Setting Method, Device and Terminal Equipment for Air Inlet and Air Outlet of Enclosure Panel
By calculating the height difference and air density difference between the air inlet and exhaust port, and adjusting the neutralization boundary height to determine the accurate air inlet and exhaust area, the problem of inaccurate selection of the heat dissipation area of the enclosure plate is solved and the heat dissipation rate of the waste heat boiler is improved.
Patent Information
- Application Number
- CN202310083393.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-02-02
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2043-02-02
AI Technical Summary
In the prior art, the selection of the heat dissipation area of the enclosure plate is easily affected by subjective factors, resulting in a low heat dissipation rate of the waste heat boiler.
By obtaining the enclosure area of the waste heat boiler, the air density difference and air flow rate, the height difference and residual pressure of the air inlet and exhaust port are calculated, the neutralization boundary height is repeatedly adjusted until the inlet and exhaust area that meet the preset threshold is calculated, and holes are drilled at the corresponding position using the robot arm.
The calculation accuracy of the inlet and exhaust areas is improved, and the heat dissipation rate of the waste heat boiler enclosure is enhanced.
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Figure CN116293626B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of heat dissipation calculation of enclosing panels, and particularly relates to a method, device and terminal device for setting air inlets and air outlets of enclosing panels. Background Art
[0002] When designing the enclosing panel of a waste heat boiler in a gas turbine power plant, it is necessary to design and select a suitable heat dissipation area for the enclosing panel. However, currently, for the selection of the heat dissipation area of the enclosing panel, only experienced technicians determine the heat dissipation area of the enclosing panel based on past experience, which is likely to be inaccurate due to subjective factors when selecting the heat dissipation area, resulting in a low heat dissipation rate of the enclosing panel of the waste heat boiler. Summary of the Invention
[0003] An embodiment of the present invention provides a method, device and terminal device for setting air inlets and air outlets of enclosing panels, which can effectively solve the problem in the prior art that the heat dissipation area is inaccurate due to subjective factors, resulting in a low heat dissipation rate of the enclosing panel of the waste heat boiler.
[0004] An embodiment of the present invention provides a method for setting air inlets and air outlets of enclosing panels, including:
[0005] Obtain the area of the enclosing panel of the waste heat boiler, the air density difference between the indoor and outdoor corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler;
[0006] Repeat the area determination operation until the air inlet area of the preset air inlet and the air exhaust area of the preset air outlet are determined; wherein, the area determination operation includes:
[0007] Determine a current neutralization boundary height, calculate the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, calculate the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculate the inlet static pressure based on the air inlet height difference and the air density difference, and calculate the exhaust static pressure based on the air outlet height difference and the air density difference; calculate the pending air inlet area based on the inlet static pressure and the air flow rate corresponding to the preset air inlet, and calculate the pending air exhaust area based on the exhaust static pressure and the air flow rate corresponding to the preset air outlet; determine whether the ratio of the sum of the pending air inlet area and the pending air exhaust area to the area of the enclosing panel is less than a preset threshold; if so, re-determine the neutralization boundary height for the next execution of the area determination operation; if not, use the pending air inlet area as the air inlet area of the preset air inlet and the pending air exhaust area as the air exhaust area of the preset air outlet;
[0008] Control the corresponding robotic arm to punch holes at the position of the preset air inlet according to the air inlet area, and control the corresponding robotic arm to punch holes at the position of the preset air outlet according to the air outlet area.
[0009] Preferably, calculating the air inlet residual pressure according to the height difference of the air inlet and the air density difference specifically includes:
[0010] Calculating the air inlet residual pressure according to the first formula; wherein, the first formula:
[0011] p j =h j (ρ w -ρ n )g
[0012] Wherein, the p j is the air inlet residual pressure, h j is the height difference of the air inlet, ρ w is the air density outdoors, ρ n is the air density indoors, and g is the acceleration due to gravity.
[0013] Preferably, calculating the air outlet residual pressure according to the height difference of the air outlet and the air density difference specifically includes:
[0014] Calculating the air outlet residual pressure according to the second formula; wherein, the second formula:
[0015] p p =h p (ρ w -ρ n )g
[0016] Wherein, the p p is the air outlet residual pressure, h p is the height difference of the air outlet, ρ w is the air density outdoors, ρ n is the air density indoors, and g is the acceleration due to gravity.
[0017] Preferably, calculating the undetermined air inlet area according to the air inlet residual pressure and the air flow corresponding to the preset air inlet specifically includes:
[0018] Calculating the undetermined air inlet area according to the third formula; wherein, the third formula is:
[0019]
[0020] Wherein, A j is the undetermined air inlet area, L j is the air flow corresponding to the preset air inlet, μ j is the flow coefficient of the air flow corresponding to the preset air inlet, hj is the height difference of the air inlet, ρ w is the air density outdoors, ρ n is the air density indoors, and g is the acceleration due to gravity.
[0021] Preferably, calculating the to-be-determined exhaust area according to the exhaust residual pressure and the air flow rate corresponding to the preset exhaust port specifically includes:
[0022] Calculating the to-be-determined exhaust area according to the fourth formula; wherein, the fourth formula is:
[0023]
[0024] wherein, A p is the to-be-determined exhaust area, L p is the air flow rate corresponding to the preset exhaust port, μ p is the flow coefficient of the air flow rate corresponding to the preset exhaust port, h p is the height difference of the exhaust port, ρ w is the air density outdoors, ρ n is the air density indoors, g is the acceleration due to gravity, ρ a is the air density at the preset exhaust port.
[0025] Preferably, re-determining the neutralization boundary height when performing the area determination operation next time specifically includes:
[0026] Adding the current neutralization boundary height to the preset height value to obtain the neutralization boundary height when performing the area determination operation next time.
[0027] Based on the above method embodiments, the present invention correspondingly provides device embodiments.
[0028] An embodiment of the present invention provides a device for setting the air inlet and air outlet of an enclosure panel, including: a data acquisition module, an area determination module, and a punching control module;
[0029] The data acquisition module is configured to acquire the area of the enclosure panel of the waste heat boiler, the air density difference between indoors and outdoors corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler;
[0030] The area determination module is configured to repeatedly perform the area determination operation until the air inlet area of the preset air inlet and the air exhaust area of the preset air outlet are determined; wherein, the area determination operation includes:
[0031] Determine a current neutralization boundary height, calculate the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, calculate the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculate the incoming air residual pressure according to the air inlet height difference and the air density difference, and calculate the exhaust air residual pressure according to the air outlet height difference and the air density difference; calculate the to-be-determined air inlet area according to the incoming air residual pressure and the air flow rate corresponding to the preset air inlet, and calculate the to-be-determined air outlet area according to the exhaust air residual pressure and the air flow rate corresponding to the preset air outlet; determine whether the ratio of the sum of the to-be-determined air inlet area and the to-be-determined air outlet area to the area of the enclosure panel is less than a preset threshold; if so, re-determine the neutralization boundary height for the next execution of the area determination operation; if not, use the to-be-determined air inlet area as that of the preset air inlet;
[0032] The punching control module is used to control the corresponding robotic arm to punch at the position of the preset air inlet according to the air inlet area, and control the corresponding robotic arm to punch at the position of the preset air outlet according to the air outlet area.
[0033] Based on the above method embodiments, the present invention correspondingly provides embodiments of a terminal device.
[0034] Another embodiment of the present invention provides a terminal device, including a processor, a memory, and a computer program stored in the memory and configured to be executed by the processor. When the processor executes the computer program, it implements the method for setting the air inlet and air outlet of an enclosure panel described in the above embodiments of the present invention.
[0035] Based on the above method embodiments, the present invention correspondingly provides embodiments of a storage medium.
[0036] Another embodiment of the present invention provides a storage medium. The computer-readable storage medium includes a stored computer program. When the computer program runs, it controls the device where the computer-readable storage medium is located to execute the method for setting the air inlet and air outlet of an enclosure panel described in the above embodiments of the present invention.
[0037] By implementing the present invention, the following beneficial effects are achieved:
[0038] The embodiments of the present invention provide a method, device, and terminal device for setting the air inlet and air outlet of an enclosure panel. Compared with the prior art, the present invention first obtains a neutral boundary height, then calculates the height differences between a preset air inlet and a preset air outlet and the neutral boundary height at this neutral boundary height, and calculates the corresponding inlet air pressure and exhaust air pressure of the height differences. Then, based on the inlet air pressure and exhaust air pressure, the undetermined inlet air area and undetermined exhaust air area are obtained. If the ratio of the sum of the undetermined inlet air area and the undetermined exhaust air area to the area of the enclosure panel of the waste heat boiler is greater than or equal to a preset threshold, it indicates that the calculated inlet air area and exhaust air area meet the heat dissipation requirements. Then, the undetermined inlet air area is used as the inlet air area of the preset air inlet, and the undetermined exhaust air area is used as the exhaust air area of the preset air outlet, and the inlet air area and exhaust air area are output. If the ratio of the sum of the undetermined inlet air area and the undetermined exhaust air area to the area of the enclosure panel is less than or equal to the preset threshold, a new neutral boundary height is obtained, and the undetermined inlet air area and undetermined exhaust air area at different neutral boundary heights are continuously calculated until the final inlet air area and exhaust air area are selected after meeting the preset requirements. The present invention calculates the corresponding inlet air area and exhaust air area at different neutral boundary heights to select the heat dissipation area (i.e., the inlet air area and exhaust air area) that meets the preset requirements. When calculating the corresponding inlet air area and exhaust air area at different neutral boundary heights, factors such as the height difference between the air inlet and the neutral boundary height, the height difference between the air outlet and the preset neutral boundary, the air density difference, and the air flow rate are considered, which further improves the calculation accuracy of the inlet air area and exhaust air area, so that a more accurate heat dissipation area can be obtained. When the robotic arm is controlled to punch holes at the positions of the preset air inlet and air outlet according to the inlet air area and exhaust air area, the heat dissipation rate of the final enclosure panel of the waste heat boiler can be effectively improved under the condition of selecting an accurate heat dissipation area. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Figure 1 FIG. is a flowchart of a method for setting the air inlet and air outlet of an enclosure panel according to an embodiment of the present invention.
[0040] Figure 2 FIG. is a structural diagram of a device for setting the air inlet and air outlet of an enclosure panel according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0041] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0042] AsFigure 1 As shown, it is a schematic flowchart of a method for setting the air inlet and air outlet of an enclosure panel provided by an embodiment of the present invention;
[0043] An embodiment of the present invention provides a method for setting the air inlet and air outlet of an enclosure panel, including:
[0044] Step S1: Obtain the area of the enclosure panel of the waste heat boiler, the air density difference between the indoor and outdoor corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler;
[0045] Step S2: Repeat the area determination operation until the air inlet area of the preset air inlet and the air outlet area of the preset air outlet are determined; wherein, the area determination operation includes: determining a current neutralization boundary height, calculating the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, calculating the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculating the inlet static pressure according to the air inlet height difference and the air density difference, and calculating the exhaust static pressure according to the air outlet height difference and the air density difference; calculating the undetermined air inlet area according to the inlet static pressure and the air flow rate corresponding to the preset air inlet, and calculating the undetermined air outlet area according to the exhaust static pressure and the air flow rate corresponding to the preset air outlet; determining whether the ratio of the sum of the areas of the undetermined air inlet area and the undetermined air outlet area to the area of the enclosure panel is less than a preset threshold; if so, re-determine the neutralization boundary height for the next execution of the area determination operation; if not, use the undetermined air inlet area as the air inlet area of the preset air inlet and the undetermined air outlet area as the air outlet area of the preset air outlet;
[0046] Step S3: Control the corresponding robotic arm to punch holes at the position of the preset air inlet according to the air inlet area, and control the corresponding robotic arm to punch holes at the position of the preset air outlet according to the air outlet area.
[0047] For step S1, in a preferred embodiment, obtain the area of the enclosure panel of the waste heat boiler, the air density difference between the indoor and outdoor corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler; specifically, the embodiment of the present invention obtains the data related to the waste heat boiler equipment, so that the air inlet area and air outlet area of the enclosure panel required to discharge the heat of the waste heat boiler can be calculated through HVAC;
[0048] For step S2, in a preferred embodiment, repeat the area determination operation until the air inlet area of the preset air inlet and the air outlet area of the preset air outlet are determined;
[0049] Wherein, the area determination operation includes:
[0050] Determine a current neutralization boundary height, calculate the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, and calculate the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; specifically, that is, after determining a neutralization boundary height, the height difference between the position of the preset air inlet and the neutralization boundary height can be obtained, and the height difference between the preset air outlet and the current neutralization boundary height can be obtained;
[0051] Calculate the incoming air static pressure based on the air inlet height difference and the air density difference, and calculate the exhaust air static pressure based on the air outlet height difference and the air density difference;
[0052] In a preferred embodiment, calculating the incoming air static pressure based on the air inlet height difference and the air density difference specifically includes:
[0053] Calculate the incoming air static pressure according to the first formula; wherein, the first formula:
[0054] p j =h j (ρ w -ρ n )g
[0055] Wherein, the p j is the incoming air static pressure, h j is the air inlet height difference, ρ w is the outdoor air density, ρ n is the indoor air density, and g is the acceleration due to gravity.
[0056] In a preferred embodiment, calculating the exhaust air static pressure based on the air outlet height difference and the air density difference specifically includes:
[0057] Calculate the exhaust air static pressure according to the second formula; wherein, the second formula:
[0058] p p =h p (ρ w -ρ n )g
[0059] Wherein, the p p is the exhaust air static pressure, h p is the air outlet height difference, ρ w is the outdoor air density, ρ n is the indoor air density, and g is the acceleration due to gravity.
[0060] Furthermore, calculate the undetermined incoming air area based on the incoming air static pressure and the air flow rate corresponding to the preset air inlet, and calculate the undetermined exhaust air area based on the exhaust air static pressure and the air flow rate corresponding to the preset air outlet;
[0061] In a preferred embodiment, a to-be-determined air inlet area is calculated based on the remaining air inlet pressure and the air flow rate corresponding to a preset air inlet, which specifically includes:
[0062] The to-be-determined air inlet area is calculated according to a third formula; wherein, the third formula is:
[0063]
[0064] wherein, A j is the to-be-determined air inlet area, L j is the air flow rate corresponding to the preset air inlet, μ j is the flow coefficient of the air flow rate corresponding to the preset air inlet, h j is the height difference of the air inlet, ρ w is the air density outdoors, ρ n is the air density indoors, and g is the acceleration due to gravity.
[0065] In a preferred embodiment, a to-be-determined air outlet area is calculated based on the remaining air outlet pressure and the air flow rate corresponding to a preset air outlet, which specifically includes:
[0066]
[0067] wherein, A p is the to-be-determined air inlet area, L p is the air flow rate corresponding to the preset air outlet, μ p is the flow coefficient of the air flow rate corresponding to the preset air outlet, h p is the height difference of the air outlet, ρ w is the air density outdoors, ρ n is the air density indoors, g is the acceleration due to gravity, and ρ a is the air density at the preset air outlet;
[0068] After calculating the to-be-determined air inlet area and the to-be-determined air outlet area, it is judged whether the ratio of the sum of the areas obtained by adding the to-be-determined air inlet area and the to-be-determined air outlet area to the area of the enclosure panel is less than a preset threshold;
[0069] If so, it indicates that the to-be-determined air inlet area and the to-be-determined air outlet area do not meet the preset requirements, and the neutral boundary height for the next execution of the area determination operation is re-determined to further calculate the air inlet area and the air outlet area corresponding to different neutral boundaries; wherein, the re-determination of the neutral boundary height for the next execution of the area determination operation specifically includes:
[0070] After adding the current neutralization boundary height to the preset height value, the neutralization boundary height for the next execution of the area determination operation is obtained; wherein, the preset height value includes positive or negative numbers to achieve upward and downward adjustment of the neutralization boundary height, and to make the final air inlet area and exhaust air area; the calculation results are more accurate and more in line with the heat dissipation requirements of the waste heat boiler;
[0071] If not, it means that the to-be-determined air inlet area and to-be-determined exhaust air area meet the preset requirements, then the to-be-determined air inlet area is used as the air inlet area of the preset air inlet, and the to-be-determined exhaust air area is used as the exhaust air area of the preset exhaust outlet.
[0072] In the embodiment of the present invention, by calculating the air inlet area and exhaust air area corresponding to different neutralization boundary heights, the heat dissipation area (i.e., the air inlet area and exhaust air area) that meets the preset requirements is selected. When calculating the air inlet area and exhaust air area corresponding to different neutralization boundary heights, factors such as the height difference between the air inlet and the neutralization boundary height, the height difference between the exhaust outlet and the preset neutralization boundary, the air density difference, and the air flow rate are considered, further improving the calculation accuracy of the air inlet area and exhaust air area, so that a more accurate heat dissipation area can be obtained, and the heat dissipation rate of the enclosure panel of the waste heat boiler is improved.
[0073] For step S3, in a preferred embodiment, according to the air inlet area, the corresponding robotic arm is controlled to punch holes at the position of the preset air inlet, and according to the exhaust air area, the corresponding robotic arm is controlled to punch holes at the position of the preset exhaust outlet;
[0074] Specifically, the air inlet area is sent to the corresponding robotic arm so that the robotic arm corresponding to the air inlet is controlled to punch holes at the position of the preset air inlet, and the punching area is the air inlet area received by the robotic arm;
[0075] Specifically, the exhaust air area is sent to the corresponding robotic arm so that the robotic arm corresponding to the exhaust outlet is controlled to punch holes at the position of the preset exhaust outlet, and the punching area is the exhaust air area received by the robotic arm.
[0076] Schematically, taking the robotic arm receiving the air inlet area as an example, after the robotic arm receives the air inlet area, it moves to the position of the preset air inlet, and based on two adjacent sides of the preset air inlet area, after intercepting the corresponding air inlet area in the preset air inlet area according to the received air inlet area, holes are punched in the intercepted air inlet area to obtain the corresponding air inlet area at the position of the preset air inlet.
[0077] In a preferred embodiment, the embodiment of the present invention further includes: calculating the heat dissipation ventilation volume of the waste heat boiler according to the heat dissipation amount of the waste heat boiler, specifically including:
[0078] The exhaust air temperature of the waste heat boiler is calculated according to the fifth formula; wherein, the fifth formula is:
[0079] t p = t j + a * c
[0080] Wherein, t p is the exhaust air temperature of the waste heat boiler, t j is the outdoor ventilation temperature of the waste heat boiler, a is a preset parameter, and c is the specific heat capacity of air at constant pressure;
[0081] The ventilation volume for heat dissipation of the waste heat boiler is calculated according to the sixth formula; wherein, the sixth formula is:
[0082]
[0083] Wherein, L is the ventilation volume for heat dissipation of the waste heat boiler, Q is the heat dissipation of the waste heat boiler, t p is the exhaust air temperature of the waste heat boiler, t j is the outdoor ventilation temperature of the waste heat boiler, and c is the specific heat capacity of air at constant pressure.
[0084] That is, the heat dissipation area of the corresponding waste heat boiler can be determined through the obtained ventilation volume for heat dissipation of the waste heat boiler.
[0085] In a preferred embodiment, after determining the position of the enclosure panel according to the actual application scenario, taking the inlet area and exhaust area that meet the preset requirements obtained from the HVAC calculation as the lower limit, if the ratio of the sum of the calculated inlet area and exhaust area to the area of the enclosure panel is 60%, then at the preset position, such as in the area near zero meters and the steam drum equipment layer, an enclosure panel with a perforation rate of 60% is set to meet the requirements of the HVAC calculation results and make the heat dissipation effect of the corresponding enclosure panel better.
[0086] Such as Figure 2 shown, based on the embodiments of the above various methods for setting the air inlets and outlets of the enclosure panel, the present invention correspondingly provides an apparatus embodiment;
[0087] An embodiment of the present invention provides a device for setting the air inlets and outlets of an enclosure panel, including: a data acquisition module, an area determination module, and a punching control module;
[0088] The data acquisition module is used to acquire the area of the enclosure panel of the waste heat boiler, the air density difference between the indoor and outdoor of the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler;
[0089] The area determination module is used to repeatedly execute the area determination operation until the inlet area of the preset air inlet and the exhaust area of the preset air outlet are determined; wherein, the area determination operation includes:
[0090] Determine a current neutralization boundary height, calculate the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, calculate the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculate the incoming air static pressure based on the air inlet height difference and the air density difference, and calculate the exhaust air static pressure based on the air outlet height difference and the air density difference; calculate the to-be-determined air inlet area based on the incoming air static pressure and the air flow rate corresponding to the preset air inlet, and calculate the to-be-determined air outlet area based on the exhaust air static pressure and the air flow rate corresponding to the preset air outlet; determine whether the ratio of the sum of the to-be-determined air inlet area and the to-be-determined air outlet area to the area of the enclosure panel is less than a preset threshold; if so, re-determine the neutralization boundary height for the next execution of the area determination operation; if not, use the to-be-determined air inlet area as that of the preset air inlet;
[0091] The punching control module is configured to control the corresponding robotic arm to punch at the position of the preset air inlet according to the air inlet area, and control the corresponding robotic arm to punch at the position of the preset air outlet according to the air outlet area.
[0092] It should be noted that the device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units. They may be located in one place or distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. In addition, in the drawings of the device embodiments provided by the present invention, the connection relationship between modules indicates that they have a communication connection, which can be specifically implemented as one or more communication buses or signal lines. Those of ordinary skill in the art can understand and implement without creative effort.
[0093] Those skilled in the art can clearly understand that for the convenience and brevity, the specific working process of the device described above can refer to the corresponding process in the foregoing method embodiment, and will not be elaborated herein.
[0094] Based on the embodiments of the above various methods for setting the air inlets and air outlets of the enclosure panel, the present invention correspondingly provides embodiments of a terminal device.
[0095] An embodiment of the present invention provides a terminal device, including a processor, a memory, and a computer program stored in the memory and configured to be executed by the processor. When the processor executes the computer program, it implements a method for setting the air inlets and air outlets of an enclosure panel according to any method embodiment of the present invention.
[0096] The terminal device can be a computing terminal device such as a desktop computer, a notebook, a palm computer, and a cloud server. The terminal device may include, but is not limited to, a processor and a memory.
[0097] The so-called processor may be a Central Processing Unit (CPU), or may also be other general-purpose processors, 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, discrete hardware components, etc. The general-purpose processor may be a microprocessor or the processor may also be any conventional processor, etc. The processor is the control center of the terminal device, and connects various parts of the entire terminal device through various interfaces and lines.
[0098] The memory can be used to store the computer program. The processor realizes various functions of the terminal device by running or executing the computer program stored in the memory and calling the data stored in the memory. The memory may mainly include a program storage area and a data storage area. Among them, the program storage area can store an operating system, application programs required for at least one function, etc.; the data storage area can store data created according to the use of the mobile phone, etc. In addition, the memory may include high-speed random access memory, and may also include non-volatile memory, such as a hard disk, a memory, a plug-in hard disk, a Smart Media Card (SMC), a Secure Digital (SD) card, a Flash Card, at least one magnetic disk storage device, a flash memory device, or other volatile solid-state storage devices.
[0099] Based on the embodiments of the above various methods for setting the air inlet and air outlet of the enclosure panel, the present invention correspondingly provides an embodiment of a storage medium.
[0100] An embodiment of the present invention provides a storage medium, which includes a stored computer program. Among them, when the computer program runs, it controls the device where the computer-readable storage medium is located to execute a method for setting the air inlet and air outlet of an enclosure panel according to any one of the method embodiments of the present invention.
[0101] The storage medium is a computer-readable storage medium, and the computer program is stored in the computer-readable storage medium. When the computer program is executed by a processor, the steps of the above-mentioned various method embodiments can be implemented. Among them, the computer program includes computer program code, and the computer program code can be in the form of source code, object code, executable file or some intermediate form, etc. The computer-readable medium may include: any entity or device capable of carrying the computer program code, recording medium, USB flash drive, mobile hard disk, magnetic disk, optical disc, computer memory, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), electrical carrier signal, telecommunication signal, and software distribution medium, etc. It should be noted that the content included in the computer-readable medium can be appropriately increased or decreased according to the requirements of legislation and patent practice within the jurisdiction. For example, in some jurisdictions, according to legislation and patent practice, the computer-readable medium does not include electrical carrier signals and telecommunication signals.
[0102] The above is the preferred embodiment of the present invention. It should be pointed out that for those of ordinary skill in the art of the present technology, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements are also regarded as the protection scope of the present invention.
Claims
1. A method for setting the air inlet and air outlet of an enclosure panel, characterized in that, Including: Obtaining the enclosure panel area of the waste heat boiler, the air density difference between the indoor and outdoor corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler; Repeatedly performing the area determination operation until the air inlet area of the preset air inlet and the air outlet area of the preset air outlet are determined; wherein, the area determination operation includes: determining a current neutralization boundary height, calculating the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, calculating the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculating the air inlet residual pressure according to the air inlet height difference and the air density difference, and calculating the air outlet residual pressure according to the air outlet height difference and the air density difference; calculating the to-be-determined air inlet area according to the air inlet residual pressure and the air flow rate corresponding to the preset air inlet, and calculating the to-be-determined air outlet area according to the air outlet residual pressure and the air flow rate corresponding to the preset air outlet; determining whether the ratio of the sum of the to-be-determined air inlet area and the to-be-determined air outlet area to the enclosure panel area is less than a preset threshold; if so, re-determining the neutralization boundary height for the next execution of the area determination operation; if not, taking the to-be-determined air inlet area as the air inlet area of the preset air inlet and taking the to-be-determined air outlet area as the air outlet area of the preset air outlet; Controlling the corresponding robotic arm to punch holes at the position of the preset air inlet according to the air inlet area, and controlling the corresponding robotic arm to punch holes at the position of the preset air outlet according to the air outlet area.
2. The method for setting the air inlet and air outlet of an enclosure panel according to claim 1, characterized in that, The calculating the air inlet residual pressure according to the air inlet height difference and the air density difference specifically includes: Calculating the air inlet residual pressure according to the first formula; wherein, the first formula: Among them, the is the inlet air static pressure, is the height difference of the air inlet, is the air density outdoors, is the air density indoors, and g is the acceleration due to gravity.
3. The method for setting the air inlet and air outlet of an enclosure panel according to claim 1, characterized in that, The calculating the air outlet residual pressure according to the air outlet height difference and the air density difference specifically includes: Calculating the air outlet residual pressure according to the second formula; wherein, the second formula: Among them, the is the exhaust residual pressure, is the height difference of the exhaust outlet, is the air density outdoors, is the air density indoors, and g is the acceleration due to gravity.
4. The method for setting the air inlet and air outlet of an enclosure panel as described in claim 1, characterized in that, The calculating the to-be-determined air inlet area according to the air inlet residual pressure and the air flow rate corresponding to the preset air inlet specifically includes: Calculating the to-be-determined air inlet area according to the third formula; wherein, the third formula is: Among them, is the to-be-determined air inlet area, is the air flow rate corresponding to the preset air inlet, is the flow coefficient of the air flow rate corresponding to the preset air inlet, is the height difference of the air inlet, is the air density outdoors, is the air density indoors, and g is the acceleration due to gravity.
5. The method for setting the air inlet and air outlet of an enclosure panel according to claim 1, characterized in that, The calculating the to-be-determined air outlet area according to the air outlet residual pressure and the air flow rate corresponding to the preset air outlet specifically includes: Calculating the to-be-determined air outlet area according to the fourth formula; wherein, the fourth formula is: Among them, is the undetermined exhaust area, is the air flow rate corresponding to the preset exhaust outlet, is the flow coefficient of the air flow rate corresponding to the preset exhaust outlet, is the height difference of the exhaust outlet, is the air density outdoors, is the air density indoors, and g is the acceleration due to gravity, is the air density at the preset exhaust outlet.
6. The method for setting the air inlet and air outlet of the enclosure panel according to claim 1, characterized in that, The re-determining the neutralization boundary height for the next execution of the area determination operation specifically includes: Adding the current neutralization boundary height to the preset height value to obtain the neutralization boundary height for the next execution of the area determination operation.
7. An air inlet and air outlet setting device for an enclosure panel, characterized in that, For implementing a method for setting the air inlet and air outlet of an enclosure panel according to any one of claims 1-6; The setting device includes: a data acquisition module, an area determination module, and a punching control module; The data acquisition module is used to obtain the enclosure panel area of the waste heat boiler, the air density difference between the indoor and outdoor corresponding to the waste heat boiler, the air flow rate corresponding to the preset air inlet of the waste heat boiler, and the air flow rate corresponding to the preset air outlet of the waste heat boiler; The area determination module is configured to repeatedly execute the area determination operation until the air intake area of the preset air inlet and the air exhaust area of the preset air outlet are determined; wherein, the area determination operation includes: Determine a current neutralization boundary height, calculate the height difference between the preset air inlet and the neutralization boundary height to obtain the air inlet height difference, and calculate the height difference between the preset air outlet and the current neutralization boundary height to obtain the air outlet height difference; calculate the air intake residual pressure according to the air inlet height difference and the air density difference, and calculate the air exhaust residual pressure according to the air outlet height difference and the air density difference; calculate the to-be-determined air intake area according to the air intake residual pressure and the air flow rate corresponding to the preset air inlet, and calculate the to-be-determined air exhaust area according to the air exhaust residual pressure and the air flow rate corresponding to the preset air outlet; determine whether the ratio of the sum of the areas obtained by adding the to-be-determined air intake area and the to-be-determined air exhaust area to the area of the enclosure panel is less than a preset threshold; if so, re-determine the neutralization boundary height for the next execution of the area determination operation; if not, use the to-be-determined air intake area as that of the preset air inlet; The punching control module is configured to control the corresponding robotic arm to punch at the position of the preset air inlet according to the air intake area, and control the corresponding robotic arm to punch at the position of the preset air outlet according to the air exhaust area.
8. A terminal device, characterized in that, It includes a processor, a memory, and a computer program stored in the memory and configured to be executed by the processor. When the processor executes the computer program, it implements a method for setting the air inlet and air outlet of an enclosure panel as described in any one of claims 1 to 6.
9. A storage medium, characterized in that, The storage medium includes a stored computer program, wherein when the computer program runs, it controls the device where the storage medium is located to execute a method for setting the air inlet and air outlet of an enclosure panel as described in any one of claims 1 to 6.
Citation Information
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