Automatic pulping system
By adjusting the mud parameters through the automatic slurry making system, the problem of mud parameters being unable to be adjusted in the existing technology is solved, and dynamic adaptation of mud viscosity and density is achieved, ensuring the stability and efficiency of the drilling process.
Patent Information
- Application Number
- CN202510850523.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-26
AI Technical Summary
Existing mud circulation equipment is unable to adjust mud parameters according to actual geological conditions, resulting in difficulty in controlling mud viscosity and pH value.
An automatic slurry making system is provided, which includes multiple storage tanks, a reagent conveying device, a glue conveying device, a clean water pipeline and a pumping mechanism. By mixing the reagent and clean water to form a glue, the viscosity and density of the mud are adjusted to adapt to different geological conditions.
Dynamic adjustment of mud parameters according to geological conditions is achieved to ensure the stability and efficiency of the drilling process.
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Abstract
Description
Technical Field
[0001] The present application relates to the technical field of pulping, and in particular to an automatic pulping system. Background Art
[0002] During drilling operations, the mud system performs multiple critical functions. The drilling rig continuously transports the mud and rock debris generated in the hole to the surface through a circulation system. The separated mud is then processed and reused as raw material for the preparation of retaining wall materials. This recycled mud forms a dense mud crust and balances formation stresses through the pressure of the liquid column. This not only protects the hole wall and prevents collapse, but also assists in deslagging and cools and lubricates the drill bit.
[0003] In existing mud circulation equipment, mud is usually prepared directly from raw soil in drill cuttings, and the prepared mud is transported into the borehole. However, it is difficult to control parameters such as viscosity and pH value of the mud prepared directly from raw soil, and the mud parameters cannot be adjusted according to actual geological conditions. Summary of the Invention
[0004] The embodiment of the present application provides an automatic slurry making system, which solves the technical problem that the existing mud circulation equipment directly uses raw soil to prepare mud and cannot adjust the mud parameters according to the actual geological conditions.
[0005] The automatic pulping system provided in an embodiment of the present application includes: a plurality of first storage tanks, wherein the bottoms of adjacent first storage tanks can be disconnected and connected; a second storage tank; a medicine delivery device, wherein the medicine delivery device is connected to the second storage tank and is used to deliver the medicine to the second storage tank; a glue delivery device, wherein the glue delivery device is connected to the plurality of first storage tanks and the second storage tank and is configured to deliver the glue prepared with the medicine in the second storage tank to the plurality of first storage tanks; a clean water pipeline, wherein the clean water pipeline is connected to the plurality of first storage tanks and the second storage tank; and a pumping mechanism, wherein the pumping mechanism is connected to the plurality of first storage tanks and is used to extract mud from at least one of the first storage tanks.
[0006] In one possible implementation, the second storage tank includes a first mixing bin and a second mixing bin; the agent delivery device includes a first conveyor and a second conveyor; the two ends of the first conveyor are respectively located inside and outside the first mixing bin, for delivering the first agent to the first mixing bin; the two ends of the second conveyor are respectively located inside and outside the second mixing bin, for delivering the second agent to the second mixing bin; the glue delivery device includes a first conveying mechanism and a second conveying mechanism; the first conveying mechanism is connected to the multiple first storage tanks and the first mixing bin, and is configured to deliver the glue prepared using the first agent in the first mixing bin to the multiple first storage tanks; the second conveying mechanism is connected to the multiple first storage tanks and the second mixing bin, and is configured to deliver the glue prepared using the second agent in the second mixing bin to the multiple first storage tanks.
[0007] In one possible implementation, the first conveying mechanism includes a first pump, a first conveying pipeline, a second conveying pipeline, a third conveying pipeline and a first flow meter; the two ends of the first conveying pipeline are respectively connected to the inlet of the first pump and the first slurry mixing bin, the two ends of the second conveying pipeline are respectively connected to the outlet of the first pump and the first slurry mixing bin, and the third conveying pipeline is connected to the outlet of the first pump and the multiple first storage tanks; the first flow meter is installed on the third conveying pipeline.
[0008] In one possible implementation, the second conveying mechanism includes a second pump, a fourth conveying pipeline, a fifth conveying pipeline, a sixth conveying pipeline and a second flow meter; the two ends of the fourth conveying pipeline are respectively connected to the inlet of the second pump and the second slurry mixing bin, the two ends of the fifth conveying pipeline are respectively connected to the outlet of the second pump and the second slurry mixing bin, the sixth conveying pipeline is connected to the outlet of the second pump and the multiple first storage tanks; the second flow meter is installed on the sixth conveying pipeline.
[0009] In one possible implementation, the automatic pulping system also includes: a weighting mechanism; the weighting mechanism includes a first suction pipe, a first discharge pipe, a third pump and a funnel; the first suction pipe is connected to the multiple first storage tanks and the second storage tank, and one end of the first suction pipe is connected to the input end of the third pump; the first discharge pipe is connected to the multiple first storage tanks and the second storage tank, and one end of the first discharge pipe is connected to the output end of the third pump; the drain of the funnel is connected to the first discharge pipe.
[0010] In a possible implementation, the automatic slurry making system further includes: a plurality of detection mechanisms, each of which is connected to the plurality of first storage tanks and configured to detect the viscosity and density of the slurry in the plurality of first storage tanks.
[0011] In one possible implementation, the detection mechanism includes a fourth pump, a first detection pipeline, a second detection pipeline, a viscometer and a densitometer; the input end of the fourth pump is connected to the first storage tank through the first detection pipeline, the output end of the fourth pump is connected to the first storage tank through the second detection pipeline, and the viscometer and the densitometer are connected to the second detection pipeline.
[0012] In one possible implementation, the automatic pulping system further includes: a first cleaning pipeline, which is installed in each of the first storage tanks; a fifth pump, which is connected to the first storage tank, and the input end of the fifth pump is connected to the interior of the first storage tank, and the output end of the fifth pump is connected to the first cleaning pipeline.
[0013] In a possible implementation, the automatic pulping system further includes: a second cleaning pipeline, the second cleaning pipeline is installed in the second mixing bin, and one end of the second cleaning pipeline is connected to the sixth conveying pipeline.
[0014] In a possible implementation, the automatic pulping system further includes: a plurality of agitators, and the agitators are installed in the plurality of first storage tanks and the second storage tank.
[0015] The embodiment of the present application provides an automatic pulping system, which includes multiple first storage tanks, a second storage tank, a reagent delivery device, a glue delivery device, a clean water pipeline, and a pumping mechanism; the multiple storage tanks are used to hold the mud produced by the purified drilling, the reagent delivery device can deliver the reagent to the second storage tank, the clean water pipeline delivers clean water to the second storage tank, the reagent forms glue in the second storage tank, the glue delivery device delivers the glue in the second storage tank to multiple first storage tanks, the glue is mixed with the mud in the first storage tank, and the clean water pipeline can deliver clean water to the first storage tank. The glue and clean water adjust the viscosity and other parameters of the mud in the first storage tank, and the pumping mechanism delivers the adjusted mud into the borehole. Therefore, the automatic pulping system can adjust the viscosity and other parameters of the mud according to the actual geological conditions. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments of the present application or the description of the prior art. Obviously, the drawings described below are some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0017] Figure 1A schematic structural diagram of an automatic pulping system provided in some embodiments of the present application; Figure 2 The principle of the automatic pulping system provided in some embodiments of the present application Figure 1 ; Figure 3 A schematic diagram of a first conveying mechanism provided for some embodiments of the present application; Figure 4 A schematic diagram of a second conveying mechanism provided for some embodiments of the present application; Figure 5 A schematic diagram of a weighting mechanism provided in some embodiments of the present application installed on a first storage tank and a second storage tank; Figure 6 A schematic diagram of a weighting mechanism provided for some embodiments of the present application; Figure 7 Schematic diagram of the internal structure of the first storage tank and the second storage tank provided in some embodiments of the present application; Figure 8 Principles of the detection mechanism provided in some embodiments of this application Figure 1 ; Figure 9 Principles of the detection mechanism provided in some embodiments of this application Figure 2 ; Figure 10 Schematic diagram of the pumping mechanism provided for some embodiments of the present application.
[0018] Reference numerals: 100 - first storage tank; 200 - second storage tank; 210 - first slurry mixing chamber; 220 - second slurry mixing chamber; 300 - pharmaceutical delivery device; 310 - first conveyor; 320 - second conveyor; 330 - vibrating screen; 400 - glue delivery device; 410 - first delivery mechanism; 411 - first pump; 412 - first delivery pipeline; 413 - second delivery pipeline; 414 - third delivery pipeline; 415 - first flow meter; 420 - second delivery mechanism; 421 - second pump; 422 - fourth delivery pipeline; 423 - fifth delivery pipeline; 424 - sixth delivery pipeline; 425 - Second flowmeter; 500-clean water pipeline; 600-pumping mechanism; 610-sixth pump; 620-first pumping pipeline; 630-second pumping pipeline; 700-weighting mechanism; 710-first suction pipeline; 720-first discharge pipeline; 730-third pump; 740-funnel; 800-detection mechanism; 810-fourth pump; 820-first detection pipeline; 830-second detection pipeline; 840-viscometer; 850-density meter; 910-first cleaning pipeline; 920-fifth pump; 930-second cleaning pipeline; 1000-agitator; 1100-liquid level gauge; 1200-ph meter. DETAILED DESCRIPTION
[0019] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0020] In the description of the embodiments of the present application, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," "outer," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely for the purpose of facilitating the description of the embodiments of the present application and simplifying the description. They are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limiting the present application. The terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, the terms "mounted," "connected," and "connected" should be understood broadly. For example, they can mean a fixed connection, a detachable connection, or an integral connection; they can mean a direct connection, an indirect connection through an intermediary, or internal communication between two components. The term "and / or" describes an association relationship between associated objects, indicating that three relationships can exist. For example, "A and / or B" can mean: A exists alone, A and B exists simultaneously, or B exists alone. As used herein, the symbol " / " indicates that the associated objects are in an "or" relationship, for example, A / B means either A or B. For ordinary technicians in this field, the specific meanings of the above terms in the embodiments of this application can be understood according to specific circumstances.
[0021] The embodiment of the present application provides an automatic pulping system, such as Figure 1 and Figure 2 As shown, the automatic pulping system includes a plurality of first storage tanks 100 , a second storage tank 200 , a drug delivery device 300 , a glue delivery device 400 , a clean water pipeline 500 and a pumping mechanism 600 .
[0022] The bottoms of the adjacent first storage tanks 100 can be disconnected or connected. The multiple first storage tanks 100 are used to store the mud produced by the drilling after purification. The bottoms of two adjacent first storage tanks 100 can be connected or disconnected.
[0023] For example, Figure 1 and Figure 2 FIG. 3 shows that the automatic pulping system includes three first storage tanks 100 .
[0024] The drug delivery device 300 is connected to the second storage tank 200 and is used to deliver the drug to the second storage tank 200. When the automatic pulping system is in operation, a worker or a robot places the drug on the drug delivery device 300, which delivers the drug to the second storage tank 200 and mixes it with the clean water in the second storage tank 200 to form a glue solution.
[0025] Illustratively, the agent may be polyacrylamide and / or high viscosity carboxymethyl cellulose.
[0026] The glue liquid conveying device 400 is connected to the plurality of first storage tanks 100 and the second storage tanks 200 , and is configured to convey the glue liquid prepared with the medicine in the second storage tank 200 to the plurality of first storage tanks 100 .
[0027] The clean water pipeline 500 is connected to multiple first storage tanks 100 and second storage tanks 200, and is used to transport clean water to the first storage tanks 100 and the second storage tanks 200. The clean water entering the second storage tank 200 is used to mix with the agent to form a glue, and the clean water entering the first storage tank 100 is used to adjust the density of the mud.
[0028] The pumping mechanism 600 is connected to the plurality of first storage tanks 100 and is used to extract slurry from at least one first storage tank 100. Specifically, the pumping mechanism 600 can extract slurry from the plurality of first storage tanks 100 simultaneously or sequentially.
[0029] Therefore, when the automatic slurrying system is working, the glue prepared in the second storage tank 200 can be transported to multiple first storage tanks 100 as needed to adjust parameters such as the viscosity of the mud in the first storage tank 100, so that the pumping mechanism 600 can transport mud suitable for actual geological conditions into the borehole.
[0030] like Figure 2 As shown, the second storage tank 200 includes a first mixing bin 210 and a second mixing bin 220. The drug delivery device 300 includes a first conveyor 310 and a second conveyor 320; the first conveyor 310 has two ends located inside and outside the first mixing bin 210, respectively, for delivering the first drug to the first mixing bin 210; the second conveyor 320 has two ends located inside and outside the second mixing bin 220, respectively, for delivering the second drug to the second mixing bin 220. The glue liquid conveying device 400 includes a first conveying mechanism 410 and a second conveying mechanism 420; the first conveying mechanism 410 is connected to multiple first storage tanks 100 and the first mixing bin 210, and is configured to convey the glue liquid prepared using the first agent in the first mixing bin 210 to multiple first storage tanks 100; the second conveying mechanism 420 is connected to multiple first storage tanks 100 and the second mixing bin 220, and is configured to convey the glue liquid prepared using the second agent in the second mixing bin 220 to multiple first storage tanks 100.
[0031] The first conveying mechanism 410 and the second conveying mechanism 420 can respectively convey different agents into the first mixing bin 210 and the second mixing bin 220, so that the first mixing bin 210 and the second mixing bin 220 can form different glue liquids, and then the different glue liquids can be respectively conveyed by the first conveying mechanism 410 and the second conveying mechanism 420 to multiple first storage tanks 100 to adjust the parameters of the slurry in the multiple first storage tanks 100.
[0032] For example, the agent conveyed by the first conveying mechanism 410 to the first mixing bin 210 is polyacrylamide, and the agent conveyed by the second conveying mechanism 420 to the second mixing bin 220 is high-viscosity carboxymethyl cellulose. The first conveyor 310 and the second conveyor 320 can be screw conveyors.
[0033] Furthermore, since high-viscosity carboxymethyl cellulose has poor dispersibility, when the agent conveyed by the second conveying mechanism 420 to the second mixing bin 220 is high-viscosity carboxymethyl cellulose, the agent conveying device 300 also includes a vibrating screen 330, which is installed at the end of the second conveyor 320 located in the second mixing bin 220, and the vibrating screen 330 is used to accelerate the dispersion of the high-viscosity carboxymethyl cellulose.
[0034] like Figure 4 As shown, in the embodiment of the present application, the first conveying mechanism 410 includes a first pump 411, a first conveying pipeline 412, a second conveying pipeline 413, a third conveying pipeline 414, and a first flowmeter 415. The two ends of the first conveying pipeline 412 are respectively connected to the inlet of the first pump 411 and the first slurry mixing chamber 210, the two ends of the second conveying pipeline 413 are respectively connected to the outlet of the first pump 411 and the first slurry mixing chamber 210, and the third conveying pipeline 414 is connected to the outlet of the first pump 411 and the plurality of first storage tanks 100. The first flowmeter 415 is installed in the third conveying pipeline 414.
[0035] When the first conveying mechanism 410 conveys the glue liquid to multiple first storage tanks 100, the first pump 411 works, and the glue liquid in the first mixing bin 210 is drawn to the first pump 411 through the first conveying pipeline 412. The first pump 411 conveys the glue liquid to multiple first storage tanks 100 or one of the first storage tanks 100 through the third conveying pipeline 414.
[0036] In addition, the first conveying mechanism 410 can circulate the glue liquid in the first mixing chamber 210. When the first pump 411 works, the glue liquid in the first mixing chamber 210 is drawn to the first pump 411, and the first pump 411 returns the glue liquid to the first mixing chamber through the second conveying pipeline 413.
[0037] Illustratively, the first pump 411 may be a screw pump.
[0038] like Figure 5 As shown, in this embodiment of the present application, the second delivery mechanism 420 includes a second pump 421, a fourth delivery pipeline 422, a fifth delivery pipeline 423, a sixth delivery pipeline 424, and a second flowmeter 425. The fourth delivery pipeline 422 is connected at both ends to the inlet of the second pump 421 and the second slurry mixing chamber 220, respectively. The fifth delivery pipeline 423 is connected at both ends to the outlet of the second pump 421 and the second slurry mixing chamber 220, respectively. The sixth delivery pipeline 424 is connected to the outlet of the second pump 421 and the plurality of first storage tanks 100. The second flowmeter 425 is installed in the sixth delivery pipeline 424.
[0039] When the second conveying mechanism 420 conveys the glue liquid to multiple first storage tanks 100, the second pump 421 works, and the glue liquid in the second mixing bin 220 is drawn to the second pump 421 through the fourth conveying pipeline 422. The second pump 421 conveys the glue liquid to multiple first storage tanks 100 or one of the first storage tanks 100 through the sixth conveying pipeline 424.
[0040] In addition, the second conveying mechanism 420 can circulate the glue liquid in the second mixing chamber 220. When the second pump 421 works, the glue liquid in the second mixing chamber 220 is drawn to the second pump 421, and the second pump 421 returns the glue liquid to the second mixing chamber 220 through the fifth conveying pipeline 423.
[0041] Illustratively, the second pump 421 may be a screw pump.
[0042] When loss of return occurs during drilling, mud leaks into the formation and no return mud is returned to the wellhead, resulting in interrupted mud circulation. To ensure normal drilling, the automatic slurry making system provided in this embodiment of the application further includes a weighting mechanism 700 that uses clean water and clay to make slurry.
[0043] like Figure 5 and Figure 6 As shown, the weighting mechanism 700 includes a first suction line 710, a first discharge line 720, a third pump 730, and a funnel 740. The first suction line 710 is connected to the plurality of first storage tanks 100 and the second storage tank 200, and one end of the first suction line 710 is connected to the input end of the third pump 730. The first discharge line 720 is connected to the plurality of first storage tanks 100 and the second storage tank 200, and one end of the first discharge line 720 is connected to the output end of the third pump 730. The drain of the funnel 740 is connected to the first discharge line 720.
[0044] When reverse leakage occurs during the drilling process, the clean water mechanism transports clean water to one or more first storage tanks 100, and the third pump 730 allows the clean water in the first storage tank 100 to enter the first suction pipe 710. After passing through the third pump 730, the clean water enters the first discharge pipe 720. Workers or equipment such as a robotic arm put clay into the funnel 740, and the clay enters the first discharge pipe 720 from the funnel 740, so that the clean water in the first discharge pipe 720 mixes with the clay to form clay, and the first discharge pipe 720 discharges the mud into the first storage tank 100.
[0045] For example, the third pump 730 may be a sand pump.
[0046] like Figure 7 As shown, in the embodiment of the present application, the automatic slurrying system further includes a plurality of detection mechanisms 800 , which are respectively connected to the plurality of first storage tanks 100 and are configured to detect the viscosity and density of the slurry in the plurality of first storage tanks 100 .
[0047] The detection mechanism 800 can detect the viscosity and density of the mud in the first storage tank 100 in real time, and then determine whether to start the drug delivery device 300 and the glue delivery device 400 to adjust the viscosity and density of the mud based on the detection results of the detection mechanism 800.
[0048] Specifically, refer to Figure 8 As shown, the detection mechanism 800 includes a fourth pump 810, a first detection pipeline 820, a second detection pipeline 830, a viscometer 840, and a densitometer 850. The input end of the fourth pump 810 is connected to the first storage tank 100 through the first detection pipeline 820, the output end of the fourth pump 810 is connected to the first storage tank 100 through the second detection pipeline 830, and the viscometer 840 and the densitometer 850 are connected to the second detection pipeline 830.
[0049] When the testing mechanism 800 is testing the slurry in the first storage tank 100, the fourth pump 810 pumps the slurry from the first storage tank 100 through the first testing pipeline 820 and returns the slurry to the first storage tank 100 through the second testing pipeline 830. As the slurry flows through the second testing pipeline 830, the viscometer 840 can obtain the slurry's viscosity value, and the densitometer 850 can obtain the slurry's density value.
[0050] Illustratively, the fourth pump 810 may be a screw pump.
[0051] Continue to refer to Figure 9As shown, in this automatic pulping system, the two detection mechanisms 800 can share the fourth pump 810, the viscometer 840 and the densitometer 850, the input end of the fourth pump 810 is connected to the two first storage tanks 100 through two first detection pipelines 820, the output end of the fourth pump 810 is connected to the first storage tank 100 through two second detection pipelines 830, and the two second detection pipelines 830 have an overlapping part, and the viscometer 840 and the densitometer 850 are installed in the overlapping part of the two second detection pipelines 830.
[0052] like Figure 7 As shown, in this embodiment of the present application, the automatic pulping system further includes a first cleaning pipeline 910 and a fifth pump 920. The first cleaning pipeline 910 is installed in each first storage tank 100; the fifth pump 920 is connected to the first storage tank 100, and the input end of the fifth pump 920 is connected to the interior of the first storage tank 100, and the output end of the fifth pump 920 is connected to the first cleaning pipeline 910.
[0053] When cleaning the first storage tank 100 , the fifth pump 920 pumps clean water out of the first storage tank 100 and delivers it to the first cleaning pipeline 910 . The clean water in the first cleaning pipeline 910 flows out to clean the first storage tank 100 .
[0054] For example, the fifth pump 920 may be a flushing pump.
[0055] like Figure 7 As shown, in the embodiment of the present application, the automatic pulping system further includes a second cleaning pipeline 930 , which is installed in the second mixing chamber 220 , and one end of the second cleaning pipeline 930 is connected to the sixth conveying pipeline 424 .
[0056] When the second cleaning pipeline 930 is working, the second pump 421 sucks clean water from the second mixing bin 220 through the fourth delivery pipeline 422, and delivers the glue liquid from the sixth delivery pipeline 424 to the second cleaning pipeline 930. The glue liquid in the second cleaning pipeline 930 flows back into the second mixing bin 220 to clean the second mixing bin 220.
[0057] Continue to refer to Figure 7 In the embodiment of the present application, the automatic pulping system further includes a plurality of agitators 1000, and a plurality of first storage tanks 100 and a plurality of second storage tanks 200 are both equipped with agitators 1000. The agitators 1000 installed in the plurality of first storage tanks 100 stir the slurry, and the agitators 1000 installed in the second storage tanks 200 stir the glue.
[0058] like Figure 10As shown, in this embodiment of the present application, the extraction mechanism includes a sixth pump 610, a first pumping pipeline 620, and a second pumping pipeline 630. The first pumping pipeline 620 is disposed in and communicates with the plurality of first storage tanks 100. The second pumping pipeline 630 is connected at both ends to the first pumping pipeline 620 and the sixth pump 610, respectively. The sixth pump 610 extracts the slurry from the plurality of first storage tanks 100 through the first pumping pipeline 620 and the second pumping pipeline 630 and delivers it to the borehole.
[0059] Exemplarily, the extraction mechanism includes two sixth pumps 610 and two second pumping pipelines 630. The two sixth pumps 610 are connected to the first pumping pipeline 620 through the two second pumping pipelines 630. The two sixth pumps 610 are designed as backups to ensure that the automatic slurrying system can work normally during the drilling process.
[0060] Continue to refer to Figure 10 In the embodiment of the present application, in the automatic slurry making system, the sixth pump 610 is connected to one of the first storage tanks 100 through the agitator 1000. The sixth pump 610 can extract slurry from one of the first storage tanks 100 through the agitator 1000.
[0061] like Figure 7 As shown, in an embodiment of the present application, the automatic pulping system further includes a liquid level meter 1100 and a pH meter 1200; a liquid level meter 1100 and a pH meter 1200 are installed in each first storage tank 100; and a liquid level meter 1100 and a pH meter 1200 are installed in the first mixing bin 210 and the second mixing bin 220 of the second storage tank 200.
[0062] The various embodiments in this specification are described in a progressive manner, and the same or similar parts between the various embodiments can be referenced to each other. Each embodiment focuses on the differences from other embodiments.
[0063] The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit the present application. Although the present application has been described in detail with reference to the aforementioned embodiments, a person of ordinary skill in the art should understand that the technical solutions described in the aforementioned embodiments can still be modified, or some or all of the technical features therein can be replaced by equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the present application.
Claims
1. An automatic pulping system, characterized in that: include: A plurality of first storage tanks, wherein the bottoms of adjacent first storage tanks can be disconnected and communicated; Second storage tank; a drug delivery device, the drug delivery device being connected to the second storage tank and being used to deliver the drug to the second storage tank; an adhesive liquid conveying device, the adhesive liquid conveying device being connected to the plurality of first storage tanks and the second storage tank, and being configured to convey the adhesive liquid prepared with the medicine in the second storage tank to the plurality of first storage tanks; a clean water pipeline, the clean water pipeline being connected to the plurality of first storage tanks and the second storage tank; as well as A pumping mechanism is connected to the plurality of first storage tanks and is used to pump slurry from at least one of the first storage tanks.
2. The automatic pulping system according to claim 1, characterized in that: The second storage tank includes a first slurry mixing bin and a second slurry mixing bin; The drug delivery device includes a first conveyor and a second conveyor; the two ends of the first conveyor are respectively located inside and outside the first mixing bin, and are used to deliver the first drug to the first mixing bin; the two ends of the second conveyor are respectively located inside and outside the second mixing bin, and are used to deliver the second drug to the second mixing bin; The glue liquid conveying device includes a first conveying mechanism and a second conveying mechanism; the first conveying mechanism is connected to the multiple first storage tanks and the first mixing bin, and is configured to convey the glue liquid prepared using the first agent in the first mixing bin to the multiple first storage tanks; the second conveying mechanism is connected to the multiple first storage tanks and the second mixing bin, and is configured to convey the glue liquid prepared using the second agent in the second mixing bin to the multiple first storage tanks.
3. The automatic pulping system according to claim 2, characterized in that: The first delivery mechanism includes a first pump, a first delivery pipeline, a second delivery pipeline, a third delivery pipeline and a first flow meter; The two ends of the first delivery pipeline are respectively connected to the inlet of the first pump and the first mixing bin, the two ends of the second delivery pipeline are respectively connected to the outlet of the first pump and the first mixing bin, and the third delivery pipeline is connected to the outlet of the first pump and the multiple first storage tanks; the first flow meter is installed on the third delivery pipeline.
4. The automatic pulping system according to claim 2 or 3, characterized in that: The second delivery mechanism includes a second pump, a fourth delivery pipeline, a fifth delivery pipeline, a sixth delivery pipeline and a second flow meter; The two ends of the fourth delivery pipeline are respectively connected to the inlet of the second pump and the second mixing bin, the two ends of the fifth delivery pipeline are respectively connected to the outlet of the second pump and the second mixing bin, the sixth delivery pipeline is connected to the outlet of the second pump and the multiple first storage tanks; the second flow meter is installed on the sixth delivery pipeline.
5. The automatic pulping system according to claim 1, characterized in that: Also includes: aggravating mechanism; The weighting mechanism includes a first suction pipeline, a first discharge pipeline, a third pump and a funnel; The first suction pipeline is connected to the plurality of first storage tanks and the second storage tank, and one end of the first suction pipeline is connected to the input end of the third pump; The first discharge pipeline is connected to the plurality of first storage tanks and the second storage tank, and one end of the first discharge pipeline is connected to the output end of the third pump; The leakage port of the funnel is connected to the first discharge pipeline.
6. The automatic pulping system according to claim 1, characterized in that: Also includes: A plurality of detection mechanisms are respectively connected to the plurality of first storage tanks and configured to detect the viscosity and density of the slurry in the plurality of first storage tanks.
7. The automatic pulping system according to claim 6, characterized in that: The detection mechanism includes a fourth pump, a first detection pipeline, a second detection pipeline, a viscometer and a densitometer; The input end of the fourth pump is connected to the first storage tank through the first detection pipeline, the output end of the fourth pump is connected to the first storage tank through the second detection pipeline, and the viscometer and the densitometer are connected to the second detection pipeline.
8. The automatic pulping system according to claim 1, characterized in that: Also includes: a first cleaning pipeline, wherein each of the first storage tanks is provided with the first cleaning pipeline; A fifth pump is connected to the first storage tank, an input end of the fifth pump is connected to the interior of the first storage tank, and an output end of the fifth pump is connected to the first cleaning pipeline.
9. The automatic pulping system according to claim 4, characterized in that: Also includes: A second cleaning pipeline is installed in the second mixing bin, and one end of the second cleaning pipeline is connected to the sixth conveying pipeline.
10. The automatic pulping system according to claim 1, characterized in that: Also includes: A plurality of stirrers are installed in each of the plurality of first storage tanks and the second storage tank.