Hospital treatment room sterilization method, device, equipment and storage medium
By monitoring the total number of airborne bacteria and biological information in real time within the disinfection equipment, and switching between air purification and ozone sterilization modes, the problem of untimely air disinfection in hospital consultation rooms is solved, achieving efficient disinfection of air and object surfaces.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-27
- Publication Date
- 2026-03-24
AI Technical Summary
Existing technologies are insufficient for real-time disinfection of airborne bacteria in hospital consultation rooms, resulting in poor sterilization effects.
By setting up a detection module in the disinfection equipment to monitor the total number of bacteria and biological information in the air in real time, the air purification control mode and ozone sterilization control mode are switched according to the time period. Combined with the release strategies of different bactericidal substances, intelligent disinfection of air and object surfaces is achieved.
It enables rapid disinfection of air and object surfaces in hospital consultation rooms, ensuring real-time effectiveness and safety of sterilization. By intelligently controlling the concentration and type of different sterilizing substances, it improves sterilization efficiency and safety.
Smart Images

Figure CN119139513B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electrical equipment technology, and in particular to a method for sterilizing a hospital consultation room, a sterilization device for a hospital consultation room, an electronic device, and a computer storage medium. Background Technology
[0002] Hospitals have a large number of pathogenic bacteria in their ambient air and on object surfaces. Common disinfection methods include soaking, wiping, or spraying with disinfectant. While these methods can effectively kill bacteria, they cannot disinfect bacteria in the air in real time, resulting in poor sterilization effects. Summary of the Invention
[0003] In view of the above problems, embodiments of the present invention are proposed to provide a hospital consultation room sterilization method, a hospital consultation room sterilization device, an electronic device, and a computer storage medium that overcome or at least partially solve the above problems.
[0004] To address the aforementioned problems, in a first aspect of this invention, an embodiment of the invention discloses a sterilization method for hospital consultation rooms, applied to disinfection equipment, the method comprising:
[0005] Get the current time during startup;
[0006] In response to the current time being working hours; detect the total number of bacteria in the air in the consultation room;
[0007] The air purification control mode is determined based on the total number of bacteria.
[0008] In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0009] The ozone sterilization control mode is determined based on the aforementioned biological information;
[0010] Execute the air purification control mode or the ozone sterilization control mode.
[0011] Optionally, the disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes:
[0012] The total number of bacteria in the air in the consultation room is periodically obtained from the detection module.
[0013] Optionally, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the step of determining the air purification control mode based on the total number of bacteria includes:
[0014] Determine whether the total number of bacteria is greater than a preset first bacterial threshold;
[0015] In response to the total number of bacteria exceeding a preset first bacterial threshold, the high-level air purification mode is activated.
[0016] In response to the total number of bacteria not exceeding a preset first bacterial threshold, the low-level air purification mode is activated.
[0017] Optionally, the step of activating the low-level air purification mode in response to the total number of bacteria not exceeding a preset first bacterial threshold includes:
[0018] In response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold;
[0019] In response to the total number of bacteria exceeding a preset second bacterial threshold, the low-level air purification mode is activated.
[0020] In response to the total number of bacteria exceeding a preset second bacterial threshold, a standby command is generated, which is used to control the disinfection equipment to be in standby mode.
[0021] Optionally, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0022] Optionally, the step of determining the ozone sterilization control mode based on the biological information includes:
[0023] In response to the biological information indicating the absence of living organisms, the ozone sterilization control mode is activated.
[0024] In response to the biological information indicating the presence of living organisms, the ozone sterilization control mode is activated with a delay.
[0025] Optionally, the method further includes:
[0026] After the ozone sterilization control mode is completed, the ozone concentration is detected;
[0027] The ventilation mode is activated in response to an ozone concentration exceeding the preset ozone concentration.
[0028] In response to the ozone concentration not exceeding a preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state.
[0029] In a second aspect, embodiments of the present invention disclose a sterilization device for hospital consultation rooms, applied to disinfection equipment, the device comprising:
[0030] The first acquisition module is used to acquire the current time during startup;
[0031] The first detection module is used to detect the total number of bacteria in the air in the consultation room in response to the current time being working hours.
[0032] The first mode determination module is used to determine the air purification control mode based on the total number of bacteria.
[0033] The second detection module is used to detect biometric information in the consultation room in response to the current time being outside of working hours;
[0034] The second mode determination module is used to determine the ozone sterilization control mode based on the biological information.
[0035] An execution module is used to execute the air purification control mode or the ozone sterilization control mode.
[0036] Optionally, the disinfection device includes a detection module located at the air outlet, the first detection module comprising:
[0037] The first detection submodule is used to periodically obtain the total number of bacteria in the air of the consultation room detected by the detection module.
[0038] Optionally, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the first mode determination module includes:
[0039] The first judgment submodule is used to determine whether the total number of bacteria is greater than a preset first bacterial threshold.
[0040] The first response submodule is used to activate the high-level air purification mode in response to the total number of bacteria exceeding a preset first bacteria threshold.
[0041] The second response submodule is used to activate the low-level air purification mode in response to the total number of bacteria not being greater than a preset first bacterial threshold.
[0042] Optionally, the second response submodule includes:
[0043] The determination unit is configured to determine whether the total number of bacteria is greater than a preset second bacterial threshold in response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold.
[0044] The first response unit is used to activate the low-level air purification mode in response to the total number of bacteria exceeding a preset second bacterial threshold.
[0045] The second response unit is used to generate a standby command in response to the total number of bacteria exceeding a preset second bacterial threshold. The standby command is used to control the disinfection equipment to be in standby mode.
[0046] Optionally, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0047] Optionally, the second mode determination module includes:
[0048] The third response submodule is used to activate the ozone sterilization control mode in response to the biological information indicating the absence of life.
[0049] The fourth response submodule is used to delay the activation of the ozone sterilization control mode in response to the biological information indicating the presence of living organisms.
[0050] Optionally, the device further includes:
[0051] The third detection module is used to detect the ozone concentration after the ozone sterilization control mode is executed;
[0052] The third mode determination module is used to activate the ventilation mode in response to an ozone concentration that is greater than a preset ozone concentration.
[0053] The fourth mode determination module is used to generate a shutdown command in response to the ozone concentration not being greater than the preset ozone concentration. The shutdown command is used to control the disinfection equipment to be in a shutdown state.
[0054] In a third aspect of the invention, an embodiment of the invention discloses an electronic device, including a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements the steps of the hospital consultation room sterilization method as described above.
[0055] In a fourth aspect, embodiments of the present invention disclose a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of the hospital consultation room sterilization method as described above.
[0056] The embodiments of the present invention have the following advantages:
[0057] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room. Attached Figure Description
[0058] Figure 1 This is a flowchart illustrating the steps of an embodiment of a sterilization method for a hospital consultation room according to the present invention;
[0059] Figure 2 This is a flowchart illustrating the steps of another embodiment of the hospital consultation room sterilization method of the present invention;
[0060] Figure 3 This is a flowchart illustrating the steps of a sterilization method for a hospital consultation room according to the present invention;
[0061] Figure 4 This is a schematic diagram illustrating the execution mode of an example of a sterilization method for a hospital consultation room according to the present invention;
[0062] Figure 5 This is a structural block diagram of an embodiment of a sterilization device for a hospital consultation room according to the present invention;
[0063] Figure 6 This is a structural block diagram of an electronic device provided in an embodiment of the present invention;
[0064] Figure 7 This is a structural block diagram of a storage medium provided in an embodiment of the present invention. Detailed Implementation
[0065] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0066] Reference Figure 1 The diagram illustrates a flowchart of an embodiment of a sterilization method for a hospital consultation room according to the present invention. The sterilization method for a hospital consultation room is applied to a disinfection device and specifically includes the following steps:
[0067] Step 101: During startup, obtain the current time;
[0068] After the disinfection equipment is activated, the current time can be obtained. The current time is the real time corresponding to the geographical location of the consultation room. It is then determined whether the current time falls within the consultation room's working hours. The consultation room's working hours can be determined according to the user's preset settings, and this embodiment of the invention does not impose specific limitations on this.
[0069] Step 102, in response to the current time being during working hours; detect the total number of bacteria in the air in the consultation room;
[0070] If the current time is during working hours, a sterilizing substance that can coexist with humans needs to be released to achieve real-time disinfection without affecting the user's normal activities. It can respond to the current working hours and detect the total number of bacteria in the air in the consultation room.
[0071] Step 103: Determine the air purification control mode based on the total number of bacteria;
[0072] The total number of bacteria in the air in the consultation room determines the level of disinfection required in the consultation room, and the corresponding air purification control mode is then implemented.
[0073] Step 104: In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0074] When the current time is during working hours, a more potent bactericidal substance can be released for deep disinfection of the consultation room. It can also detect biometric information in the consultation room when the current time is outside of working hours.
[0075] Step 105: Determine the ozone sterilization control mode based on the biological information;
[0076] By using bioinformatics to determine whether there are any organisms in the consultation room, the corresponding ozone sterilization control mode is activated to carry out corresponding deep disinfection work.
[0077] Step 106: Execute the air purification control mode or the ozone sterilization control mode.
[0078] Once it is determined that an air purification control mode or an ozone sterilization control mode needs to be implemented, the air purification control mode or the ozone sterilization control mode can be implemented to sterilize the consultation room accordingly.
[0079] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0080] Reference Figure 2 The diagram illustrates a flowchart of another embodiment of a hospital consultation room sterilization method according to the present invention. The hospital consultation room sterilization method is applied to a disinfection device and may specifically include the following steps:
[0081] Step 201: During startup, obtain the current time;
[0082] After the disinfection equipment is started, the current time can be obtained. This time can be acquired from the real-time clock chip inside the equipment, through network time synchronization, or from a GPS (Global Positioning System) module. A real-time clock chip is an electronic component that maintains accurate time even when power or network is off. It is typically battery-powered to keep its internal timer running. The RTC chip contains components such as a crystal oscillator circuit, frequency divider, and counter, generating a stable clock signal and recording the time to achieve its time-keeping function. Obtaining time through network synchronization occurs when the disinfection equipment is connected to a network; it can synchronize with a time server on the internet using mechanisms such as the Network Time Protocol (NTP) to obtain accurate time information. A GPS module obtains accurate time information by receiving signals from satellites.
[0083] Step 202, in response to the current time being during working hours; detect the total number of bacteria in the air in the consultation room;
[0084] When the current time is during working hours, it can respond to the current time being during working hours; detect the total number of bacteria in the air in the consultation room.
[0085] Specifically, the disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes: periodically acquiring the total number of bacteria in the air of the consultation room detected by the detection module.
[0086] The system can periodically obtain the total number of bacteria in the air of the consultation room detected by the detection module, thereby periodically determining the current bacterial distribution in the consultation room.
[0087] Step 203: Determine the air purification control mode based on the total number of bacteria;
[0088] In this embodiment of the invention, an air purification control mode can be determined based on different total bacterial counts, thereby performing corresponding sterilization.
[0089] Specifically, the air purification control mode includes a high-level air purification mode and a low-level air purification mode. The sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode. The step of determining the air purification control mode based on the total number of bacteria includes: determining whether the total number of bacteria is greater than a preset first bacterial threshold; activating the high-level air purification mode in response to the total number of bacteria being greater than the preset first bacterial threshold; and activating the low-level air purification mode in response to the total number of bacteria not being greater than the preset first bacterial threshold.
[0090] In this embodiment of the invention, the air purification control mode includes a high-level air purification mode and a low-level air purification mode. The sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode. For example, low-level operation means that the sterilization module runs for 1 hour to complete the sterilization of bacteria in the air, while high-level operation means that the sterilization module runs for 2 hours to complete the sterilization of bacteria in the air. Furthermore, a preset first bacterial threshold is used to characterize the state of excessive bacterial count in the consultation room. This threshold can be determined according to the actual situation, and the specific value is not specifically limited in this embodiment of the invention. For example, the preset first bacterial threshold can be 2000 CFU / m³. 3 (Total number of bacterial communities per cubic meter of air).
[0091] The system determines whether the total bacterial count exceeds a preset first bacterial threshold. Methods for determining this include, but are not limited to, the difference method, the comparison method, and the number line method. If the total bacterial count exceeds the preset first bacterial threshold, it indicates excessive bacteria in the consultation room, requiring immediate disinfection. In response to the total bacterial count exceeding the preset first bacterial threshold, the system activates a high-level air purification mode for rapid and extensive disinfection. If the total bacterial count is below the preset first bacterial threshold, it indicates that the bacteria in the consultation room are within a controllable range, allowing for low-power disinfection to reduce energy consumption. Alternatively, in response to the total bacterial count exceeding the preset first bacterial threshold, the system can activate a low-level air purification mode.
[0092] Further, the step of activating the low-level air purification mode in response to the total number of bacteria not exceeding a preset first bacterial threshold includes:
[0093] In response to the total number of bacteria not being greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold; in response to the total number of bacteria being greater than the preset second bacterial threshold, the low-level air purification mode is activated; in response to the total number of bacteria being greater than the preset second bacterial threshold, a standby command is generated, wherein the standby command is used to control the disinfection equipment to be in standby mode.
[0094] When the total bacterial count is not greater than a preset first bacterial threshold, it can be further determined whether to activate the disinfection equipment or operate in a low-level air purification mode. This can be determined using a second bacterial threshold. The second bacterial threshold is less than the first bacterial threshold. The specific value of the preset second bacterial threshold is not limited in this embodiment of the invention. For example, the preset second bacterial threshold can be 500 CFU / m³. 3 .
[0095] Determine if the total bacterial count exceeds a preset second bacterial threshold. If the total bacterial count exceeds the preset second bacterial threshold, it indicates that disinfection equipment needs to be activated for sterilization. In response to the total bacterial count exceeding the preset second bacterial threshold, the air purification low-level mode can be activated.
[0096] When the total bacterial count is not greater than a preset second bacterial threshold, it means that the disinfection equipment does not need to be activated for sterilization. Instead, a standby command can be generated in response to a total bacterial count exceeding the preset second bacterial threshold. This standby command initiates a standby state, awaiting activation for disinfection.
[0097] In summary, to illustrate with an example, when the detection module detects a total bacterial count of <500 CFU / m³ in the air... 3 At this time, the disinfection equipment is in standby mode and not running. When the detection module detects that the total number of bacteria in the air is between 500 and 2000 CFEU / m³, the disinfection equipment will be activated. 3 When the air purifier is in low-level air purification mode, the detection module will detect a total number of bacteria in the air of >2000 CFEU / m³. 3 At this time, the air purifier is in high-level air purification mode, which completes the disinfection of the air in the room.
[0098] In addition, when the current time is the working time of the consultation room, considering that the patients who come for treatment have different conditions and release different concentrations of germs into the surrounding environment, the concentration of bacteria in the air can be tested every 2 hours.
[0099] Step 204: In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0100] When the current time is outside of working hours, the system can detect biometric information in the consultation room. In practical applications, biometric information in the consultation room can be detected using methods such as infrared detection.
[0101] Step 205: Determine the ozone sterilization control mode based on the biological information;
[0102] After obtaining biological information, an oxygen sterilization control mode can be determined based on the biological information, thereby carrying out in-depth disinfection.
[0103] Specifically, the step of determining the ozone sterilization control mode based on the biological information includes: in response to the biological information indicating the absence of living organisms, activating the ozone sterilization control mode; and in response to the biological information indicating the presence of living organisms, delaying the activation of the ozone sterilization control mode.
[0104] The presence of living organisms in a consultation room can be determined using bioinformatics. For example, infrared radiation can be used to detect heat to identify biological information. If the heat detected matches that of a human or other living organism, then a living organism is present; otherwise, if no matching heat is detected, no living organism is present. When no living organism is present, ozone can be released for disinfection. Alternatively, in response to the absence of biological information, an ozone sterilization control mode can be activated to utilize ozone for disinfection. The disinfection equipment can also utilize electro-purification, where the active substances generated by the discharge come into contact with bacteria and inactivate them. Increasing the operating voltage significantly increases the ozone concentration, allowing it to diffuse throughout the room and disinfect surfaces.
[0105] If living organisms are present, the ozone sterilization control mode is activated with a delay until the organisms leave the consultation room before sterilization is carried out. This mechanism can respond to biological information indicating the presence of living organisms and delay the activation of the ozone sterilization control mode.
[0106] Step 206: Execute the air purification control mode or the ozone sterilization control mode;
[0107] Once the air purification control mode or ozone sterilization control mode is determined, it can be executed.
[0108] In summary, the execution process can be referenced. Figure 3 When it is determined whether to execute the air purification control mode or the ozone sterilization control mode, the corresponding voltage control is performed to generate and release the corresponding substance.
[0109] Step 207: After the ozone sterilization control mode is completed, the ozone concentration is detected;
[0110] After the ozone sterilization control mode is completed, the ozone concentration can be detected.
[0111] Step 208: In response to the ozone concentration being greater than the preset ozone concentration, the ventilation mode is activated;
[0112] When the ozone concentration exceeds a preset ozone concentration, meaning the ozone concentration in the consultation room is too high, the ventilation mode can be activated to exchange and circulate air with the outside. The preset ozone concentration can be determined according to actual needs, and this embodiment of the invention does not impose a specific limitation on it. For example, the preset ozone concentration can be 50 ppb (parts per billion).
[0113] Step 209: In response to the ozone concentration not being greater than the preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state;
[0114] When the ozone concentration is not greater than the preset ozone concentration, the device can be shut down directly. In response to the ozone concentration not being greater than the preset ozone concentration, a shutdown command can be generated to control the disinfection equipment to be in a shutdown state.
[0115] In summary, the disinfection process during non-working hours is as follows: When the current time is non-working, the presence of biological information in the ward is detected. If no biological information is found, the disinfection equipment activates ozone sterilization mode. Ozone is released into the room by adjusting the operating voltage. After disinfecting the surfaces of objects in the room, the ozone concentration in the air is detected. When the ozone concentration in the air is <50 ppb, the disinfection equipment is turned off. When the ozone concentration in the room is >50 ppb, the smart window is controlled to ventilate the room. When the ozone concentration in the air is <50 ppb, the disinfection equipment is turned off.
[0116] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air in the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; executing either the air purification control mode or the ozone sterilization control mode; detecting the ozone concentration after executing the ozone sterilization control mode; activating a ventilation mode if the ozone concentration is greater than a preset ozone concentration; and generating a shutdown command if the ozone concentration is not greater than a preset ozone concentration, the shutdown command being used to control the disinfection equipment to be in a shutdown state. Disinfection is performed through two different working modes, purifying the air in the room in real time and using ozone to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0117] To enable those skilled in the art to clearly understand the implementation process of this invention, the following example illustrates the process: the disinfection equipment used is an air purification device.
[0118] You can refer to Figure 4 After turning on the air purification equipment, determine whether it is currently working hours in the consultation room.
[0119] Currently, it is the consultation room's working hours, and the detection module has detected a total airborne bacterial count of 500–mCFU / m³. 3 When the air purifier is running at low speed, the active substances generated by the discharge of the electro-purification module come into contact with bacteria, inactivating them and completing the disinfection of bacteria in the room air. Where m is greater than 500.
[0120] Currently, it is the consultation room's working hours, and the detection module has detected a total airborne bacterial count between m and n CFU / m³. 3 When the air purifier is running at high speed, the active substances generated by the discharge of the electro-purification module come into contact with bacteria, inactivating them and completing the disinfection of bacteria in the room air. Here, n is greater than m.
[0121] When it is currently non-working time in the consultation room and there is no biometric information in the ward, the air purifier turns on ozone sterilization mode. Ozone diffuses to various places in the room to disinfect the surfaces of objects. After the disinfection of the surfaces of objects in the room is completed, the ozone concentration in the air is detected. When the ozone concentration in the air is <50ppb, the air purifier is turned off. When the ozone concentration in the air in the room is >50ppb, the smart window is controlled to ventilate the room. When the ozone concentration in the air is <50ppb, the air purifier is turned off.
[0122] It should be noted that, for the sake of simplicity, the method embodiments are all described as a series of actions. However, those skilled in the art should understand that the embodiments of the present invention are not limited to the described order of actions, because according to the embodiments of the present invention, some steps can be performed in other orders or simultaneously. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions involved are not necessarily essential to the embodiments of the present invention.
[0123] Reference Figure 5 The diagram shows a structural block diagram of an embodiment of a hospital consultation room sterilization device according to the present invention. The hospital consultation room sterilization device is applied to disinfection equipment, and the hospital consultation room sterilization device may specifically include the following modules:
[0124] The first acquisition module 501 is used to acquire the current time during startup;
[0125] The first detection module 502 is used to detect the total number of bacteria in the air of the consultation room in response to the current time being working time.
[0126] The first mode determination module 503 is used to determine the air purification control mode based on the total number of bacteria.
[0127] The second detection module 504 is used to detect biological information in the consultation room in response to the current time being a non-working time.
[0128] The second mode determination module 505 is used to determine the ozone sterilization control mode based on the biological information.
[0129] The execution module 506 is used to execute the air purification control mode or the ozone sterilization control mode.
[0130] In an optional embodiment of the present invention, the disinfection device includes a detection module located at the air outlet, the first detection module 502 comprising:
[0131] The first detection submodule is used to periodically obtain the total number of bacteria in the air of the consultation room detected by the detection module.
[0132] In an optional embodiment of the present invention, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the first mode determination module 503 includes:
[0133] The first judgment submodule is used to determine whether the total number of bacteria is greater than a preset first bacterial threshold.
[0134] The first response submodule is used to activate the high-level air purification mode in response to the total number of bacteria exceeding a preset first bacteria threshold.
[0135] The second response submodule is used to activate the low-level air purification mode in response to the total number of bacteria not being greater than a preset first bacterial threshold.
[0136] In an optional embodiment of the present invention, the second response submodule includes:
[0137] The determination unit is configured to determine whether the total number of bacteria is greater than a preset second bacterial threshold in response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold.
[0138] The first response unit is used to activate the low-level air purification mode in response to the total number of bacteria exceeding a preset second bacterial threshold.
[0139] The second response unit is used to generate a standby command in response to the total number of bacteria exceeding a preset second bacterial threshold. The standby command is used to control the disinfection equipment to be in standby mode.
[0140] In an optional embodiment of the present invention, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0141] In an optional embodiment of the present invention, the second mode determination module 505 includes:
[0142] The third response submodule is used to activate the ozone sterilization control mode in response to the biological information indicating the absence of life.
[0143] The fourth response submodule is used to delay the activation of the ozone sterilization control mode in response to the biological information indicating the presence of living organisms.
[0144] In an optional embodiment of the present invention, the device further includes:
[0145] The third detection module is used to detect the ozone concentration after the ozone sterilization control mode is executed;
[0146] The third mode determination module is used to activate the ventilation mode in response to an ozone concentration that is greater than a preset ozone concentration.
[0147] The fourth mode determination module is used to generate a shutdown command in response to the ozone concentration not being greater than the preset ozone concentration. The shutdown command is used to control the disinfection equipment to be in a shutdown state.
[0148] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0149] As the device embodiment is basically similar to the method embodiment, the description is relatively simple, and relevant parts can be found in the description of the method embodiment.
[0150] Reference Figure 6 The present invention also provides an electronic device, comprising:
[0151] The device includes a processor 601 and a storage medium 602, wherein the storage medium 602 stores a computer program executable by the processor 601. When the electronic device is running, the processor 601 executes the computer program to implement the hospital consultation room sterilization method as described in any of the embodiments of the present invention.
[0152] The sterilization method for hospital consultation rooms is applied to disinfection equipment, and the method includes:
[0153] Get the current time during startup;
[0154] In response to the current time being working hours; detect the total number of bacteria in the air in the consultation room;
[0155] The air purification control mode is determined based on the total number of bacteria.
[0156] In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0157] The ozone sterilization control mode is determined based on the aforementioned biological information;
[0158] Execute the air purification control mode or the ozone sterilization control mode.
[0159] Optionally, the disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes:
[0160] The total number of bacteria in the air in the consultation room is periodically obtained from the detection module.
[0161] Optionally, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the step of determining the air purification control mode based on the total number of bacteria includes:
[0162] Determine whether the total number of bacteria is greater than a preset first bacterial threshold;
[0163] In response to the total number of bacteria exceeding a preset first bacterial threshold, the high-level air purification mode is activated.
[0164] In response to the total number of bacteria not exceeding a preset first bacterial threshold, the low-level air purification mode is activated.
[0165] Optionally, the step of activating the low-level air purification mode in response to the total number of bacteria not exceeding a preset first bacterial threshold includes:
[0166] In response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold;
[0167] In response to the total number of bacteria exceeding a preset second bacterial threshold, the low-level air purification mode is activated.
[0168] In response to the total number of bacteria exceeding a preset second bacterial threshold, a standby command is generated, which is used to control the disinfection equipment to be in standby mode.
[0169] Optionally, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0170] Optionally, the step of determining the ozone sterilization control mode based on the biological information includes:
[0171] In response to the biological information indicating the absence of living organisms, the ozone sterilization control mode is activated.
[0172] In response to the biological information indicating the presence of living organisms, the ozone sterilization control mode is activated with a delay.
[0173] Optionally, the method further includes:
[0174] After the ozone sterilization control mode is completed, the ozone concentration is detected;
[0175] The ventilation mode is activated in response to an ozone concentration exceeding the preset ozone concentration.
[0176] In response to the ozone concentration not exceeding a preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state.
[0177] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0178] The memory may include random access memory (RAM) or non-volatile memory, such as at least one disk storage device. Optionally, the memory may also be at least one storage device located remotely from the aforementioned processor.
[0179] The processors mentioned above can be general-purpose processors, including central processing units (CPUs), network processors (NPs), etc.; they can also be digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components.
[0180] Reference Figure 7 The present invention also provides a computer-readable storage medium 701, on which a computer program is stored, and the computer program is executed by a processor to perform the hospital consultation room sterilization method as described in any one of the embodiments of the present invention.
[0181] The sterilization method for hospital consultation rooms is applied to disinfection equipment, and the method includes:
[0182] Get the current time during startup;
[0183] In response to the current time being working hours; detect the total number of bacteria in the air in the consultation room;
[0184] The air purification control mode is determined based on the total number of bacteria.
[0185] In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0186] The ozone sterilization control mode is determined based on the aforementioned biological information;
[0187] Execute the air purification control mode or the ozone sterilization control mode.
[0188] Optionally, the disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes:
[0189] The total number of bacteria in the air in the consultation room is periodically obtained from the detection module.
[0190] Optionally, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the step of determining the air purification control mode based on the total number of bacteria includes:
[0191] Determine whether the total number of bacteria is greater than a preset first bacterial threshold;
[0192] In response to the total number of bacteria exceeding a preset first bacterial threshold, the high-level air purification mode is activated.
[0193] In response to the total number of bacteria not exceeding a preset first bacterial threshold, the low-level air purification mode is activated.
[0194] Optionally, the step of activating the low-level air purification mode in response to the total number of bacteria not exceeding a preset first bacterial threshold includes:
[0195] In response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold;
[0196] In response to the total number of bacteria exceeding a preset second bacterial threshold, the low-level air purification mode is activated.
[0197] In response to the total number of bacteria exceeding a preset second bacterial threshold, a standby command is generated, which is used to control the disinfection equipment to be in standby mode.
[0198] Optionally, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0199] Optionally, the step of determining the ozone sterilization control mode based on the biological information includes:
[0200] In response to the biological information indicating the absence of living organisms, the ozone sterilization control mode is activated.
[0201] In response to the biological information indicating the presence of living organisms, the ozone sterilization control mode is activated with a delay.
[0202] Optionally, the method further includes:
[0203] After the ozone sterilization control mode is completed, the ozone concentration is detected;
[0204] The ventilation mode is activated in response to an ozone concentration exceeding the preset ozone concentration.
[0205] In response to the ozone concentration not exceeding a preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state.
[0206] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0207] This invention also discloses a computer program product, including a computer program that, when executed by a processor, implements the steps of the hospital consultation room sterilization method as described above.
[0208] The sterilization method for hospital consultation rooms is applied to disinfection equipment, and the method includes:
[0209] Get the current time during startup;
[0210] In response to the current time being working hours; detect the total number of bacteria in the air in the consultation room;
[0211] The air purification control mode is determined based on the total number of bacteria.
[0212] In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room;
[0213] The ozone sterilization control mode is determined based on the aforementioned biological information;
[0214] Execute the air purification control mode or the ozone sterilization control mode.
[0215] Optionally, the disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes:
[0216] The total number of bacteria in the air in the consultation room is periodically obtained from the detection module.
[0217] Optionally, the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode, and the step of determining the air purification control mode based on the total number of bacteria includes:
[0218] Determine whether the total number of bacteria is greater than a preset first bacterial threshold;
[0219] In response to the total number of bacteria exceeding a preset first bacterial threshold, the high-level air purification mode is activated.
[0220] In response to the total number of bacteria not exceeding a preset first bacterial threshold, the low-level air purification mode is activated.
[0221] Optionally, the step of activating the low-level air purification mode in response to the total number of bacteria not exceeding a preset first bacterial threshold includes:
[0222] In response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold;
[0223] In response to the total number of bacteria exceeding a preset second bacterial threshold, the low-level air purification mode is activated.
[0224] In response to the total number of bacteria exceeding a preset second bacterial threshold, a standby command is generated, which is used to control the disinfection equipment to be in standby mode.
[0225] Optionally, the preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
[0226] Optionally, the step of determining the ozone sterilization control mode based on the biological information includes:
[0227] In response to the biological information indicating the absence of living organisms, the ozone sterilization control mode is activated.
[0228] In response to the biological information indicating the presence of living organisms, the ozone sterilization control mode is activated with a delay.
[0229] Optionally, the method further includes:
[0230] After the ozone sterilization control mode is completed, the ozone concentration is detected;
[0231] The ventilation mode is activated in response to an ozone concentration exceeding the preset ozone concentration.
[0232] In response to the ozone concentration not exceeding a preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state.
[0233] This invention also discloses that during startup, the following steps are taken: acquiring the current time; responding to the current time being during working hours; detecting the total number of bacteria in the air of the consultation room; determining an air purification control mode based on the total number of bacteria; responding to the current time being during non-working hours; detecting biological information in the consultation room; determining an ozone sterilization control mode based on the biological information; and executing either the air purification control mode or the ozone sterilization control mode. By using two different working modes for disinfection, the air in the room is purified in real time, and ozone is used to disinfect object surfaces while controlling the ozone concentration in the room. This achieves intelligent release of different concentrations and types of bactericides, enabling rapid disinfection of the air and object surfaces in the consultation room.
[0234] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.
[0235] Those skilled in the art will understand that embodiments of the present invention can be provided as methods, apparatus, or computer program products. Therefore, embodiments of the present invention can take the form of entirely hardware embodiments, entirely software embodiments, or embodiments combining software and hardware aspects. Furthermore, embodiments of the present invention can take the form of computer program products implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0236] This invention is described with reference to flowchart illustrations and / or block diagrams of methods, terminal devices (systems), and computer program products according to embodiments of the invention. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing terminal device to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing terminal device, generate instructions for implementing the flowchart illustrations and / or block diagrams. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0237] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing terminal device to operate in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0238] These computer program instructions can also be loaded onto a computer or other programmable data processing terminal equipment, causing a series of operational steps to be performed on the computer or other programmable terminal equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable terminal equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0239] Although preferred embodiments of the present invention have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments as well as all changes and modifications falling within the scope of the embodiments of the present invention.
[0240] Finally, it should be noted that in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or terminal device. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or terminal device that includes said element.
[0241] The present invention has provided a detailed description of a sterilization method for a hospital consultation room, a sterilization device for a hospital consultation room, an electronic device, and a computer storage medium. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The descriptions of the above embodiments are only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present invention. Therefore, the content of this specification should not be construed as a limitation of the present invention.
Claims
1. A method for sterilizing a hospital consultation room, characterized in that, The method, applied to disinfection equipment, includes: Get the current time during startup; In response to the current time being working hours; detect the total number of bacteria in the air in the consultation room; The air purification control mode is determined based on the total number of bacteria; the air purification control mode includes a high-level air purification mode and a low-level air purification mode, and the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode. In response to the fact that the current time is outside of working hours, detect biometric information in the consultation room; The ozone sterilization control mode is determined based on the aforementioned biological information; Execute the air purification control mode or the ozone sterilization control mode; The step of determining the air purification control mode based on the total number of bacteria includes: Determine whether the total number of bacteria is greater than a preset first bacterial threshold; In response to the total number of bacteria exceeding a preset first bacterial threshold, the high-level air purification mode is activated. In response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, it is determined whether the total number of bacteria is greater than a preset second bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold; In response to the total number of bacteria exceeding a preset second bacterial threshold, the low-level air purification mode is activated. In response to the total number of bacteria exceeding a preset second bacterial threshold, a standby command is generated, which is used to control the disinfection equipment to be in standby mode; The step of determining the ozone sterilization control mode based on the biological information includes: delaying the activation of the ozone sterilization control mode in response to the biological information indicating the presence of organisms.
2. The method according to claim 1, characterized in that, The disinfection equipment includes a detection module located at the air outlet, and the step of detecting the total number of bacteria in the air of the consultation room includes: The total number of bacteria in the air in the consultation room is periodically obtained from the detection module.
3. The method according to claim 1, characterized in that, The preset first bacterial threshold is 2000 CFU / m³. 3 The preset second bacterial threshold is 500 CFU / m³. 3 .
4. The method according to claim 1, characterized in that, The step of determining the ozone sterilization control mode based on the biological information further includes: In response to the biological information indicating the absence of living organisms, the ozone sterilization control mode is activated.
5. The method according to claim 1, characterized in that, The method further includes: After the ozone sterilization control mode is completed, the ozone concentration is detected; The ventilation mode is activated in response to an ozone concentration exceeding the preset ozone concentration. In response to the ozone concentration not exceeding a preset ozone concentration, a shutdown command is generated, which is used to control the disinfection equipment to be in a shutdown state.
6. A sterilization device for a hospital consultation room, characterized in that, Applied to disinfection equipment, the device includes: The first acquisition module is used to acquire the current time during startup; The first detection module is used to detect the total number of bacteria in the air in the consultation room in response to the current time being working hours. The first mode determination module is used to determine the air purification control mode based on the total number of bacteria; the air purification control mode includes a high-level air purification mode and a low-level air purification mode, wherein the sterilization intensity of the high-level air purification mode is greater than that of the low-level air purification mode. The second detection module is used to detect biometric information in the consultation room in response to the current time being outside of working hours; The second mode determination module is used to determine the ozone sterilization control mode based on the biological information. An execution module is used to execute the air purification control mode or the ozone sterilization control mode; The first mode determination module includes: The first judgment submodule is used to determine whether the total number of bacteria is greater than a preset first bacterial threshold. The first response submodule is used to activate the high-level air purification mode in response to the total number of bacteria exceeding a preset first bacteria threshold. The second response submodule is used to activate the low-level air purification mode in response to the total number of bacteria not being greater than a preset first bacteria threshold. The second response submodule includes: The determination unit is configured to determine whether the total number of bacteria is greater than a preset second bacterial threshold in response to the fact that the total number of bacteria is not greater than a preset first bacterial threshold, wherein the preset second bacterial threshold is less than the preset first bacterial threshold. The first response unit is used to activate the low-level air purification mode in response to the total number of bacteria exceeding a preset second bacterial threshold. The second response unit is used to generate a standby command in response to the total number of bacteria exceeding a preset second bacterial threshold. The standby command is used to control the disinfection equipment to be in standby mode. The second mode determination module includes: The fourth response submodule is used to delay the activation of the ozone sterilization control mode in response to the biological information indicating the presence of living organisms.
7. An electronic device, characterized in that, It includes a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements the steps of the hospital consultation room sterilization method as described in any one of claims 1-5.
8. A computer-readable storage medium, characterized in that, A computer program is stored on the computer-readable storage medium, which, when executed by a processor, implements the steps of the hospital consultation room sterilization method as described in any one of claims 1-5.
Citation Information
Patent Citations
Air purification method, system, device and storage medium
CN111706966A
Elevator disinfection and sterilization system for infectious disease hospitals
CN213059790U