 1, and the second pipe section is supported on the support frame 4.
[0041] Optionally, the first air blowing duct 301 is arranged at an angle to the main duct 300, that is, the first air blowing duct 301 extends obliquely upward. For example, the first air blowing duct 301 is arranged at a 45° angle to the main duct 300.
[0042] like Figure 1 As shown in the embodiment of this utility model, there are multiple second air outlets 32, which are arranged sequentially at intervals along the height direction of the heat exhaust chamber 2. The figure shows two second air outlets 32. In this way, the air blowing pipe 3 can blow air to different heights within the heat exhaust chamber 2 through multiple second air outlets 32, which can improve the uniformity of mixing between the blown air and the heat flow within the heat exhaust chamber 2, and also improve the efficiency of uniform mixing. Specifically, the air blowing pipe 3 includes multiple second air blowing pipes 302, which are respectively connected to the main pipe 300 to form multiple second air outlets 32.
[0043] like Figure 4 As shown in this embodiment of the invention, the heat dissipation chamber 2 has a plurality of air blowing holes 22 on its cavity wall. The plurality of air blowing holes 22 are arranged evenly and sequentially along the circumference of the heat dissipation chamber 2. The second air blowing port 32 is connected to the plurality of air blowing holes 22. In this way, the airflow of the second air blowing port 32 can be divided into multiple small airflows by the plurality of air blowing holes 22 and blown evenly toward the center of the heat dissipation chamber 2, so that the blown air is heated evenly and the heat mixing efficiency within the heat dissipation chamber 2 is improved.
[0044] In some embodiments, the sidewall of the heat exhaust chamber 2 is provided with an annular pipe along the circumference of the heat exhaust chamber 2, and a plurality of air blowing holes 22 are provided on the annular pipe, and the annular pipe is connected to the second air blowing port 32.
[0045] Optionally, an annular pipe is located on the inner side wall of the heat exhaust chamber 2. The annular pipe is formed by a sheet metal part surrounding the inner side wall of the heat exhaust chamber 2, and multiple air holes 22 are provided on the sheet metal part. The side wall of the heat exhaust chamber 2 is provided with a through hole that communicates with the second air outlet 32.
[0046] It should be noted that the annular pipe can also be arranged outside the side wall of the heat exhaust cavity 2. The annular pipe is formed by a sheet metal part and the outside of the side wall of the heat exhaust cavity 2, a plurality of blowing holes are arranged on the side wall of the heat exhaust cavity 2, and the sheet metal part is provided with a through hole in communication with the second blowing port 32.
[0047] As shown in Figure 5 , in the embodiment of the utility model, the filter piece 23 is arranged in the heat exhaust cavity 2, and the filter piece 23 is below the opening 21, so that the airflow in the heat exhaust cavity 2 is discharged from the opening 21 after passing through the filter piece 23.
[0048] Specifically, the filter piece 23 is arranged at any position between the opening 21 and the second connecting port of the heat exhaust cavity 2. The heat flow generated by combustion in the combustion chamber 1 enters the heat exhaust cavity 2 through the second connecting port, flows upwards through the filter piece 23 and is discharged from the opening 21. The filter piece 23 has the effect of inhibiting the secondary combustion of the combustion products of the flame in the heat exhaust cavity 2 and the incomplete combustion.
[0049] Further, as shown in Figure 5 and Figure 6 , the filter piece 23 comprises a filter screen 231 and a filter screen handle 232. The filter screen 231 is horizontally arranged in the heat exhaust cavity 2, and the filter screen handle 232 is fixed to the upper part of the filter screen 231 and vertically extends upwards from the filter screen 231. Wherein, the filter screen 231 can be a steel wire mesh, or a plate-shaped piece with a plurality of through holes.
[0050] Specifically, the shape of the filter screen 231 is the same as the cross-sectional shape of the heat exhaust cavity 2. For example, if the cross-section of the heat exhaust cavity 2 is circular, the corresponding filter screen 231 is arranged in a circular shape. Alternatively, if the cross-section of the heat exhaust cavity 2 is rectangular, the corresponding filter screen 231 is arranged in a rectangular shape. An annular flange can be arranged on the inner wall surface of the side wall of the heat exhaust cavity 2, and the periphery of the filter screen 231 is supported on the annular flange. In the case where an annular pipe is arranged inside the side wall of the heat exhaust cavity 2, the annular pipe can be used as the annular flange for supporting the filter screen 231.
[0051] Optionally, the filter screen handle 232 is welded and fixed to the middle part of the filter screen 231. The filter screen handle 232 vertically extends upwards from the filter screen 231, which can facilitate personnel to take out the filter screen 231 from the heat exhaust cavity 2 and clean the filter screen 231.
[0052] As shown in Figure 2 and Figure 3As shown, in some embodiments of this utility model, the bottom side wall of the combustion chamber 1 is provided with a first vent 111, a first door 112, and a first latching member 113. The first door 112 is correspondingly arranged with the first vent 111, and the first latching member 113 is located on one side of the first vent. A first extension rod 114 is rotatably connected to the first door 112, and the first extension rod can rotate to engage with the first latching member 113. When the first vent 111 is open, air can enter the combustion chamber 1 through the first vent 111, which serves to ignite the combustible material and allow oxygen to circulate within the combustion chamber 1.
[0053] Specifically, the first door 112 is hinged to the side wall of the combustion chamber 1 to open and close the first vent 111. The first latching member 113 defines a first latching groove between itself and the side wall of the combustion chamber 1. The first extension rod 114 can rotate relative to the first door 112, thereby switching between inside and outside the first latching groove to lock and unlock the first door 112.
[0054] like Figure 2 and Figure 3 As shown in some embodiments of this utility model, the bottom of the side wall of the combustion chamber 1 is further provided with an ash removal port 121, a second door 122, and a second locking member 123. The ash removal port 121 is located below the first ventilation port 111, the second door 122 is correspondingly arranged with the ash removal port 121, and the second locking member 123 is located on one side of the ash removal port 121. A second extension rod 124 is rotatably connected to the second door 122, and the second extension rod 124 can rotate to engage with the second locking member 123. The ash removal port 121 can be used to clean the ash after combustion, and the ash removal port 121 also has the function of oxygen circulation.
[0055] Specifically, the second door 122 is hinged to the side wall of the combustion chamber 1 to open and close the ash shovel 121. The second latching member 123 defines a second latching groove between itself and the side wall of the combustion chamber 1. The second extension rod 124 can rotate relative to the second door 122, thereby switching between inside and outside the second latching groove to lock and unlock the second door 122.
[0056] like Figure 1 As shown, in some embodiments of this utility model, the bottom sidewall of the heat dissipation chamber 2 is further provided with a second vent 241, a third door 242, and a third latching member 243. The third door 242 is correspondingly arranged with the second vent 241, and the third latching member 243 is located on one side of the second vent 241. A third extension rod 244 is rotatably connected to the third door 242, and the third extension rod 244 can rotate to engage with the third latching member 243.
[0057] Specifically, the third door body 242 is hinged with the side wall of the heat exhaust cavity 2, and realizes the opening and closing of the second air vent 241. The third clamping piece 243 and the side wall of the heat exhaust cavity 2 define a third clamping groove. The third extension rod 244 can rotate relative to the third door body 242, so as to switch between the third clamping groove and outside the third clamping groove, and realize the locking and unlocking of the third door body 242.
[0058] As shown in Figure 3 and Figure 7 In the embodiment of the utility model, the combustion chamber 1 further comprises a bin body 12 and a bin cover 13. The bin body 12 is provided with a feeding port at the top, and the bin cover 13 is arranged on the feeding port. The bin cover 13 is provided with a bin cover handle 131 at the top, and the bin body 12 is respectively provided with a first side handle 125 at two opposite sides. And / or, the heat exhaust cavity 2 is respectively provided with a second side handle 25 at two opposite sides.
[0059] In use, the bin cover handle 131 is opened, and the biomass fuel is put into the combustion chamber 1 from the feeding port, and then the bin cover 13 is covered to seal the combustion chamber 1, so that the heat flow generated by the combustion in the combustion chamber 1 enters the heat exhaust cavity 2. When the temperature increasing furnace needs to be moved, the temperature increasing furnace can be moved by the two first side handles 125 on the bin body 12 and / or the two second side handles 25 on the heat exhaust cavity 2.
[0060] Finally, it should be noted that: the above examples are used to illustrate the technical solutions of the utility model, but not to limit them; although the utility model has been described in detail with reference to the foregoing examples, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing examples, or make equivalent replacement for part of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the utility model.
Claims
1. A solar greenhouse biomass smokeless carbon dioxide gas manure warming stove, characterized in that, The application relates to a combustion chamber and a heat exhaust cavity, wherein the heat exhaust cavity is arranged on one side of the combustion chamber and communicates with the combustion chamber, the top end of the heat exhaust cavity is provided with an opening, a blowing pipeline is arranged, the blowing pipeline is provided with an air inlet, a first blowing opening and a second blowing opening, the air inlet is used for connecting a blowing device, the first blowing opening is located on one side of the opening and faces the opening, and the second blowing opening is connected to the side wall of the heat exhaust cavity and communicates with the heat exhaust cavity. The blowing pipeline further comprises a third blowing opening, and the third blowing opening is connected to the combustion chamber and communicates with the combustion chamber. The second blowing opening is in a plurality, and the plurality of second blowing openings are sequentially and spacedly arranged along the height direction of the heat exhaust cavity.
2. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising stove according to claim 1, characterized in that, The cavity wall of the heat exhaust cavity is provided with a plurality of blowing holes, and the plurality of blowing holes are uniformly and spacedly arranged along the circumferential direction of the heat exhaust cavity, and the second blowing opening communicates with the plurality of blowing holes.
3. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising stove according to claim 1, characterized in that, The side wall of the heat exhaust cavity is provided with an annular pipeline along the circumferential direction of the heat exhaust cavity, and the plurality of blowing holes are arranged on the annular pipeline, and the annular pipeline communicates with the second blowing opening.
4. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising stove according to claim 1, characterized in that, The heat exhaust cavity is provided with a filter, and the filter is located below the opening, so that the airflow in the heat exhaust cavity is discharged from the opening after passing through the filter.
5. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising stove according to claim 4, characterized in that, The filter comprises a filter screen and a filter screen handle, the filter screen is horizontally arranged in the heat exhaust cavity, and the filter screen handle is fixed to the upper portion of the filter screen and vertically extends upwards from the filter screen.
6. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising furnace according to claim 1, characterized in that, The side wall of the combustion chamber is provided with a first ventilation opening, a first door body and a first clamping piece at the bottom, the first door body is arranged correspondingly to the first ventilation opening, the first clamping piece is located on one side of the first ventilation opening, a first extension rod is rotatably connected to the first door body, and the first extension rod can be rotated to be clamped with the first clamping piece.
7. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising stove according to claim 6, characterized in that, The side wall of the combustion chamber is further provided with an ash removal opening, a second door body and a second clamping piece at the bottom, the ash removal opening is located below the first ventilation opening, the second door body is arranged correspondingly to the ash removal opening, the second clamping piece is located on one side of the ash removal opening, a second extension rod is rotatably connected to the second door body, and the second extension rod can be rotated to be clamped with the second clamping piece.
8. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising furnace according to claim 1, characterized in that, And / or, the side wall of the heat exhaust cavity is further provided with a third ventilation opening, a third door body and a third clamping piece at the bottom, the third door body is arranged correspondingly to the third ventilation opening, the third clamping piece is located on one side of the third ventilation opening, a third extension rod is rotatably connected to the third door body, and the third extension rod can be rotated to be clamped with the third clamping piece.
9. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising furnace according to claim 8, characterized in that, The combustion chamber comprises a bin body and a bin cover, the top of the bin body is provided with a feeding opening, the bin cover is arranged on the feeding opening, the top of the bin cover is provided with a bin cover handle, and the opposite sides of the bin body are respectively provided with first side handles; and / or the opposite sides of the heat exhaust cavity are respectively provided with second side handles. 10. The solar greenhouse biomass smokeless carbon dioxide gas manure and temperature raising furnace according to claim 1, characterized in that,