Fracturing equipment control method, electronic device, and readable storage medium

By monitoring the status of fracturing equipment and automatically executing fracturing steps, the problem of complex fracturing equipment control methods has been solved, achieving the effects of simplified operation and reduced costs.

CN116733434BActive Publication Date: 2026-05-29HUNAN SANY PETROLEUM TECH

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
HUNAN SANY PETROLEUM TECH
Filing Date
2023-07-10
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Current fracturing equipment control methods involve complex operating procedures, high learning costs, high requirements for construction personnel, and a large workload.

Method used

By monitoring fracturing step instructions, it can determine whether the equipment status meets the preset trigger conditions, obtain the pre-input construction parameters, and automatically execute the fracturing steps, simplifying the operation process.

Benefits of technology

It lowers the requirements for construction personnel, reduces workload and construction costs, and improves the convenience and efficiency of fracturing operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a fracturing equipment control method, an electronic device and a readable storage medium, relates to the technical field of fracturing truck control, and the fracturing equipment control method comprises the steps that a fracturing step instruction is monitored; in response to the received fracturing step instruction, it is judged whether the current state of the fracturing equipment conforms to preset trigger conditions of the fracturing step instruction, wherein the fracturing step instruction comprises one or more of a start instruction, a cycle instruction, a pressure test instruction, a squeeze test instruction, a fracturing instruction, a sand adding instruction, a squeeze replacement instruction, a backwashing instruction and a self-defined instruction; if it is consistent, the pre-input construction parameters associated with the fracturing step instruction are acquired; and the fracturing step corresponding to the fracturing step instruction is executed according to the pre-input construction parameters. The application solves the technical problems of high operation step complexity and high learning cost of the current fracturing equipment control method.
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Description

Technical Field

[0001] This application relates to the field of fracturing equipment control technology, and in particular to a fracturing equipment control method, electronic equipment, and readable storage medium. Background Technology

[0002] Fracturing is a method of creating fractures in oil and gas reservoirs using fracturing equipment during oil or gas production. By artificially creating fractures in the formation, the flow environment of oil underground is improved, thereby increasing oil well production. Fracturing equipment includes fracturing trucks and fracturing skids.

[0003] The current operating method for fracturing equipment in the market is generally as follows: before construction, operators learn each step of the fracturing process and memorize the parameters for each step. During actual fracturing operations, the engine is started according to the fracturing process requirements, and the fracturing equipment's gear is manually controlled at different times to manage the cumulative displacement and the running time of each step, ultimately achieving the fracturing objective. However, this method places high demands on the operators and requires them to complete complex operational procedures during fracturing, resulting in a significant workload. Summary of the Invention

[0004] The main purpose of this application is to provide a fracturing equipment control method, electronic device and readable storage medium, which aims to solve the technical problems of high complexity of operation steps and high learning cost of current fracturing equipment control methods.

[0005] To achieve the above objectives, this application provides a fracturing equipment control method, the fracturing equipment control method comprising:

[0006] Monitor fracturing procedure instructions;

[0007] In response to the received fracturing step command, determine whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command, wherein the fracturing step command includes one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom command.

[0008] If the conditions are met, obtain the pre-input construction parameters associated with the fracturing step instruction;

[0009] The fracturing steps corresponding to the fracturing step instructions are executed according to the pre-input construction parameters.

[0010] Optionally, the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction includes:

[0011] Determine whether the previous step corresponding to the previous fracturing step instruction has been completed;

[0012] If so, determine whether the construction environment corresponding to the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0013] Optionally, the step of executing the fracturing step command corresponding to the pre-input construction parameters is as follows:

[0014] A target construction plan is generated based on the pre-input construction parameters;

[0015] The fracturing steps corresponding to the fracturing step instructions are executed based on the target construction plan.

[0016] Optionally, the fracturing step command is a start-up command, and determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command includes:

[0017] Determine if the engine is idling, the transmission is in neutral, and the chassis is powered off.

[0018] The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes:

[0019] The engine is started according to the first pre-input construction parameters corresponding to the start command, wherein the first pre-input construction parameters include at least the number of first engines.

[0020] Optionally, the fracturing step instruction is a cyclic instruction, and the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction includes:

[0021] Determine if the engine has started. If it has started, determine if the operating status of the sand mixing truck meets the preset water pressure and displacement.

[0022] If the conditions are met, the number of second engines is determined according to the second pre-input construction parameters corresponding to the cycle instruction, wherein the second pre-input construction parameters include at least displacement and pressure;

[0023] If the number of the first engines is not less than the number of the second engines, then the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction;

[0024] The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes:

[0025] Based on the number of the first engines and the displacement and pressure in the second pre-input construction parameters, the target construction plan for the fracturing step is determined;

[0026] Execute the fracturing steps corresponding to the fracturing step instructions according to the target construction plan.

[0027] Optionally, the target construction plan includes the target speed and target gear corresponding to each engine, and the fracturing step corresponding to the fracturing step instruction executed according to the target construction plan includes:

[0028] Adjust the speed and gear of each engine to the target speed and gear in the target construction plan to execute the cyclic steps. , Until the time or displacement specified in the second pre-input construction parameters is reached;

[0029] If a next step is included after the cyclic steps, the instruction corresponding to the next step is executed; otherwise, each engine is adjusted to idle speed and the engine gear is placed in neutral to end the fracturing operation.

[0030] Optionally, prior to the step of monitoring the fracturing step instruction, the method further includes:

[0031] Obtain the pre-input construction parameters corresponding to each fracturing step command;

[0032] Following the step of responding to the received fracturing step instruction, the method further includes:

[0033] Check whether the pre-input construction parameters corresponding to the fracturing step command are set correctly;

[0034] If not, a prompt message will be displayed to guide the user to adjust the pre-entered construction parameters.

[0035] Optionally, the fracturing step instruction is triggered via a touchscreen button. After the step of executing the fracturing step corresponding to the fracturing step instruction according to the pre-input construction parameters, the method further includes:

[0036] If the fracturing step is executed successfully, the next fracturing step corresponding to the fracturing step is executed until all fracturing steps corresponding to the fracturing step instruction are completed.

[0037] If the fracturing step fails after being repeated a preset number of times, a first preset color is displayed via the touchscreen button, and the control mode of the fracturing equipment is switched to manual mode. The preset number of times is one of 0, 1, or 2.

[0038] This application also provides a fracturing equipment control device, which is applied to fracturing equipment control equipment and includes:

[0039] The command monitoring module is used to monitor fracturing step commands;

[0040] The trigger judgment module is used to respond to the received fracturing step command and determine whether the current state of the fracturing equipment meets the preset trigger conditions of the fracturing step command. The fracturing step command includes one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom command.

[0041] The parameter acquisition module is used to acquire the pre-input construction parameters associated with the fracturing step instruction if the conditions are met.

[0042] The step execution module is used to execute the fracturing steps corresponding to the fracturing step instructions according to the pre-input construction parameters.

[0043] This application also provides an electronic device, which is a physical device, comprising: a memory, a processor, and a program of the fracturing equipment control method stored in the memory and executable on the processor. When the program of the fracturing equipment control method is executed by the processor, it can implement the steps of the fracturing equipment control method as described above.

[0044] This application also provides a computer-readable storage medium storing a program for implementing a fracturing equipment control method, wherein when the program for the fracturing equipment control method is executed by a processor, it implements the steps of the fracturing equipment control method as described above.

[0045] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the steps of the fracturing equipment control method described above.

[0046] This application provides a fracturing equipment control method, electronic device, and readable storage medium. First, it monitors fracturing step commands. Then, in response to the received fracturing step commands, it determines whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step commands. The fracturing step commands include one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom commands. If the conditions are met, it obtains the pre-input construction parameters associated with the fracturing step commands, and then executes the fracturing steps corresponding to the fracturing step commands according to the pre-input construction parameters. The technical solution of this application simplifies the operation steps in fracturing construction by automatically controlling the fracturing equipment to execute fracturing construction steps based on the pre-input construction parameters corresponding to each step in the fracturing process. It eliminates the need for construction personnel to memorize the parameters of each step in the fracturing process, reducing the requirements for construction personnel and lowering workload and construction costs. Attached Figure Description

[0047] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0048] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0049] Figure 1 This is a flowchart illustrating the first embodiment of the fracturing equipment control method of this application;

[0050] Figure 2 This is a schematic diagram illustrating the communication between the fracturing truck (skid) group and other vehicles in the fracturing equipment control method of this application;

[0051] Figure 3 This is a schematic diagram of the control logic of the fracturing truck (skid) group in the fracturing equipment control method of this application;

[0052] Figure 4 This is a schematic diagram of the composition of the fracturing equipment control device in the embodiments of this application;

[0053] Figure 5 This is a schematic diagram of the hardware operating environment involved in the fracturing equipment control method in the embodiments of this application.

[0054] The purpose, features, and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0055] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are merely some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0056] Example 1

[0057] Currently, when controlling fracturing equipment in the market, the construction personnel generally first familiarize themselves with the fracturing construction process and memorize the construction parameters for each step. Then, during fracturing construction, they start the engine on the platform according to the fracturing process requirements and manually control the engine gear and speed at different times to control the displacement of the fracturing truck or fracturing skid to meet the fracturing construction process requirements. When abnormal situations occur during construction, it is necessary to manually adjust the construction parameters to ensure that the fracturing construction process proceeds normally.

[0058] This application provides a fracturing equipment control method. In the first embodiment of the fracturing equipment control method of this application, refer to... Figure 1 The fracturing equipment control method includes:

[0059] Step S10: Monitor fracturing step instructions;

[0060] Step S20: In response to the received fracturing step instruction, determine whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction. The fracturing step instruction includes one or more of the following: start-up instruction, circulation instruction, pressure test instruction, extrusion test instruction, fracturing instruction, sand addition instruction, displacement extrusion instruction, backwashing instruction, and custom instruction.

[0061] Step S30: If the conditions are met, obtain the pre-input construction parameters associated with the fracturing step instruction;

[0062] Step S40: Execute the fracturing step corresponding to the fracturing step instruction according to the pre-input construction parameters.

[0063] In the embodiments of this application, it should be noted that the fracturing equipment can be a fracturing truck or a fracturing skid. Furthermore, during the fracturing operation, multiple fracturing trucks or fracturing skids typically work together; that is, the fracturing equipment can be a fracturing truck group or a fracturing skid group. (Refer to...) Figure 2 The fracturing step commands are triggered via a touchscreen button located on the instrument vehicle. The instrument vehicle has established communication connections with the fracturing truck group or fracturing skid group and the sand mixing truck, and can receive status data from the fracturing truck (skid) and sand mixing truck. This status data includes operating conditions, pressure, and displacement. During fracturing operations, the instrument vehicle sends the user-input fracturing step commands to each fracturing truck or fracturing skid to control the fracturing truck group or fracturing skid group to execute the corresponding fracturing steps. The instrument vehicle also receives status data from the fracturing truck or fracturing skid and the sand mixing truck, allowing the instrument vehicle and operators to adaptively adjust the fracturing step commands based on the status data, ensuring that the displacement and pressure output at each step of the fracturing operation conform to the pre-input operating parameters.

[0064] As an example, the instrument vehicle includes eight touchscreen buttons corresponding to start-up commands, cycle commands, pressure testing commands, extrusion testing commands, fracturing commands, sand addition commands, displacement commands, and backwashing commands, as well as a start button. The operator can press the touchscreen button corresponding to the desired fracturing step sequentially, and then press the start button. The fracturing equipment will then begin executing the fracturing steps corresponding to each touchscreen button in sequence. In practice, the operator can press multiple touchscreen buttons consecutively, or select multiple touchscreen buttons corresponding to the currently needed fracturing steps as required. For example, after the first fracturing operation, a second operation can be performed, and cycle commands or pressure testing commands can be omitted, only the start-up command, extrusion testing command, and subsequent commands can be pressed. The operator can choose according to the site conditions. Additionally, custom commands can be included to execute operator-defined operating instructions based on operational needs, increasing the flexibility of command control.

[0065] As an example, during the execution of the fracturing steps corresponding to the pre-input construction parameters, the fracturing equipment can be controlled to execute the corresponding fracturing steps through pre-set subroutines for each fracturing step. Before execution, each subroutine can obtain the main parameters input by the user according to the construction process requirements, such as pressure, displacement, and duration, through a visual window. Moreover, each subroutine can adaptively adjust the working state of the fracturing unit to ensure that the pressure and displacement output by the fracturing equipment reach the preset parameter values ​​and are maintained for the preset duration. For example, if the engine of a fracturing truck malfunctions during the execution of the cyclic steps, that fracturing truck will be shut down, and the engine speed and gear of the other fracturing trucks in the fracturing truck group will be increased to keep the output pressure and displacement of the fracturing truck group stable.

[0066] In this embodiment of the application, it should also be noted that when the current state of the fracturing equipment does not meet the preset triggering conditions corresponding to the fracturing step instruction, the user can be prompted to adjust the current state of the fracturing equipment through light, voice prompts or text prompts, wherein the light can be red; after the adjustment is completed, the user continues to click the touch screen button to fracturing step instruction and return to the execution step S20.

[0067] In another feasible embodiment, the fracturing step instructions also include a tubing movement instruction, which can be set according to the type of fracturing equipment. That is, after the displacement step is completed, backwashing or tubing movement can be implemented depending on the construction situation. Because many current fracturing processes employ a packer-based stratified pressure selection process, some residual sand may remain within the wellbore and packer's clamping distance after fracturing. To avoid sand jamming accidents, backwashing is necessary. If the fracturing proceeds smoothly, simply moving the tubing to accelerate packer retrieval is sufficient; if the fracturing is unsuccessful, residual sand in the wellbore may hinder packer retrieval. In this case, backwashing should be performed to clean the clamping distance and the sand within the wellbore, ensuring smooth packer retrieval and preventing sand jamming accidents.

[0068] As an example, steps S10 to S40 include: receiving fracturing step commands input by the user via a touchscreen button on the instrument vehicle, wherein the fracturing step commands can be one or more, specifically, the fracturing step commands can be one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom command; executing the fracturing step commands sequentially in the above order; before executing each fracturing step command, determining whether the previous fracturing step corresponding to the fracturing step command has been completed; if it has been completed, then determining whether the current state of the fracturing equipment meets the preset triggering condition of the fracturing step command; if the current state of the fracturing equipment meets the fracturing... If the preset trigger conditions of the fracturing step command are met, the fracturing step corresponding to the fracturing step command will be executed according to the pre-input construction parameters. The pre-input construction parameters are the construction parameters corresponding to each fracturing step command input by the user in advance. These construction parameters can be stored in the instrument vehicle's built-in memory. When retrieved, the associated construction parameters are looked up in the built-in memory according to the fracturing step command and called. After all fracturing steps corresponding to the user-input fracturing step command have been executed, the fracturing equipment's engine will be adjusted to idle speed and the engine gear will be switched to neutral. If the current state of the fracturing equipment does not meet the preset trigger conditions of the fracturing step command, an alarm will be triggered via lights or voice prompts to remind the user to adjust the current state of the fracturing equipment.

[0069] Further, the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction includes:

[0070] Step S21: Determine whether the previous step corresponding to the previous fracturing step instruction of the fracturing step instruction has been completed;

[0071] Step S22: If yes, then determine whether the construction environment corresponding to the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0072] In this embodiment, it should be noted that if the fracturing step instruction is a start-up instruction or the first step in a user-inputted fracturing step instruction, then the fracturing step instruction does not have a corresponding preceding step, and therefore there is no need to determine whether the preceding step has been completed. For other fracturing step instructions, it is necessary to determine whether the preceding step has been completed according to the order of the user-inputted fracturing step instructions. The order of the fracturing step instructions is: start-up instruction, circulation instruction, pressure test instruction, extrusion test instruction, fracturing instruction, sand addition instruction, displacement extrusion instruction, and backwashing instruction. The user can select some or all of these steps to execute as needed, and the above order shall prevail when executing each fracturing step. In addition, the construction environment includes the engine status of the fracturing equipment and the operating status of the sand mixing truck, etc.

[0073] As an example, steps S21 to S22 include: if the fracturing step instruction is the fracturing step instruction corresponding to the first step in the fracturing step instructions input by the user, then determine whether the engine is in an idling state and whether the transmission is in neutral; if the engine is in an idling state and the transmission is in neutral, then the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction; if the engine is not in an idling state or the transmission is not in neutral, then an alarm is issued to the user to prompt the user to adjust the engine operating state or gear; if the fracturing step instruction is not the first step in the fracturing step instructions, then determine whether the previous step corresponding to the previous fracturing step instruction has been completed; if it has been completed, then determine whether the construction environment corresponding to the fracturing equipment meets the preset triggering conditions of the fracturing step instruction; if it has not been completed, then an alarm is issued to the user to prompt the user to execute the steps in sequence.

[0074] Furthermore, the fracturing step corresponding to the fracturing step instruction is executed according to the pre-input construction parameters:

[0075] Step S41: Generate a target construction plan based on the pre-input construction parameters;

[0076] Step S42: Execute the fracturing step corresponding to the fracturing step instruction based on the target construction plan.

[0077] In this embodiment, it should be noted that the pre-input construction parameters may include construction parameters such as the required output displacement and pressure of the fracturing equipment, as well as construction parameters such as the number of engines and their corresponding speeds and gears. During actual fracturing operations, to find the optimal solution, the number of engines, speeds, and gears can be adaptively adjusted to achieve efficient fracturing while minimizing time and fuel consumption. This adaptive adjustment process can be automatically calculated by the program. For example, if there are 10 fracturing trucks and this operation requires a displacement of 10 cubic meters and a pressure of 40 MPa, the program will automatically calculate a displacement of 1 cubic meter per truck, automatically match the optimal fuel consumption curve of the engine based on the displacement and pressure, determine the engine speed, and then calculate the corresponding gear, such as 4th gear. The program then controls the operation of the engine and transmission based on the calculated displacement, speed, and gear. Optionally, the displacement, gear, and speed can also be manually set to prevent program malfunctions. The target construction plan may include the number of engines, engine speed, and transmission gears required during the fracturing operation.

[0078] As an example, steps S41 to S42 include: calculating the target speed and target gear corresponding to each engine based on the displacement and pressure in the pre-input construction parameters and the currently running engines, and generating a target construction plan; controlling the operation of the engines according to the target speed and target gear corresponding to each engine in the target construction plan, and executing the fracturing step corresponding to the fracturing step instruction.

[0079] Furthermore, when the fracturing step command is a start-up command, the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command includes:

[0080] Step S211: Determine whether the engine is in idle state, the transmission is in neutral state, and the chassis is in power-off state.

[0081] The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes:

[0082] Step S411: Start the engine according to the first pre-input construction parameters corresponding to the start command, wherein the first pre-input construction parameters include at least the number of first engines.

[0083] In this embodiment of the application, it should be noted that this embodiment provides a fracturing equipment control method when the user-input fracturing step command is a start command. Specifically, before starting the engine, it is necessary to determine whether the engine is in an idle state. If it is not in an idle state, there is no need to start the engine. If the engine is in an idle state but not in neutral, starting the engine at this time will cause certain damage to the engine. Therefore, before executing the start command, it is necessary to determine whether the engine is in an idle state, the gearbox is in neutral, and the chassis is in a power-off state. The first pre-input construction parameter corresponding to the start command may include the first number of engines, that is, how many engines need to be started in this fracturing process. Each engine corresponds to one fracturing truck (skid). The first pre-input construction parameter may also include a preset engine sequence number, that is, which engines are selected as preferred engines among the existing multiple fracturing trucks (skids) to ensure that each fracturing operation is completed with the relatively optimal performance engine, thereby improving the efficiency of fracturing operation.

[0084] During engine operation, when the chassis engine starts, the chassis engages the power take-off and accelerates to a preset value (e.g., 1500 RPM), and the platform engine starts. When the engine stops, the chassis engine decelerates, the chassis power take-off disengages, and the chassis power is cut off, among other actions. Therefore, before starting the engine, the platform engine is idling, the transmission is in neutral, and the chassis power is off. Additionally, it's advisable to check beforehand whether the communication between the fracturing truck and the chassis is normal, and whether the main control communication between the fracturing truck and the instrument truck is normal. If normal, starting the engine can begin.

[0085] Furthermore, when the fracturing step instruction is a cyclic instruction, the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction when the fracturing step instruction is invoked includes:

[0086] Step S221: Determine whether the engine has started. If it has started, determine whether the operating status of the sand mixing truck meets the preset water pressure and displacement.

[0087] Step S222: If the conditions are met, the number of second engines is determined according to the second pre-input construction parameters corresponding to the loop instruction, wherein the second pre-input construction parameters include at least displacement and pressure;

[0088] Step S223: If the number of the first engines is not less than the number of the second engines, then the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0089] The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes:

[0090] Step S421: Determine the target construction plan for the fracturing step based on the number of the first engines and the displacement and pressure in the second pre-input construction parameters;

[0091] Step S422: Execute the fracturing step corresponding to the fracturing step instruction according to the target construction plan.

[0092] In this embodiment, it should be noted that a fracturing equipment control method is provided when the user-input fracturing step execution command is a cyclic command. The cyclic step in the fracturing process is to test the performance of various parts of the fracturing equipment, check the unobstructedness of the ground circulation pipeline, and ensure the proper water supply to various pumps. Simultaneously, circulation allows the fracturing fluid in the tank to be stirred, achieving uniform temperature and viscosity. In winter operations, it also removes ice blocks that may clog the fluid tank outlet. During the cyclic step, the circulating fluid flows from the mixing tank, is pumped into each fracturing truck (skid) by the sand mixing truck, and then returns to the mixing tank through the circulation pipeline by the pumps of the fracturing truck (skid). Before executing the cyclic step, it is necessary to determine whether the operating status of the sand mixing truck meets the circulation requirements, i.e., to ensure that the water pressure and discharge rate of the sand mixing truck reach certain thresholds to guarantee the normal operation of the circulation process. These thresholds (preset trigger conditions) can be set according to the needs of the construction site. This allows for the automated execution of various steps in fracturing operations while ensuring the smooth completion of each step.

[0093] It should also be noted that the fracturing process based on the pre-input fracturing parameters includes adjusting the speed and gear of each engine. This is because each engine has different fuel consumption, output displacement and pressure, and energy conversion efficiency at different speeds and gears. Therefore, during the cyclical steps based on the second pre-input fracturing parameters, the corresponding displacement and pressure can be used as constraints to adjust the speed and gear of each engine to the optimal state, determining the corresponding target fracturing scheme. This ensures that the engine group can output the displacement and pressure corresponding to the second pre-input fracturing parameters while minimizing overall energy consumption, thereby reducing fracturing construction costs.

[0094] As an example, steps S221 to S223 include: determining whether the engine is running; if so, determining whether the water pressure and displacement during the operation of the sand mixing truck are not lower than the water pressure threshold and displacement threshold corresponding to the cycle command; when the water pressure and displacement during the operation of the sand mixing truck are lower than the water pressure threshold and displacement threshold corresponding to the cycle command, prompting the user to manually adjust the operating parameters of the sand mixing truck so that the water pressure and displacement of the sand mixing truck are not lower than the water pressure threshold and displacement threshold, and returning to step S223 again after the user clicks the touch screen button and start button of the cycle command again; when the water pressure and displacement during the operation of the sand mixing truck are not lower than the water pressure threshold and displacement threshold corresponding to the cycle command, then according to the second pre-input corresponding to the cycle command... The calculation of the displacement and pressure in the pre-input construction parameters determines the number of second engines required. Each engine has a preset rated output displacement and rated output pressure. The displacement and pressure in the second pre-input construction parameters represent the total pressure required during the cycle. The minimum number of engines required can be calculated to meet the displacement and pressure requirements during the cycle. If the number of first engines is less than the number of second engines, the user is prompted to increase the number of engines to be started. After the user clicks the touchscreen button and the start button of the cycle instruction again, the process returns to step S223. When the number of first engines is not less than the number of second engines, it indicates that the number of engines currently started can meet the displacement and pressure requirements in the second pre-input construction parameters, meaning that the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0095] As an example, steps S421 to S422 include: using the number of the first engines and the displacement and pressure in the second pre-input construction parameters as constraints, calculating the target speed and target gear with the highest energy conversion efficiency for each engine to obtain a target construction plan; and executing the fracturing step in the fracturing step instruction according to the target speed and target gear of the target construction plan.

[0096] In another feasible embodiment, when the user inputs other fracturing step commands, the same steps and methods described above can be followed. The user can click one or more different fracturing step commands according to specific construction needs to achieve automatic control of the fracturing equipment. The automatic control steps of the fracturing equipment can be executed individually or continuously, making the operation of the fracturing equipment more convenient. Furthermore, during the automatic control execution of the fracturing equipment, the user can freely choose whether to switch to manual mode according to the construction site conditions, increasing the flexibility of fracturing equipment operation.

[0097] Furthermore, the target construction plan includes the target speed and target gear corresponding to each engine, and the fracturing steps corresponding to the fracturing step instructions executed according to the target construction plan include:

[0098] Step S423: Adjust the speed and gear of each engine to the target speed and gear in the target construction plan to execute the cyclic steps. , Until the time or displacement specified in the second pre-input construction parameters is reached;

[0099] Step S424: If a next step is included after the cyclic step, then execute the instruction corresponding to the next step; otherwise, adjust each engine to idle speed and put the engine gear in neutral to end the fracturing operation.

[0100] As an example, steps S423 to S424 include: adjusting the speed and gear of each engine to the target speed and gear in the target construction plan, and performing a cyclic step while maintaining the target speed and gear of each engine; stopping the cyclic step when the execution time of the cyclic step reaches the cycle time in the second pre-input construction parameters. , The process continues until the time or cumulative displacement in the second pre-input construction parameters is reached; if a next step is included after the cycle step, the instruction corresponding to the next step is executed; if the cycle step is the last step, each engine is adjusted to idle speed and the engine gear is placed in neutral to end the fracturing operation.

[0101] Additionally, in this embodiment of the application, before fracturing operations are performed, i.e. before the step of monitoring the fracturing step instructions, the method may further include:

[0102] Step A10: Obtain the pre-input construction parameters corresponding to each fracturing step instruction;

[0103] Following the step of responding to the received fracturing step instruction, the method may further include:

[0104] Step A20: Check whether the pre-input construction parameters corresponding to each fracturing step command are set correctly;

[0105] Step A30: If not, output a prompt message to guide the user to adjust the pre-input construction parameters.

[0106] This application provides a method for users to input pre-input construction parameters corresponding to each fracturing step. These pre-input construction parameters can be entered all at once before construction, referring to relevant fracturing process data. This allows operators to focus on the construction effect during fracturing without having to memorize parameters beforehand, thus reducing the demands on operators and their workload. The process of checking whether the pre-input construction parameters are set correctly mainly involves screening for omissions and whether any parameters exceed the equipment's performance. For example, the construction parameters for each fracturing step generally include pressure, displacement, and time. It is crucial to ensure that each construction parameter is configured correctly to avoid omissions that could lead to abnormalities in the construction process.

[0107] As an example, steps A10 to A30 include: displaying a visual construction parameter input window on the instrument vehicle to the user, allowing the user to input construction parameters such as pressure, displacement, and time corresponding to each fracturing step command; when a pressure step command on the instrument vehicle is detected to be triggered, checking whether the construction parameters corresponding to the currently triggered pressure step command are set correctly; if set correctly, continuing to the next step: determining whether the current state of the fracturing equipment meets the preset triggering conditions of the step command and subsequent steps; if not set correctly, prompting the user to continue adjusting the incorrectly set construction parameters through button colors, voice prompts, or alarm sounds on the touch screen display on the instrument vehicle.

[0108] Furthermore, after the step of executing the fracturing step corresponding to the fracturing step instruction according to the pre-input construction parameters, the method may further include:

[0109] Step B10: If the fracturing step is executed successfully, then execute the next fracturing step corresponding to the fracturing step, until all fracturing steps corresponding to the fracturing step instruction are executed.

[0110] Step B20: If the fracturing step fails after being repeated a preset number of times, a first preset color is displayed via the touch screen button and the control mode of the fracturing equipment is switched to manual mode, wherein the preset number of times is one of 0, 1 or 2.

[0111] In this embodiment, it should be noted that when controlling the fracturing equipment to execute the corresponding fracturing steps through the preset subroutines for each fracturing step, failures may occur due to accidental factors, external environment, or equipment problems. This necessitates repeated execution to eliminate accidental factors. If execution still fails after a certain number of repetitions, the user needs to manually operate the fracturing equipment to ensure the normal progress of the fracturing process. (Refer to...) Figure 3The fracturing process includes: startup, circulation, pressure testing, extrusion testing, fracturing, sand addition, displacement extrusion, and backwashing. Each fracturing step may fail during execution. After an initial failure, the process will be repeated a preset number of times (1-2 times). If it still fails, it will switch to manual mode. It should be noted that, depending on the operator's settings, the process can also be skipped and directly switched to manual mode. If any fracturing step command entered by the user is the last step, a termination step can be executed after completing that step. Specifically, in the termination step, the engine will be reduced to idle speed, and the transmission will be switched to neutral. If the fracturing truck is moving, the gear shift and braking will also be required. Furthermore, if the preset trigger conditions corresponding to the fracturing step command are not met during the execution of a fracturing step, an alarm will be triggered by displaying the touchscreen button in the first preset color, and the process will switch to manual mode.

[0112] As an example, the first preset display color can be red to prompt the user to manually operate the fracturing equipment. When the user manually operates the fracturing equipment to perform the fracturing step, the touch screen button indicates that the fracturing equipment is currently in manual operation by displaying a flashing state or a second preset color. When the fracturing step is completed, a third preset color is displayed to indicate that the fracturing step corresponding to the touch screen button has been completed. The second preset color can be yellow and the third preset color can be green.

[0113] As an example, steps B10 to B20 include: after a fracturing step is successfully executed, if the fracturing step is the last fracturing step in the user-input fracturing step command, the fracturing step is ended, the engine is adjusted to idle speed, the transmission is adjusted to neutral, and the movement of the fracturing truck is stopped; if the fracturing step is not the last fracturing step in the user-input fracturing step command, the next fracturing step is executed according to the method of steps S20 to S40; when the fracturing step is initially detected to have failed, the fracturing step is repeated according to the preset construction parameters until it is successfully executed or the number of repetitions reaches the preset number; if it is successfully executed, the fracturing step is ended or the next fracturing step is executed; if the fracturing step still fails after the preset number of executions, the touch screen button is displayed in red to remind the user that the fracturing equipment needs to be manually operated; the control mode of the fracturing equipment is switched to manual mode to receive the operation command input by the user.

[0114] This application provides a fracturing equipment control method. First, it monitors fracturing step commands. Then, in response to the received fracturing step commands, it determines whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step commands. The fracturing step commands include one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom commands. If the conditions are met, it obtains the pre-input construction parameters associated with the fracturing step commands. Then, it executes the fracturing steps corresponding to the fracturing step commands according to the pre-input construction parameters. This technical solution simplifies the operation steps in fracturing construction by automatically controlling the fracturing equipment to execute fracturing construction steps based on the pre-input construction parameters corresponding to each step in the fracturing process. It eliminates the need for construction personnel to memorize the parameters of each step in the fracturing process, reducing the requirements for construction personnel and lowering workload and construction costs.

[0115] Example 2

[0116] This application also provides a fracturing equipment control device, which is applied to fracturing equipment control equipment, as described above. Figure 4 The fracturing equipment control device includes:

[0117] Command monitoring module 101 is used to monitor fracturing step commands;

[0118] The trigger judgment module 102 is used to respond to the received fracturing step instruction and determine whether the current state of the fracturing equipment meets the preset trigger conditions of the fracturing step instruction. The fracturing step instruction includes one or more of the following: start-up instruction, circulation instruction, pressure test instruction, extrusion test instruction, fracturing instruction, sand addition instruction, displacement extrusion instruction, backwashing instruction, and custom instruction.

[0119] The parameter acquisition module 103 is used to acquire the pre-input construction parameters associated with the fracturing step instruction if the conditions are met.

[0120] The step execution module 104 is used to execute the fracturing step corresponding to the fracturing step instruction according to the pre-input construction parameters.

[0121] Optionally, the trigger determination module 102 is further configured to:

[0122] Determine whether the previous step corresponding to the previous fracturing step instruction has been completed;

[0123] If so, determine whether the construction environment corresponding to the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0124] Optionally, the step execution module 104 is further configured to:

[0125] A target construction plan is generated based on the pre-input construction parameters;

[0126] The fracturing steps corresponding to the fracturing step instructions are executed based on the target construction plan.

[0127] Optionally, the fracturing step instruction is a start-up instruction, and the trigger determination module 102 is further used for:

[0128] Determine if the engine is idling, the transmission is in neutral, and the chassis is powered off.

[0129] The step execution module 104 is further configured to:

[0130] The engine is started according to the first pre-input construction parameters corresponding to the start command, wherein the first pre-input construction parameters include at least the number of first engines.

[0131] Optionally, the fracturing step is a cyclic command, and the triggering judgment module 102 is further used for:

[0132] Determine if the engine has started. If it has started, determine if the operating status of the sand mixing truck meets the preset water pressure and displacement.

[0133] If the conditions are met, the number of second engines is determined according to the second pre-input construction parameters corresponding to the cycle instruction, wherein the second pre-input construction parameters include at least displacement and pressure;

[0134] If the number of the first engines is not less than the number of the second engines, then the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

[0135] The step execution module 104 is further configured to:

[0136] Based on the number of the first engines and the displacement and pressure in the second pre-input construction parameters, the target construction plan for the fracturing step is determined;

[0137] Execute the fracturing steps corresponding to the fracturing step instructions according to the target construction plan.

[0138] The step execution module 104 is further configured to:

[0139] Adjust the speed and gear of each engine to the target speed and gear in the target construction plan to execute the cyclic steps. , Until the time or displacement specified in the second pre-input construction parameters is reached;

[0140] If a next step is included after the cyclic steps, the instruction corresponding to the next step is executed; otherwise, each engine is adjusted to idle speed and the engine gear is placed in neutral to end the fracturing operation.

[0141] Optionally, the instruction monitoring module 101 is further configured to:

[0142] Obtain the pre-input construction parameters corresponding to each fracturing step instruction.

[0143] Optionally, the instruction monitoring module 101 is further configured to:

[0144] Check whether the pre-input construction parameters corresponding to the fracturing step command are set correctly;

[0145] If not, a prompt message will be displayed to guide the user to adjust the pre-entered construction parameters.

[0146] Optionally, the step execution module 104 is further configured to:

[0147] If the fracturing step is executed successfully, the next fracturing step corresponding to the fracturing step is executed until all fracturing steps corresponding to the fracturing step instruction are completed.

[0148] If the fracturing step fails after being repeated a preset number of times, a first preset color is displayed via the touchscreen button, and the control mode of the fracturing equipment is switched to manual mode. The preset number of times is one of 0, 1, or 2.

[0149] The fracturing equipment control device provided in this application adopts the fracturing equipment control method in the above embodiments, solving the technical problems of high operational complexity and high learning cost of current fracturing equipment control methods. Compared with the prior art, the beneficial effects of the fracturing equipment control device provided in this application are the same as those of the fracturing equipment control method provided in the above embodiments, and other technical features in this fracturing equipment control device are the same as those disclosed in the previous embodiment method, and will not be repeated here.

[0150] Example 3

[0151] This application provides an electronic device, which includes: at least one processor; and a memory communicatively linked to the at least one processor; wherein the memory stores instructions executable by the at least one processor, which are executed by the at least one processor to enable the at least one processor to perform the fracturing equipment control method in the first embodiment described above.

[0152] The following is for reference. Figure 5The diagram illustrates a structural schematic of an electronic device suitable for implementing embodiments of the present disclosure. The electronic devices in the embodiments of the present disclosure may include, but are not limited to, mobile terminals such as mobile phones, laptops, digital broadcast receivers, PDAs (personal digital assistants), PADs (tablet computers), PMPs (portable media players), in-vehicle terminals (e.g., in-vehicle navigation terminals), and fixed terminals such as digital TVs and desktop computers. Figure 5 The electronic device shown is merely an example and should not be construed as limiting the functionality and scope of the embodiments disclosed herein.

[0153] like Figure 5 As shown, an electronic device may include a processing unit (such as a central processing unit, graphics processing unit, etc.) that can perform various appropriate actions and processes based on programs stored in read-only memory (ROM) or loaded from storage devices into random access memory (RAM). The RAM also stores various programs and data required for the operation of the electronic device. The processing unit, ROM, and RAM are interconnected via a bus. Input / output (I / O) interfaces are also linked to the bus.

[0154] Typically, the following systems can be linked to the I / O interface: input devices such as touchscreens, touchpads, keyboards, mice, image sensors, microphones, accelerometers, gyroscopes, etc.; output devices such as liquid crystal displays (LCDs), speakers, vibrators, etc.; storage devices such as magnetic tapes, hard drives, etc.; and communication devices. Communication devices allow electronic devices to communicate wirelessly or wiredly with other devices to exchange data. Although electronic devices with various systems are shown in the figures, it should be understood that it is not required to implement or possess all the systems shown. More or fewer systems may be implemented alternatively.

[0155] In particular, according to embodiments of this disclosure, the processes described above with reference to the flowcharts can be implemented as computer software programs. For example, embodiments of this disclosure include a computer program product comprising a computer program carried on a computer-readable medium, the computer program containing program code for performing the methods shown in the flowcharts. In such embodiments, the computer program can be downloaded and installed from a network via a communication device, or installed from a storage device, or installed from a ROM. When the computer program is executed by a processing device, it performs the functions defined above in the methods of embodiments of this disclosure.

[0156] The electronic device provided in this application employs the fracturing equipment control method described in the above embodiments, solving the technical problems of high operational complexity and high learning cost in current fracturing equipment control methods. Compared with the prior art, the beneficial effects of the electronic device provided in this application are the same as those of the fracturing equipment control method provided in Embodiment 1 above, and other technical features of this electronic device are the same as those disclosed in the previous embodiment method, and will not be repeated here.

[0157] It should be understood that various parts of this disclosure can be implemented using hardware, software, firmware, or a combination thereof. In the description of the above embodiments, specific features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples.

[0158] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

[0159] Example 4

[0160] This embodiment provides a computer-readable storage medium having computer-readable program instructions stored thereon, which are used to execute the fracturing equipment control method in the first embodiment described above.

[0161] The computer-readable storage medium provided in this application embodiment may be, for example, a USB flash drive, but is not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or any combination thereof. More specific examples of a computer-readable storage medium may include, but are not limited to: an electrical link having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM, or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this embodiment, the computer-readable storage medium may be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, system, or device. The program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to: wires, optical cables, RF (radio frequency), etc., or any suitable combination thereof.

[0162] The aforementioned computer-readable storage medium may be included in an electronic device or may exist independently without being assembled into an electronic device.

[0163] The aforementioned computer-readable storage medium carries one or more programs that, when executed by an electronic device, cause the electronic device to: monitor fracturing step instructions; in response to the received fracturing step instructions, determine whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instructions, wherein the fracturing step instructions include one or more of the following: start-up instructions, circulation instructions, pressure testing instructions, extrusion testing instructions, fracturing instructions, sand addition instructions, displacement extrusion instructions, backwashing instructions, and custom instructions; if they meet the conditions, obtain the pre-input construction parameters associated with the fracturing step instructions; and execute the fracturing step corresponding to the fracturing step instructions according to the pre-input construction parameters.

[0164] Computer program code for performing the operations of this disclosure can be written in one or more programming languages ​​or a combination thereof, including object-oriented programming languages ​​such as Java, Smalltalk, and C++, and conventional procedural programming languages ​​such as the "C" language or similar programming languages. The program code can be executed entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving remote computers, the remote computer can be linked to the user's computer via any type of network—including a local area network (LAN) or a wide area network (WAN)—or can be linked to an external computer (e.g., via the Internet using an Internet service provider).

[0165] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or operation, or using a combination of dedicated hardware and computer instructions.

[0166] The modules described in the embodiments of this disclosure can be implemented in software or hardware. The names of the modules do not necessarily limit the functionality of the unit itself.

[0167] The computer-readable storage medium provided in this application stores computer-readable program instructions for executing the above-described fracturing equipment control method, thus solving the technical problems of high operational complexity and high learning cost in current fracturing equipment control methods. Compared with the prior art, the beneficial effects of the computer-readable storage medium provided in this application are the same as the beneficial effects of the fracturing equipment control method provided in the above-described embodiments, and will not be repeated here.

[0168] Example 5

[0169] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the steps of the fracturing equipment control method described above.

[0170] The computer program product provided in this application solves the technical problems of high operational complexity and high learning cost in current fracturing equipment control methods. Compared with the prior art, the beneficial effects of the computer program product provided in this application are the same as those of the fracturing equipment control methods provided in the above embodiments, and will not be repeated here.

[0171] The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent scope of this application.

Claims

1. A method for controlling fracturing equipment, characterized in that, The fracturing equipment control method includes: Monitor fracturing procedure instructions; In response to the received fracturing step command, determine whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command, wherein the fracturing step command includes one or more of the following: start-up command, circulation command, pressure test command, extrusion test command, fracturing command, sand addition command, displacement extrusion command, backwashing command, and custom command. If the conditions are met, obtain the pre-input construction parameters associated with the fracturing step instruction; Execute the fracturing step corresponding to the fracturing step instruction according to the pre-input construction parameters; Wherein, the fracturing step command is a start-up command, and the determination of whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command includes: Determine if the engine is idling, the transmission is in neutral, and the chassis is powered off. The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes: The engine is started according to the first pre-input construction parameters corresponding to the start command, wherein the first pre-input construction parameters include at least the number of first engines; The fracturing step command is a cyclic command, and the step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step command includes: Determine if the engine has started. If it has started, determine if the operating status of the sand mixing truck meets the preset water pressure and displacement. If the conditions are met, the number of second engines is determined according to the second pre-input construction parameters corresponding to the cycle instruction, wherein the second pre-input construction parameters include at least time, displacement and pressure; If the number of the first engines is not less than the number of the second engines, then the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction; The step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters includes: Based on the number of the first engines and the displacement and pressure in the second pre-input construction parameters, the target construction plan for the fracturing step is determined; Execute the fracturing steps corresponding to the fracturing step instructions according to the target construction plan.

2. The fracturing equipment control method as described in claim 1, characterized in that, The step of determining whether the current state of the fracturing equipment meets the preset triggering conditions of the fracturing step instruction includes: Determine whether the previous step corresponding to the previous fracturing step instruction has been completed; If so, determine whether the construction environment corresponding to the fracturing equipment meets the preset triggering conditions of the fracturing step instruction.

3. The fracturing equipment control method as described in claim 1, characterized in that, The fracturing step corresponding to the fracturing step instruction is executed according to the pre-input construction parameters: A target construction plan is generated based on the pre-input construction parameters; The fracturing steps corresponding to the fracturing step instructions are executed based on the target construction plan.

4. The fracturing equipment control method as described in claim 1, characterized in that, The target construction plan includes the target speed and target gear for each engine, and the fracturing steps corresponding to the fracturing step instructions executed according to the target construction plan include: Adjust the speed and gear of each engine to the target speed and gear in the target construction plan to execute the cyclic steps until the time or displacement in the second pre-input construction parameters is reached; If a next step is included after the cyclic steps, the instruction corresponding to the next step is executed; otherwise, each engine is adjusted to idle speed and the engine gear is placed in neutral to end the fracturing operation.

5. The fracturing equipment control method as described in claim 1, characterized in that, Prior to the step of monitoring the fracturing step instruction, the method further includes: Obtain the pre-input construction parameters corresponding to each fracturing step command; Following the step of responding to the received fracturing step instruction, the method further includes: Check whether the pre-input construction parameters corresponding to the fracturing step command are set correctly; If not, a prompt message will be displayed to guide the user to adjust the pre-entered construction parameters.

6. The fracturing equipment control method according to any one of claims 1 to 5, characterized in that, The fracturing step command is triggered via a touchscreen button. After the step of executing the fracturing step corresponding to the fracturing step command according to the pre-input construction parameters, the method further includes: If the fracturing step is executed successfully, the next fracturing step corresponding to the fracturing step is executed until all fracturing steps corresponding to the fracturing step instruction are completed. If the fracturing step fails after being repeated a preset number of times, a first preset color is displayed via the touchscreen button, and the control mode of the fracturing equipment is switched to manual mode. The preset number of times is one of 0, 1, or 2.

7. An electronic device, characterized in that, The electronic device includes: At least one processor; and, A memory that is communicatively linked to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor to enable the at least one processor to perform the steps of the fracturing equipment control method according to any one of claims 1 to 5.

8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a program for implementing a fracturing equipment control method, which is executed by a processor to implement the steps of the fracturing equipment control method as described in any one of claims 1 to 5.