WO2020015212A1 - 一种调节冲击波设备气源稳定性的方法、装置及存储介质 - Google Patents

一种调节冲击波设备气源稳定性的方法、装置及存储介质 Download PDF

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WO2020015212A1
WO2020015212A1 PCT/CN2018/110202 CN2018110202W WO2020015212A1 WO 2020015212 A1 WO2020015212 A1 WO 2020015212A1 CN 2018110202 W CN2018110202 W CN 2018110202W WO 2020015212 A1 WO2020015212 A1 WO 2020015212A1
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Prior art keywords
pressure
shock wave
air source
gas source
wave device
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PCT/CN2018/110202
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English (en)
French (fr)
Inventor
何永正
吴坤坤
张�杰
黄朋飞
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河南翔宇医疗设备股份有限公司
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Priority to RU2020134982A priority Critical patent/RU2741706C1/ru
Publication of WO2020015212A1 publication Critical patent/WO2020015212A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • A61B17/225Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for for extracorporeal shock wave lithotripsy [ESWL], e.g. by using ultrasonic waves
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61HPHYSICAL THERAPY APPARATUS, e.g. DEVICES FOR LOCATING OR STIMULATING REFLEX POINTS IN THE BODY; ARTIFICIAL RESPIRATION; MASSAGE; BATHING DEVICES FOR SPECIAL THERAPEUTIC OR HYGIENIC PURPOSES OR SPECIFIC PARTS OF THE BODY
    • A61H23/00Percussion or vibration massage, e.g. using supersonic vibration; Suction-vibration massage; Massage with moving diaphragms
    • A61H23/008Percussion or vibration massage, e.g. using supersonic vibration; Suction-vibration massage; Massage with moving diaphragms using shock waves

Definitions

  • the invention relates to the field of application of shock wave equipment, in particular to a method, a device and a storage medium for adjusting the stability of the gas source of the shock wave equipment.
  • shock wave equipment has been widely used in medicine.
  • the shock wave equipment mainly works by pneumatic pressure, so it is very important to ensure the stability of the air source of the shock wave equipment.
  • the embodiments of the present application provide a method, a device, and a storage medium for adjusting the air source stability of a shock wave device, so as to solve the problems of using the shock wave device in the prior art and improving the user experience.
  • the present invention provides a method for adjusting the stability of a gas source of a shock wave device, including:
  • the air source pressure is adjusted so that the air source pressure is within the preset range, and the adjusted air source is output.
  • the corresponding gas source pressure in each device of the acquisition shock wave device is specifically:
  • the determining whether the gas source pressure is within a preset range specifically includes:
  • the corresponding air source pressure in each device of the shock wave device further includes:
  • the determining whether the gas source pressure is within a preset range further includes:
  • control to open a second safety valve corresponding to the gas storage tank to adjust the pressure of the second gas source until the second gas source pressure is within the second preset range, and enters all The step of outputting a corresponding gas source in the gas storage tank is described.
  • the method further includes:
  • the method further includes:
  • the method further includes:
  • the method further includes:
  • the present invention also provides a device corresponding to a method for adjusting the stability of a gas source of a shock wave device, including:
  • An acquisition module for acquiring corresponding gas source pressure in each component of the shock wave device
  • a judging module for judging whether the pressure of the gas source is within a preset range; if yes, triggering an output module; if not, triggering an adjustment module;
  • the output module is configured to output a corresponding gas source in each of the devices
  • the adjustment module is configured to adjust the pressure of the air source so that the pressure of the air source is within the preset range, and output the adjusted air source.
  • the present invention also provides another device corresponding to a method for adjusting the stability of a gas source of a shock wave device, including:
  • a processor configured to execute the computer program to implement the steps of any one of the methods for adjusting a gas source stability of a shock wave device.
  • the present invention also provides a computer-readable storage medium corresponding to the method for adjusting the stability of the gas source of the shock wave device.
  • the computer-readable storage medium stores a computer program, the computer program. Steps executed by a processor to implement any one of the methods for adjusting a gas source stability of a shock wave device.
  • the present invention provides a method for adjusting the stability of a gas source of a shock wave device.
  • the gas source pressure is within a preset range. If the obtained air source pressure is not within the preset range, adjust the air source pressure until the air source pressure is within the preset range, and then output the adjusted air source; if the obtained air source pressure is within Within the preset range, it means that the pressure of the gas source is in compliance with the requirements, and the corresponding gas source in each device can be directly output, which can improve the stability of the gas source of the shock wave equipment and the use effect of the shock wave equipment, and improve the user experience.
  • the present invention also provides a device and a storage medium for adjusting the stability of the air source of the shock wave device, and the effect is as described above.
  • FIG. 1 is a flowchart of a method for adjusting stability of a gas source of a shock wave device according to an embodiment of the present invention
  • FIG. 2 is a general flowchart of a method for adjusting a gas source stability of a shock wave device according to an embodiment of the present invention
  • FIG. 3 is a schematic diagram of a composition of a device for adjusting gas source stability of a shock wave device according to an embodiment of the present invention
  • FIG. 4 is a schematic diagram of the composition of another apparatus for adjusting the stability of a gas source of a shock wave device according to an embodiment of the present invention.
  • the core of the present invention is to provide a method, a device and a storage medium for adjusting the air source stability of a shock wave device, which can solve the problems of using the shock wave device in the prior art and improving the user experience.
  • FIG. 1 is a flowchart of a method for adjusting gas source stability of a shock wave device according to an embodiment of the present invention. As shown in FIG. 1, the method includes:
  • step S102 Determine whether the pressure of the air source is within a preset range. If yes, go to step S103; if no, go to step S104.
  • S104 Adjust the air source pressure so that the air source pressure is within a preset range, and output the adjusted air source.
  • the core processor in the shock wave device obtains the corresponding gas source pressure that is pressed into each device by the compressor in the shock wave device, and then determines the obtained pressure through the core processor. Whether the gas source pressure is within the preset range.
  • the obtained gas source pressure is within the preset range, it means that the gas source pressure is in compliance with the requirements and is stable. At this time, the gas source corresponding to each device can be directly output. ; If the obtained air source pressure is not within the preset range, it means that the air source pressure obtained at this time is unstable, and the current air source pressure needs to be adjusted until the air source pressure is within the preset range, and then adjusted at the output After the air source (stable air source), after processing the air source of the shock wave device through the above steps, it can ensure that the final air source of the shock wave device is stable, which can improve the use effect of the shock wave device and enhance the user experience. .
  • the preset range is different for different types of devices, which can be set according to actual conditions.
  • the components of the shock wave equipment may include air pumps, gas storage tanks, filters, oil mist separators, and proportional valves. This method can adjust the air source stability of the shock wave equipment to improve the use effect of the shock wave equipment and the user experience.
  • the corresponding first air source pressure in the air pump of the shock wave equipment can be obtained, and the first air source pressure can be determined, or only the corresponding second air source pressure in the gas storage tank can be obtained, and the first The pressure of the two gas sources is judged.
  • the gas source in the corresponding device is output, and the corresponding first gas source pressure in the air pump of the shock wave device and the corresponding second gas in the gas storage tank can be obtained at the same time.
  • the source pressure, and the first gas source pressure and the second gas source pressure are judged. Which device is specifically selected, and the gas source pressure in the corresponding device may be determined according to actual conditions, and the present invention is not limited thereto.
  • the invention provides a method for adjusting the stability of a gas source of a shock wave device.
  • the corresponding gas source pressure in each device of the shock wave device is obtained, it is judged whether the pressure of the gas source is within a preset range. If the pressure is not within the preset range, adjust the pressure of the gas source until the pressure of the gas source is within the preset range, and then output the adjusted gas source; if the obtained gas source pressure is within the preset range, it means that The pressure of the gas source is in compliance with the requirements, and the corresponding gas source in each device can be directly output, thereby improving the stability of the gas source of the shock wave equipment and the use effect of the shock wave equipment, and improving the user experience.
  • obtaining the corresponding gas source pressure in each device of the shock wave device is specifically:
  • determining whether the gas source pressure is within a preset range specifically includes:
  • the corresponding first air source in the air pump of the shock wave device is judged.
  • the corresponding air source in the air pump is output.
  • the first safety valve corresponding to the air pump is controlled to be opened to adjust the first air source pressure until the first air source pressure is within the first preset range.
  • the corresponding gas source can be output to ensure the stability of the gas source.
  • the corresponding air source in the output air pump in this embodiment corresponds to step S103; controlling to open the first safety valve corresponding to the air pump to adjust the first air source pressure until the first air source pressure is within a first preset range, and
  • the step of entering the corresponding air source in the output air pump corresponds to step S104.
  • obtaining the corresponding gas source pressure in each component of the shock wave device further includes:
  • determining whether the gas source pressure is within a preset range specifically includes:
  • the stability of the air source of the shock wave device is good.
  • the corresponding gas source in the output gas storage tank in this embodiment corresponds to step S103; the second safety valve corresponding to the gas storage tank is opened to adjust the pressure of the second gas source until the second gas source pressure is at a second preset.
  • the step of entering the corresponding gas source in the gas storage tank within the range corresponds to step S104.
  • Both the first preset range and the second set range are set in advance.
  • the specific setting can be determined based on actual conditions and experience.
  • the first preset range and the second set range are only to distinguish different settings.
  • the ranges are named according to preferences and habits, and have no special meaning; the specific values and naming methods of the first preset range and the second set range will not affect the implementation of the embodiments of the present application.
  • the method further includes:
  • the air source is output in proportion to the proportional valve
  • the proportional valve of the shock wave equipment In order to further ensure the stability of the air source of the shock wave equipment, in addition to determining whether the corresponding first air source pressure in the air pump is within the first preset range, it is also necessary to determine whether the first air source pressure is greater than the proportional valve of the shock wave equipment. The maximum pressure that can be endured. The proportional valve of the shock wave equipment will have a corresponding maximum pressure that can be carried at the factory.
  • the proportional output air source of the valve that is, the air source is further processed by the proportional valve to ensure the stability of the air source of the shock wave device; if it is determined that the first air source pressure is greater than the maximum pressure that the proportional valve of the shock wave device can withstand It is necessary to control the opening of the pressure regulating valve of the shock wave device to adjust the pressure of the first air source until the first air source is less than or equal to the maximum pressure that the proportional valve can withstand. That is, only when the pressure of the first air source is less than or equal to the maximum pressure that the proportional valve of the shock wave equipment can withstand, can the air source be output in proportion to the proportional valve.
  • the stability of the air source of the shock wave device will only be explained when the first air source pressure is within the first preset range and the first air source pressure is less than or equal to the maximum pressure that the proportional valve of the shock wave device can withstand. Is good.
  • the second gas source pressure is within the second preset range, it further includes:
  • the gas storage tank is determined After the absence of water, it also includes:
  • each drainage valve can be selected to monitor the drainage, or it can be drained periodically.
  • the corresponding gas source in the filter is pressed into the oil mist separator of the shock wave equipment to separate the oil mist in the corresponding gas source in the filter, and the drain valve corresponding to the oil mist separator is opened to discharge the oil mist.
  • FIG. 2 is an overall flowchart of the method for adjusting the gas source stability of the shock wave equipment according to an embodiment of the present invention, as shown in FIG. 2
  • the method includes the following steps:
  • step S201 Obtain the corresponding first air source pressure in the air pump of the shock wave device, and determine whether the first air source pressure is within the first preset range. If yes, proceed to step S203, and if not, proceed to step S202;
  • S202 Control the opening of the first safety valve corresponding to the air pump to adjust the first air source pressure until the first air source pressure is within the first preset range, and output the corresponding air source in the air pump, and skip all the following step;
  • step S203 Determine whether the pressure of the first air source is greater than the maximum pressure that the proportional valve of the shock wave device can withstand. If yes, go to step S204; if no, go to step S205;
  • S204 Control the opening of the pressure regulating valve of the shock wave device to adjust the pressure of the first air source until the first air source is less than or equal to the maximum pressure, and output the air source according to the proportion of the proportional valve, and skip all the steps described below;
  • step S205 Control the gas source output by the proportional valve to enter the gas storage tank of the shock wave device, and determine whether the pressure of the second gas source in the gas storage tank is within the second preset range. If yes, go to step S207; if not, Go to step S206;
  • step S207 Determine whether there is water in the gas storage tank, if yes, go to step S208, if not, go to step S209;
  • step S209 Press the corresponding gas source in the gas storage tank into the filter of the shock wave device for filtering, and detect whether there is water in the filter. If yes, go to step S210; if not, go to step S211;
  • step S211 Detect whether there is water in the filter, and if yes, return to step S210, if not. Go to step S212:
  • steps S201, S203, S205, S207, and S209 are not sequential, and they can be judged at the same time, or they can be judged first according to the requirements. Which step and the order of the steps do not affect the implementation of the embodiments of the present application; as a preferred implementation, step S203 is performed after step S201.
  • an embodiment of the present invention also provides a method for adjusting the stability of the gas source of the shock wave device.
  • the embodiments of the device section correspond to the embodiments of the method section, the embodiments of the device section are described with reference to the embodiments of the method section, and will not be repeated here.
  • FIG. 3 is a schematic composition diagram of a device for adjusting the stability of a gas source of a shock wave device according to an embodiment of the present invention. As shown in FIG.
  • An acquisition module 301 configured to acquire the corresponding gas source pressure in each component of the shock wave device
  • the judging module 302 is configured to judge whether the pressure of the gas source is within a preset range. If yes, the output module 303 is triggered; if not, the adjustment module 304 is triggered;
  • An output module 303 configured to output a corresponding gas source in each device
  • An adjustment module 304 is configured to adjust the pressure of the gas source so that the pressure of the gas source is within a preset range, and output the adjusted gas source.
  • the device for adjusting the air source stability of a shock wave device when obtaining the corresponding air source pressure in each component of the shock wave device, it will determine whether the air source pressure is within a preset range. If the pressure is not within the preset range, adjust the pressure of the gas source until the pressure of the gas source is within the preset range, and then output the adjusted gas source; if the obtained gas source pressure is within the preset range, it means that The pressure of the gas source is in compliance with the requirements, and the corresponding gas source in each device can be directly output, thereby improving the stability of the gas source of the shock wave equipment and the use effect of the shock wave equipment, and improving the user experience.
  • an embodiment of a method for adjusting the gas source stability of a shock wave device is described in detail. Based on the method for adjusting the gas source stability of a shock wave device described in the above embodiment, an embodiment of the present invention also provides another method for Method corresponding device. Since the embodiments of the device section correspond to the embodiments of the method section, the embodiments of the device section are described with reference to the embodiments of the method section, and will not be repeated here.
  • FIG. 4 is a schematic diagram of another apparatus for adjusting the stability of a gas source of a shock wave device according to an embodiment of the present invention. As shown in FIG. 4, the apparatus includes a memory 401 and a processor 402.
  • a memory 401 configured to store a computer program
  • the processor 402 is configured to execute a computer program to implement the steps of the method for adjusting stability of a gas source of a shock wave device provided by any one of the foregoing embodiments.
  • Another device for adjusting the stability of the air source of the shock wave device provided by the present invention, when the corresponding air source pressure in each component of the shock wave device is obtained, it is judged whether the air source pressure is within a preset range. If the source pressure is not within the preset range, adjust the gas source pressure until the source pressure is within the preset range, and then output the adjusted gas source; if the obtained source pressure is within the preset range, It shows that the pressure of the gas source is in compliance with the requirements, and the corresponding gas source in each device can be directly output, which can further improve the stability of the gas source of the shock wave equipment and the use effect of the shock wave equipment, and improve the user experience.
  • an embodiment of the present invention also provides a The computer-readable storage medium corresponding to the method. Since the embodiments of the computer-readable storage medium section and the method sections correspond to each other, the embodiments of the computer-readable storage medium section refer to the embodiments of the method section, and are not repeated here.
  • a computer-readable storage medium stores a computer program on the computer-readable storage medium, and the computer program is executed by a processor to implement the steps of the method for adjusting the stability of a gas source of a shock wave device provided by any one of the foregoing embodiments.
  • the present invention provides a computer-readable storage medium.
  • a processor can read a program stored in the readable storage medium, that is, a method for adjusting the stability of a gas source of a shock wave device provided by any one of the foregoing embodiments can be implemented.
  • the air source pressure is within the preset range. If the obtained air source pressure is not within the preset range, the air source pressure is adjusted until the air pressure The source pressure is within the preset range, and then the adjusted gas source is output; if the obtained gas source pressure is within the preset range, it means that the gas source pressure is in compliance with the requirements, and the corresponding gas source in each device is directly output. Yes, the stability of the air source of the shock wave equipment and the use effect of the shock wave equipment can be further improved, thereby improving the user experience.

Abstract

一种调节冲击波设备气源稳定性的方法、装置及存储介质,当获取冲击波设备的各器件中对应的气源压力时(S101),就判断该气源压力是否处于预设范围内(S102),如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源(S104);如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可(S103),进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。

Description

一种调节冲击波设备气源稳定性的方法、装置及存储介质
本申请要求于2018年07月20日提交中国专利局、申请号为201810804935.3、发明名称为“一种调节冲击波设备气源稳定性的方法、装置及存储介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本发明涉及冲击波设备应用领域,特别涉及一种调节冲击波设备气源稳定性的方法、装置及存储介质。
背景技术
随着科技的发展,冲击波设备已在医学上被广泛应用,冲击波设备主要是靠气动压力来工作的,因此确保冲击波设备的气源稳定性是非常重要的。
但是,目前并没有对冲击波设备的气源稳定性进行处理,所以大多数冲击波设备最终输出的气源稳定性均较差,进而会影响冲击波设备的使用效果,用户体验感差。
由此可见,如何确保冲击波设备的气源稳定性,以提高冲击波设备的使用效果以及提升用户体验的问题是本领域技术人员亟待解决的问题。
发明内容
本申请实施例提供了一种调节冲击波设备气源稳定性的方法、装置及存储介质,以解决现有技术中冲击波设备的使用效果以及提升用户体验差的问题。
为解决上述技术问题,本发明提供了一种调节冲击波设备气源稳定性的方法包括:
获取冲击波设备的各器件中对应的气源压力;
判断所述气源压力是否处于预设范围内;
如果是,则输出各所述器件中对应的气源;
如果否,则对所述气源压力进行调节以使所述气源压力处于所述预设范围内,并输出调节后的所述气源。
优选地,所述获取冲击波设备的各器件中对应的气源压力具体为:
获取所述冲击波设备的气泵中对应的第一气源压力;
对应地,所述判断所述气源压力是否处于预设范围内具体包括:
判断所述第一气源压力是否处于第一预设范围内;
如果是,则输出所述气泵中对应的气源;
如果否,则控制打开与所述气泵对应的第一安全阀以对所述第一气源压力进行调节直至所述第一气源压力处于所述第一预设范围内,并进入所述输出所述气泵中对应的气源的步骤。
优选地,所述获取冲击波设备的各器件中对应的气源压力,还包括:
控制所述气泵中对应的气源进入所述冲击波设备的储气罐;
获取所述储气罐中对应的第二气源压力;
对应地,所述判断所述气源压力是否处于预设范围内还包括:
判断所述第二气源压力是否处于第二预设范围内;
如果是,则输出所述储气罐中对应的气源;
如果否,则控制打开与所述储气罐对应的第二安全阀以对所述第二气源压力进行调节直至所述第二气源压力处于所述第二预设范围内,并进入所述输出所述储气罐中对应的气源的步骤。
优选地,在确定所述第一气源压力处于所述第一预设范围内之后,还包括:
判断所述第一气源压力是否大于所述冲击波设备的比例阀所能承受的最大压力;
如果是,则按所述比例阀的比例输出所述气源;
如果否,则控制打开所述冲击波设备的调压阀以对所述第一气源压力进行调节直至所述第一气源小于或等于所述最大压力,并进入所述按所述比例阀的比例输出所述气源的步骤。
优选地,在所述第二气源压力处于所述第二预设范围内之后,还包括:
判断所述储气罐中是否有水;
如果是,则控制打开与所述储气罐对应的排水阀以进行排水,并进入所述判断所述储气罐中是否有水的步骤;
如果否,则进入所述输出所述储气罐中对应的气源的步骤。
优选地,在确定出所述储气罐中没有水之后,还包括:
将所述储气罐中对应的气源压入所述冲击波设备的过滤器中进行过滤,并检测所述过滤器中是否有水;
如果是,则控制打开与所述过滤器对应的排水阀以进行排水,并进入所述检测所述过滤器中是否有水的步骤;
如果否,则输出过滤器中对应的气源。
优选地,在所述输出过滤器中对应的气源之后,还包括:
将所述过滤器中对应的气源压入所述冲击波设备的油雾分离器以分离所述过滤器中对应的气源中的油雾,并控制打开与所述油雾分离器对应的排水阀以排放油雾。
为解决上述技术问题,本发明还提供了一种与调节冲击波设备气源稳定性的方法对应的装置,包括:
获取模块,用于获取冲击波设备的各器件中对应的气源压力;
判断模块,用于判断所述气源压力是否处于预设范围内,如果是,则触发输出模块,如果否,则触发调节模块;
所述输出模块,用于输出各所述器件中对应的气源;
所述调节模块,用于对所述气源压力进行调节以使所述气源压力处于所述预设范围内,并输出调节后的所述气源。
为解决上述技术问题,本发明还提供了另一种与调节冲击波设备气源稳定性的方法对应的装置,包括:
存储器,用于存储计算机程序;
处理器,用于执行所述计算机程序以实现上述任意一种所述的调节冲击波设备气源稳定性的方法的步骤。
为解决上述技术问题,本发明还提供了一种与调节冲击波设备气源稳定性的方法对应的一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行以实现上述任意一种所 述的调节冲击波设备气源稳定性的方法的步骤。
相比于现有技术,本发明所提供的一种调节冲击波设备气源稳定性的方法,当获取冲击波设备的各器件中对应的气源压力时,会判断该气源压力是否处于预设范围内,如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源;如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可,进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。另外,本发明还提供了一种调节冲击波设备气源稳定性的装置及存储介质,效果如上。
附图说明
图1为本发明实施例所提供的一种调节冲击波设备气源稳定性的方法流程图;
图2为本发明实施例所提供的调节冲击波设备气源稳定性的方法总体流程图;
图3为本发明实施例所提供的一种调节冲击波设备气源稳定性的装置组成示意图;
图4为本发明实施例所提供的另一种调节冲击波设备气源稳定性的装置组成示意图。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动的前提下所获得的所有其它实施例,都属于本发明保护的范围。
本发明的核心是提供一种调节冲击波设备气源稳定性的方法、装置及存储介质,可以解决现有技术中冲击波设备的使用效果以及提升用户体验 差的问题。
为了使本技术领域的人员更好地理解本发明的方案,下面结合附图和具体实施方式对本发明作进一步的详细说明。
图1为本发明实施例所提供的一种调节冲击波设备气源稳定性的方法流程图,如图1所示,该方法包括:
S101:获取冲击波设备的各器件中对应的气源压力。
S102:判断气源压力是否处于预设范围内,如果是,则进入步骤S103,如果否,则进入步骤S104。
S103:输出各器件中对应的气源。
S104:对气源压力进行调节以使气源压力处于预设范围内,并输出调节后的气源。
现有技术中,在使用冲击波设备时,并不对冲击波设备的气源稳定性进行判断,即不对冲击波设备的气泵、储气罐、比例阀等器件中的气源压力进行判断,就直接使用冲击波设备,这样就会导致冲击波设备最终输出的气源稳定性较差。
本申请实施例提供的方法,在获取到冲击波设备的各器件中对应的气源压力之后就判断获取的该气源压力是否处于预设范围内,只有当获取的气源压力处于预设范围内时,才输出各器件中对应的气源。并且当获取的气源压力没有处于预设范围内时,就对该气源压力进行调节以使气源压力处于预设范围内,然后再输出调节后的气源。具体地,就是在冲击波设备加电启动后,通过冲击波设备中的核心处理器获取经冲击波设备中的压缩机压入各器件中的对应的气源压力,然后通过该核心处理器判断获取到的气源压力是否处于预设范围内,如果获取的气源压力在预设范围内,就说明该气源压力是符合要求的,是稳定的,这时直接输出与各器件对应的气源即可;如果获取的气源压力没有在预设范围内,就说明此时获取的气源压力是不稳定的,需要对当前气源压力进行调节直至气源压力处于预设范围内,然后在输出调节后的气源(稳定的气源),经过以上步骤对冲击波设备的气源进行处理之后,就可以确保冲击波设备最终输出的气源是稳定的,进而可以提高冲击波设备的使用效果,提升用户体验。在实际应用中,器 件的类型不同,预设范围也不同,具体可根据实际情况进行设定。在实际应用中,冲击波设备的器件可以包括气泵、储气罐、过滤器、油雾分离器以及比例阀等。该方法可以调节冲击波设备的气源稳定性,以提升冲击波设备使用效果以及提升用户体验。
在实际应用时,可以只获取冲击波设备的气泵中对应的第一气源压力,并对第一气源压力进行判断,也可以只获取储气罐中对应的第二气源压力,并对第二气源压力进行判断,只要有其一处于预设范围就输出对应器件中的气源,也可以同时获取冲击波设备的气泵中对应的第一气源压力和储气罐中对应的第二气源压力,并对第一气源压力和第二气源压力进行判断,具体选取哪种器件,并对对应器件中的气源压力进行判断可根据实际情况确定,本发明并不做限定。
本发明所提供的一种调节冲击波设备气源稳定性的方法,当获取冲击波设备的各器件中对应的气源压力时,会判断该气源压力是否处于预设范围内,如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源;如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可,进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。
在上述实施例的基础上,作为优选地实施方式,获取冲击波设备的各器件中对应的气源压力具体为:
获取冲击波设备的气泵中对应的第一气源压力;
对应地,判断气源压力是否处于预设范围内具体包括:
判断第一气源压力是否处于第一预设范围内;
如果是,则输出气泵中对应的气源;
如果否,则控制打开与气泵对应的第一安全阀以对第一气源压力进行调节直至第一气源压力处于第一预设范围内,并进入输出气泵中对应的气源的步骤。
具体地,就是只对冲击波设备的气泵中对应的第一气源压力进行判断,当第一气源压力处于第一预设范围时,就输出气泵中对应的气源,当第一 气源压力没有处于第一预设范围时,就控制打开与气泵对应的第一安全阀以对第一气源压力进行调节直至第一气源压力处于第一预设范围内。也就是说,必须保证第一气源压力处于第一预设范围内时,才能输出对应的气源,以确保气源稳定性。作为优选地实施方式,在本申实施例中,只要气泵中对应的第一气源压力处于第一预设范围内,就可说明冲击波设备的气源稳定性良好。本实施例中的输出气泵中对应的气源对应步骤S103;控制打开与气泵对应的第一安全阀以对第一气源压力进行调节直至第一气源压力处于第一预设范围内,并进入输出气泵中对应的气源的步骤对应步骤S104。
在上述实施例的基础上,作为优选地实施方式,获取冲击波设备的各器件中对应的气源压力还包括:
控制气泵中的气源进入冲击波设备的储气罐;
获取储气罐中对应的第二气源压力;
对应地,判断气源压力是否处于预设范围内具体包括:
判断第二气源压力是否处于第二预设范围内;
如果是,则输出储气罐中对应的气源;
如果否,则控制打开与储气罐对应的第二安全阀以对第二气源压力进行调节直至第二气源压力处于第二预设范围内,并进入输出储气罐中对应的气源的步骤。
为了进一步确保冲击波设备的气源稳定性,不仅需要获取气泵中对应的第一气源压力,判断第一气源压力是否处于第一预设范围内;还需要获取储气罐中对应的第二气源压力,判断第二气源压力是否处于第二预设范围内;并且获取气泵中对应的第一气源压力的步骤和获取储气罐中对应的第二气源的步骤并没有先后顺序之分,只有第二气源压力处于第二预设范围内时,才输出储气罐中对应的气源,以确保气源稳定性。
在申请实施例中,只有第一气源压力处于第一预设范围内且第二气源压力处于第二预设范围内时,才说明冲击波设备的气源稳定性是良好的。本实施例中的输出储气罐中对应的气源对应步骤S103;控制打开与储气罐 对应的第二安全阀以对第二气源压力进行调节直至第二气源压力处于第二预设范围内,并进入输出储气罐中对应的气源的步骤对应步骤S104。
第一预设范围和第二设定范围均是提前设定的,具体设定为多少合适可根据实际情况和经验确定,第一预设范围和第二设定范围只是为了区别不同的设定范围根据喜好和习惯命名的,并没有特殊含义;第一预设范围和第二设定范围的具体数值和命名方式并不会影响本申请实施例的实现。
在上述实施例的基础上,作为优选地实施方式,在第一气源压力处于第一预设范围内之后,还包括:
判断第一气源压力是否大于冲击波设备的比例阀所能承受的最大压力;
如果否,则按比例阀的比例输出气源;
如果是,则控制打开冲击波设备的调压阀以对第一气源压力进行调节直至第一气源小于或等于最大压力,并进入按比例阀的比例输出气源的步骤。
为了进一步确保冲击波设备的气源稳定性,除了需要判断气泵中对应的第一气源压力是否处于第一预设范围内之外,还需要判断第一气源压力是否大于冲击波设备的比例阀所能承受的最大压力,冲击波设备的比例阀在出厂时会有对应的可承载的最大压力,如果确定出第一气源压力小于或等于冲击波设备的比例阀所能承受的最大压力,就按比例阀的比例输出气源,也就是说通过比例阀对气源做进一步处理,以确保冲击波设备的气源稳定性;如果确定出第一气源压力大于冲击波设备的比例阀所能承受的最大压力,就需控制打开冲击波设备的调压阀以对第一气源压力进行调节直至第一气源小于或等于比例阀所能承受的最大压力。也就是说,只有第一气源压力小于或等于冲击波设备的比例阀所能承受的最大压力时,才能按比例阀的比例输出气源。在本申请实施例中只有第一气源压力处于第一预设范围内且第一气源压力小于或等于冲击波设备的比例阀所能承受的最大压力时,才说明冲击波设备的气源稳定性是良好的。
为了防止储气罐中残留的水对冲击波设备的使用效果产生影响,在上述实施例的基础上,作为优选地实施方式,在第二气源压力处于第二预设范围内之后,还包括:
判断储气罐中是否有水;
如果是,则控制打开与储气罐对应的排水阀以进行排水,并进入判断储气罐中是否有水的步骤;
如果否,则进入输出储气罐中对应的气源的步骤。
当确定出储气罐中存在水时,需要控制与储气罐对应的排水阀打开以对储气罐中的水进行排放,直至储气罐中没有水时,才输出储气罐中对应的气源。
为了防止从储气罐中出来的气源含有其它杂质,以及过滤器残留的水对冲击波设备的使用效果产生影响,在上述实施例的基础上,作为优选地实施方式,在确定出储气罐中没有水之后,还包括:
将储气罐中对应的气源压入冲击波设备的过滤器中进行过滤,并检测过滤器中是否有水;
如果是,则控制打开与过滤器对应的排水阀以进行排水,并进入检测过滤器中是否有水的步骤;
如果否,则输出过滤器中对应的气源。
当确定出过滤器中存在水时,需要控制与过滤器对应的排水阀打开以对过滤器中的水进行排放,直至过滤器中没有水时,才输出经过滤后的气源。
需要注意的是,各个排水阀排水可选择循环监测排水,也可以定时排水。
为了防止从过滤器中出来的气源含有油雾,对冲击波设备的使用效果产生影响,在上述实施例的基础上,作为优选地实施方式,在输出过滤器中对应的气源之后,还包括:
将过滤器中对应的气源压入冲击波设备的油雾分离器以分离过滤器中 对应的气源中的油雾,并控制打开与油雾分离器对应的排水阀以排放油雾。
在实际应用中,为了更大程度确定冲击波设备的气源稳定性,一般需要对气泵、储气罐、过滤器、油雾分离器以及比例阀等器件中的气源均进行判断,只有这些器件中的气源均符合要求之后,才说明冲击波设备的气源稳定性是达标的;图2为本发明实施例所提供的调节冲击波设备气源稳定性的方法总体流程图,如图2所示,该方法包括以下步骤:
S201:获取冲击波设备的气泵中对应的第一气源压力,判断第一气源压力是否处于第一预设范围内,如果是,则进入步骤S203,如果否,则进入步骤S202;
S202:控制打开与气泵对应的第一安全阀以对第一气源压力进行调节直至第一气源压力处于第一预设范围内,并输出气泵中对应的气源,并跳过下述所有步骤;
S203:判断第一气源压力是否大于冲击波设备的比例阀所能承受的最大压力,如果是,则进入步骤S204,如果否,则进入步骤S205;
S204:控制打开冲击波设备的调压阀以对第一气源压力进行调节直至第一气源小于或等于最大压力,并按比例阀的比例输出气源,并跳过下述所有步骤;
S205:控制经比例阀输出后的气源进入冲击波设备的储气罐,判断储气罐中的第二气源压力是否处于第二预设范围内,如果是,则进入步骤S207,如果否,则进入步骤S206;
S206:控制打开与储气罐对应的第二安全阀以对第二气源压力进行调节直至第二气源压力处于第二预设范围内,并输出储气罐中对应的气源,并跳过下述所有步骤;
S207:判断储气罐中是否有水,如果是,则进入步骤S208,如果否,则进入步骤S209;
S208:控制打开与储气罐对应的排水阀以进行排水,并进入步骤S207;
S209:将储气罐中对应的气源压入冲击波设备的过滤器中进行过滤,并检测过滤器中是否有水,如果是,则进入步骤S210,如果否,则进入步 骤S211;
S210:控制打开与过滤器对应的排水阀以进行排水;
S211:检测过滤器中是否有水,如果是,则返回步骤S210,如果否。则进入步骤S212:;
S212:将过滤器中对应的气源压入冲击波设备的油雾分离器以分离过滤器中对应的气源中的油雾,并控制打开与油雾分离器对应的排水阀以排放油雾。
为了说明问题,图2中只画出了一种执行顺序流程图,在实际应用中,步骤S201,S203,S205,S207,S209并没有先后顺序,可以同时判断,也可以根据需求确定需要先判断哪个步骤,各个步骤的先后顺序并不会影响本申请实施例的实现;作为优选地实施方式,步骤S203在步骤S201之后执行。
上文中对于一种调节冲击波设备气源稳定性的方法的实施例进行了详细描述,基于上述实施例描述的调节冲击波设备气源稳定性的方法,本发明实施例还提供了一种与该方法对应的装置。由于装置部分的实施例与方法部分的实施例相互对应,因此装置部分的实施例请参照方法部分的实施例描述,这里不再赘述。
图3为本发明实施例所提供的一种调节冲击波设备气源稳定性的装置组成示意图,如图3所示,该装置包括获取模块301,判断模块302,输出模块303以及调节模块304。
获取模块301,用于获取冲击波设备的各器件中对应的气源压力;
判断模块302,用于判断气源压力是否处于预设范围内,如果是,则触发输出模块303,如果否,则触发调节模块304;
输出模块303,用于输出各器件中对应的气源;
调节模块304,用于对气源压力进行调节以使气源压力处于预设范围内,并输出调节后的气源。
本发明所提供的一种调节冲击波设备气源稳定性的装置,当获取冲击波设备的各器件中对应的气源压力时,会判断该气源压力是否处于预设范 围内,如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源;如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可,进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。
上文中对于一种调节冲击波设备气源稳定性的方法的实施例进行了详细描述,基于上述实施例描述的调节冲击波设备气源稳定性的方法,本发明实施例还提供了另一种与该方法对应的装置。由于装置部分的实施例与方法部分的实施例相互对应,因此装置部分的实施例请参照方法部分的实施例描述,这里不再赘述。
图4为本发明实施例所提供的另一种调节冲击波设备气源稳定性的装置组成示意图,如图4所示,该装置包括存储器401和处理器402。
存储器401,用于存储计算机程序;
处理器402,用于执行计算机程序以实现上述任意一个实施例所提供的调节冲击波设备气源稳定性的方法的步骤。
本发明所提供的另一种调节冲击波设备气源稳定性的装置,当获取冲击波设备的各器件中对应的气源压力时,会判断该气源压力是否处于预设范围内,如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源;如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可,进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。
上文中对于一种调节冲击波设备气源稳定性的方法的实施例进行了详细描述,基于上述实施例描述的一种调节冲击波设备气源稳定性的方法,本发明实施例还提供了一种与该方法对应的计算机可读存储介质。由于计算机可读存储介质部分的实施例与方法部分的实施例相互对应,因此计算机可读存储介质部分的实施例请参照方法部分的实施例描述,这里不再赘述。
一种计算机可读存储介质,计算机可读存储介质上存储有计算机程序,计算机程序被处理器执行以实现上述任意一个实施例所提供的调节冲击波设备气源稳定性的方法的步骤。
本发明所提供的一种计算机可读存储介质,处理器可以读取可读存储介质中存储的程序,即可以实现上述任意一个实施例所提供的调节冲击波设备气源稳定性的方法,当获取冲击波设备的各器件中对应的气源压力时,会判断该气源压力是否处于预设范围内,如果获取的气源压力没有处于预设范围内,就对该气源压力进行调节直至该气源压力处于预设范围内,然后再输出调节后的气源;如果获取的气源压力处于预设范围内,就说明该气源压力是符合要求的,直接输出各器件中对应的气源即可,进而可以提高冲击波设备的气源稳定性以及冲击波设备的使用效果,提升了用户体验。
以上对本发明所提供的一种调节冲击波设备气源稳定性的方法、装置及存储介质进行了详细介绍。本文中运用几个实例对本发明的原理及实施方式进行了阐述,以上实施例的说明,只是用于帮助理解本发明的方法及其核心思想;同时,对于本领域的一般技术人员,依据本发明的思想,在具体实施方式及应用范围上均会有改变之处,综上所述,本说明书内容不应理解为对本发明的限制,本领域技术人员,在没有创造性劳动的前提下,对本发明所做出的修改、等同替换、改进等,均应包含在本申请中。
还需要说明的是,在本说明书中,诸如第一和第二等之类的关系术语仅仅用来将一个操作与另一个操作区分开来,而不一定要求或者暗示这些实体或者操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”等类似词,使得包括一系列要素的单元、设备或系统不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种单元、设备或系统所固有的要素。

Claims (10)

  1. 一种调节冲击波设备气源稳定性的方法,其特征在于,包括:
    获取冲击波设备的各器件中对应的气源压力;
    判断所述气源压力是否处于预设范围内;
    如果是,则输出各所述器件中对应的气源;
    如果否,则对所述气源压力进行调节以使所述气源压力处于所述预设范围内,并输出调节后的所述气源。
  2. 根据权利要求1所述的调节冲击波设备气源稳定性的方法,其特征在于,所述获取冲击波设备的各器件中对应的气源压力具体为:
    获取所述冲击波设备的气泵中对应的第一气源压力;
    对应地,所述判断所述气源压力是否处于预设范围内具体包括:
    判断所述第一气源压力是否处于第一预设范围内;
    如果是,则输出所述气泵中对应的气源;
    如果否,则控制打开与所述气泵对应的第一安全阀以对所述第一气源压力进行调节直至所述第一气源压力处于所述第一预设范围内,并进入所述输出所述气泵中对应的气源的步骤。
  3. 根据权利要求2所述的调节冲击波设备气源稳定性的方法,其特征在于,所述获取冲击波设备的各器件中对应的气源压力,还包括:
    控制所述气泵中对应的气源进入所述冲击波设备的储气罐;
    获取所述储气罐中对应的第二气源压力;
    对应地,所述判断所述气源压力是否处于预设范围内还包括:
    判断所述第二气源压力是否处于第二预设范围内;
    如果是,则输出所述储气罐中对应的气源;
    如果否,则控制打开与所述储气罐对应的第二安全阀以对所述第二气源压力进行调节直至所述第二气源压力处于所述第二预设范围内,并进入所述输出所述储气罐中对应的气源的步骤。
  4. 根据权利要求2所述的调节冲击波设备气源稳定性的方法,其特征在于,在确定所述第一气源压力处于所述第一预设范围内之后,还包括:
    判断所述第一气源压力是否大于所述冲击波设备的比例阀所能承受的 最大压力;
    如果是,则按所述比例阀的比例输出所述气源;
    如果否,则控制打开所述冲击波设备的调压阀以对所述第一气源压力进行调节直至所述第一气源小于或等于所述最大压力,并进入所述按所述比例阀的比例输出所述气源的步骤。
  5. 根据权利要求3所述的调节冲击波设备气源稳定性的方法,其特征在于,在所述第二气源压力处于所述第二预设范围内之后,还包括:
    判断所述储气罐中是否有水;
    如果是,则控制打开与所述储气罐对应的排水阀以进行排水,并进入所述判断所述储气罐中是否有水的步骤;
    如果否,则进入所述输出所述储气罐中对应的气源的步骤。
  6. 根据权利要求5所述的调节冲击波设备气源稳定性的方法,其特征在于,在确定出所述储气罐中没有水之后,还包括:
    将所述储气罐中对应的气源压入所述冲击波设备的过滤器中进行过滤,并检测所述过滤器中是否有水;
    如果是,则控制打开与所述过滤器对应的排水阀以进行排水,并进入所述检测所述过滤器中是否有水的步骤;
    如果否,则输出过滤器中对应的气源。
  7. 根据权利要求6所述的调节冲击波设备气源稳定性的方法,其特征在于,在所述输出过滤器中对应的气源之后,还包括:
    将所述过滤器中对应的气源压入所述冲击波设备的油雾分离器以分离所述过滤器中对应的气源中的油雾,并控制打开与所述油雾分离器对应的排水阀以排放油雾。
  8. 一种调节冲击波设备气源稳定性的装置,其特征在于,包括:
    获取模块,用于获取冲击波设备的各器件中对应的气源压力;
    判断模块,用于判断所述气源压力是否处于预设范围内,如果是,则触发输出模块,如果否,则触发调节模块;
    所述输出模块,用于输出各所述器件中对应的气源;
    所述调节模块,用于对所述气源压力进行调节以使所述气源压力处于 所述预设范围内,并输出调节后的所述气源。
  9. 一种调节冲击波设备气源稳定性的装置,其特征在于,包括:
    存储器,用于存储计算机程序;
    处理器,用于执行所述计算机程序以实现如权利要求1至7任意一项所述的调节冲击波设备气源稳定性的方法的步骤。
  10. 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行以实现如权利要求1至7任意一项所述的调节冲击波设备气源稳定性的方法的步骤。
PCT/CN2018/110202 2018-07-20 2018-10-15 一种调节冲击波设备气源稳定性的方法、装置及存储介质 WO2020015212A1 (zh)

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