Construction method for medical equipment installation based on intelligent three-dimensional analysis
By determining the expansion bolt type and torque through intelligent three-dimensional analysis, reasonably setting the installation spacing and conducting simulation verification, the problem of insufficient stability in the installation of medical equipment was solved, the efficiency and accuracy of medical equipment installation were achieved, and the stability and safety of the wall were ensured.
Patent Information
- Application Number
- CN202411700194.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2044-11-26
AI Technical Summary
In the prior art, when medical equipment is installed, the wall supporting equipment is not stable enough, which leads to safety hazards.
Through a method based on intelligent 3D analysis, the expansion bolt type and torque are determined, the installation spacing is reasonably set, and the eligibility of the installation spacing and expansion state is verified through intelligent 3D analysis simulation, and the spacing or torque is adjusted to meet the requirements.
It improves the stability of medical equipment installation, prevents safety issues such as wall cracking and falling off caused by improper installation, and ensures sufficient strength and stability of the wall.
Smart Images

Figure CN119646910B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical equipment, and in particular to a construction method for installing medical equipment based on intelligent three-dimensional analysis. Background Art
[0002] Medical equipment belts are used in hospitals to house medical oxygen, medical negative pressure, medical air, call and retention bedside lamps, switches and sockets, information network equipment, pure water pipes, sewage pipes, and other related equipment. Typically installed at the head of a hospital bed, they secure medical gas terminals, call and intercom system extension buttons, power distribution, lighting, and network equipment. However, with the advancement and development of medical equipment and the diversity of related specialties, the demand for medical equipment has increased, and so have the requirements for medical belts. Furthermore, due to layout constraints, traditional medical belts must be integrated into the wall, with gas pipelines running along the wall to the inside of the medical belt.
[0003] Chinese patent application publication number CN116831848A discloses an adjustable medical belt and its construction process, comprising: a device box, a fixing plate disposed on one side of the device box, and a leveling assembly disposed between the fixing plate and the device box; the leveling assembly includes a plurality of adjustment bolts, each of which is connected to the fixing plate and the device box at both ends; and a plurality of adjustment holes formed on a side wall of the device box facing the fixing plate. The adjustment holes correspond to the adjustment bolts, and the adjustment bolts engage with the corresponding adjustment holes, and the adjustment bolts slide in contact with the inner walls of the corresponding adjustment holes. However, the prior art suffers from the following problems: the wall surface in the prior art cannot maintain sufficient strength when supporting the device, resulting in low stability of the medical device installation. Summary of the Invention
[0004] To this end, the present invention provides a construction method for installing medical equipment based on intelligent three-dimensional analysis, so as to overcome the problem of low stability of medical equipment installation in the prior art.
[0005] To achieve the above objectives, the present invention provides a construction method for installing medical equipment based on intelligent three-dimensional analysis, comprising:
[0006] Determining the type of expansion bolt based on a comparison result between the weight of the equipment to be supported on the wall to be constructed and a preset weight, and determining the torque of the expansion bolt, wherein the expansion bolt type includes a sleeve type expansion bolt and a non-sleeve type expansion bolt;
[0007] Under the condition that the type of the expansion bolts is determined, the installation spacing of the expansion bolts is determined based on the comparison result of the wall strength evaluation value of the wall to be constructed and the preset wall strength evaluation value;
[0008] Based on the intelligent 3D analysis simulation, the comprehensive evaluation value of the wall surface and the wall body after drilling is compared with the preset comprehensive evaluation value to determine the eligibility of the installation spacing of the expansion bolts;
[0009] Under the condition that it is determined that the installation spacing of the expansion bolts is unqualified, determining to adjust the installation spacing of the expansion bolts based on a comparison result between a preset comprehensive evaluation value and a difference between the comprehensive evaluation value and the preset difference;
[0010] The eligibility of the expansion bolts is determined by comparing the state evaluation value of the expansion bolts under the load-bearing environment simulated by intelligent three-dimensional analysis with the preset state evaluation value;
[0011] Under the condition that the expansion bolt is determined to be unqualified for expansion, the torque of the expansion bolt is adjusted based on a comparison result of a preset state evaluation value and a ratio of the state evaluation value and a preset ratio.
[0012] Furthermore, based on the comparison result that the weight of the equipment to be supported on the wall to be constructed is less than or equal to the preset weight, the expansion bolt type is determined to be a sleeve-type expansion bolt, and the torque of the expansion bolt is determined to be 4-8 N·m.
[0013] Furthermore, based on the comparison result that the wall material evaluation value of the wall to be constructed is greater than the preset wall material evaluation value, the expansion bolt type is determined to be a non-sleeve expansion bolt, and the torque of the expansion bolt is determined to be 9-13 N·m.
[0014] Furthermore, under the condition of determining the type of expansion bolts, the installation spacing of the expansion bolts is determined to be 6-9cm based on the comparison result that the wall strength evaluation value of the wall to be constructed is less than or equal to the preset wall strength evaluation value, and the installation spacing of the expansion bolts is determined to be unqualified based on the comparison result that the comprehensive evaluation value of the wall and the wall after intelligent three-dimensional analysis simulation drilling is less than or equal to the preset comprehensive evaluation value.
[0015] Furthermore, under the condition of determining the type of expansion bolts, the installation spacing of the expansion bolts is determined to be 10-13cm based on the comparison result that the wall strength evaluation value of the wall to be constructed is greater than the preset wall strength evaluation value, and the installation spacing of the expansion bolts is determined to be unqualified based on the comparison result that the comprehensive evaluation value of the wall and the wall after the intelligent three-dimensional analysis simulation drilling is less than or equal to the preset comprehensive evaluation value.
[0016] Furthermore, under the condition that the installation spacing of the expansion bolts is determined to be unqualified, based on the comparison result that the preset comprehensive evaluation value and the difference between the comprehensive evaluation value is less than or equal to the preset difference, it is determined that the installation spacing of the expansion bolts is increased by the first preset spacing adjustment coefficient.
[0017] Furthermore, under the condition that the installation spacing of the expansion bolts is determined to be unqualified, based on the comparison result that the preset comprehensive evaluation value and the difference between the comprehensive evaluation value is greater than the preset difference, it is determined that the installation spacing of the expansion bolts is increased by a second preset spacing adjustment coefficient.
[0018] Furthermore, based on the comparison result that the state evaluation value of the expansion bolt under the load-bearing environment simulated by the intelligent three-dimensional analysis is less than or equal to the preset state evaluation value, it is determined that the expansion of the expansion bolt is unqualified.
[0019] Furthermore, under the condition that the expansion of the expansion bolt is determined to be unqualified, the torque of the expansion bolt is increased by the first preset torque adjustment coefficient based on a comparison result that the ratio of the state evaluation value to the preset state evaluation value is less than or equal to the preset ratio.
[0020] Furthermore, under the condition that the expansion of the expansion bolt is determined to be unqualified, the torque of the expansion bolt is increased by a second preset torque adjustment coefficient based on a comparison result that the ratio of the state evaluation value to the preset state evaluation value is greater than the preset ratio.
[0021] Compared with the existing technology, the beneficial effect of the present invention lies in that the present invention selects the type and torque of expansion bolts based on the weight of the equipment, reasonably sets the installation spacing of the expansion bolts based on the wall strength assessment, and uses intelligent three-dimensional analysis technology to verify the eligibility of the installation spacing and expansion state. In the case of non-compliance, the spacing or torque is adjusted until the requirements are met. The application of intelligent three-dimensional analysis simulation technology makes the pre-construction assessment and adjustment work more efficient and accurate, accurately calculating and adjusting the installation spacing and torque of the expansion bolts, and ensuring that the wall can maintain sufficient strength and stability when supporting the equipment. This helps prevent safety issues such as wall cracking and falling off due to improper installation, thereby improving the stability of medical equipment installation.
[0022] Furthermore, the present invention determines the type of expansion bolts and the torque by the weight of the equipment, and determines the installation spacing according to the wall strength evaluation value to optimize the wall bearing capacity, ensuring that the wall has sufficient strength and stability when bearing the equipment, effectively avoiding safety problems caused by improper installation, and thus improving the stability of medical equipment installation.
[0023] Furthermore, the present invention verifies the eligibility of the expansion bolt installation spacing through intelligent three-dimensional analysis and simulation, and adjusts the installation spacing according to the difference between the comprehensive evaluation value and the preset comprehensive evaluation value to ensure the installation quality and improve the accuracy of the installation spacing determination. Through intelligent analysis and adjustment, structural problems caused by improper installation spacing are effectively avoided, and the bearing capacity of the wall and the stability of the medical equipment installation are improved.
[0024] Furthermore, the present invention verifies the expansion state of the expansion bolt through intelligent three-dimensional analysis simulation, and adjusts the torque of the expansion bolt according to the comparison result of the state evaluation value of the expansion bolt and the preset state evaluation value to ensure the tightening effect of the expansion bolt, thereby realizing accurate evaluation of the expansion state of the expansion bolt and intelligent adjustment of the torque, effectively improving the installation quality, ensuring the safety of the expansion bolt under the load-bearing environment, and thus improving the stability of the installation of medical equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a flowchart of a construction method for installing medical equipment based on intelligent three-dimensional analysis according to an embodiment of the present invention;
[0026] Figure 2 This is a structural schematic diagram of a construction method for installing medical equipment based on intelligent three-dimensional analysis according to an embodiment of the present invention;
[0027] Figure 3 This is a structural diagram of the expansion bolt usage scenario according to an embodiment of the present invention.
[0028] Figure 4 A flow chart for determining the eligibility of expansion bolt installation spacing according to an embodiment of the present invention;
[0029] Figure 5 A flow chart for determining expansion eligibility of expansion bolts according to an embodiment of the present invention;
[0030] In the figure, 1. Expansion bolts; 2. Wall to be constructed; 3. Equipment to be loaded. DETAILED DESCRIPTION
[0031] In order to make the objects and advantages of the present invention more clearly understood, the present invention is further described below in conjunction with embodiments; it should be understood that the specific embodiments described herein are merely used to explain the present invention and are not intended to limit the present invention.
[0032] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood by those skilled in the art that these embodiments are only used to explain the technical principles of the present invention and are not intended to limit the scope of protection of the present invention.
[0033] It should be pointed out that the data in this embodiment are obtained by comprehensive analysis and evaluation of the historical test data and the corresponding historical test results of the three months before this test. It can be understood by those skilled in the art that the present invention can determine the above parameters for a single item by selecting the value with the highest proportion as the preset standard parameter based on the data distribution, using weighted summation to use the obtained value as the preset standard parameter, substituting each historical data into a specific formula and using the value obtained by the formula as the preset standard parameter or other selection methods, as long as the system of the present invention can clearly define the different specific situations in the single determination process through the obtained values.
[0034] See also Figure 1-Figure 5 As shown, Figure 1 This is a flowchart of a construction method for installing medical equipment based on intelligent three-dimensional analysis according to an embodiment of the present invention; Figure 2 This is a structural schematic diagram of a construction method for installing medical equipment based on intelligent three-dimensional analysis according to an embodiment of the present invention; Figure 3 This is a structural diagram of the expansion bolt usage scenario according to an embodiment of the present invention. Figure 4 A flow chart for determining the eligibility of expansion bolt installation spacing according to an embodiment of the present invention; Figure 5 The present invention provides a flowchart for determining the expansion eligibility of expansion bolts according to an embodiment of the present invention.
[0035] The construction method for installing medical equipment based on intelligent three-dimensional analysis in an embodiment of the present invention includes:
[0036] Step S1, determining the type of expansion bolt based on the weight of the equipment to be supported on the wall to be constructed, and determining the torque of the expansion bolt, wherein the expansion bolt type includes sleeve type expansion bolt and non-sleeve type expansion bolt;
[0037] Step S2, determining the installation spacing of the expansion bolts based on the wall strength evaluation value of the wall to be constructed, under the condition that the type of the expansion bolts is determined;
[0038] Step S3, determining the eligibility of the installation spacing of the expansion bolts based on the comprehensive evaluation value of the wall surface and the wall body after the intelligent three-dimensional analysis simulation drilling;
[0039] Step S4, if it is determined that the installation spacing of the expansion bolts is unqualified, adjusting the installation spacing of the expansion bolts based on the difference between the preset comprehensive evaluation value and the comprehensive evaluation value;
[0040] Step S5, determining the eligibility of the expansion bolt based on the state evaluation value of the expansion bolt under the load-bearing environment simulated by the intelligent three-dimensional analysis;
[0041] Step S6: Under the condition that the expansion bolt is determined to be unqualified, the torque of the expansion bolt is adjusted based on the ratio of the preset state evaluation value to the state evaluation value.
[0042] In the embodiment of the present invention, the weight of the device to be carried is measured by a weighing device such as a weighing sensor.
[0043] Specifically, the present invention selects the type and torque of expansion bolts based on the weight of the equipment, reasonably sets the installation spacing of the expansion bolts based on the wall strength assessment, and utilizes intelligent three-dimensional analysis technology to verify the eligibility of the installation spacing and expansion state. For unqualified cases, the spacing or torque is adjusted until the requirements are met. The application of intelligent three-dimensional analysis and simulation technology makes pre-construction assessment and adjustment work more efficient and accurate, accurately calculating and adjusting the installation spacing and torque of the expansion bolts to ensure that the wall can maintain sufficient strength and stability when supporting the equipment. This helps prevent safety issues such as wall cracking and falling off due to improper installation, thereby improving the stability of medical equipment installation.
[0044] Specifically, the embodiment of the present invention determines the type of expansion bolt and the torque of the expansion bolt based on the comparison result of the weight of the equipment to be supported on the wall to be constructed and the preset weight of 5 kg;
[0045] When the weight is less than or equal to the preset weight, the expansion bolt type is determined to be a sleeve-type expansion bolt, and the torque of the expansion bolt is determined, wherein the torque ranges from 4 to 8 N·m, preferably 6 N·m;
[0046] When the weight is greater than the preset weight, the expansion bolt type is determined to be a non-sleeve expansion bolt, and the torque of the expansion bolt is determined. The torque ranges from 9 to 13 N·m, preferably 11 N·m.
[0047] In the embodiment of the present invention, the preset weight value is 5 kg, but the above value is not limited thereto, and those skilled in the art may also adjust the value according to actual needs.
[0048] Specifically, in the embodiment of the present invention, the installation spacing of the expansion bolts is determined based on the comparison result of the wall strength evaluation value of the wall to be constructed and the preset wall strength evaluation value of 0.86, under the condition that the expansion bolt type is determined;
[0049] When the wall strength evaluation value is less than or equal to the preset wall strength evaluation value, the installation spacing of the expansion bolts is determined, and the installation spacing is in the range of 6-9 cm, preferably 8 cm;
[0050] When the wall strength evaluation value is greater than the preset wall strength evaluation value, the installation spacing of the expansion bolts is determined, and the value range of the installation spacing is 10-13 cm, preferably 12 cm.
[0051] In the embodiment of the present invention, the preset wall strength evaluation value is 0.86, but the above value is not limited thereto, and those skilled in the art may also adjust the value according to actual needs.
[0052] Specifically, the wall strength evaluation value is the ratio of the compressive strength of the wall to be constructed minus the average compressive strength to the standard deviation of the compressive strength.
[0053] Specifically, the present invention determines the type of expansion bolts and the torque by the weight of the equipment to be carried, and determines the installation spacing according to the wall strength evaluation value to optimize the wall's bearing capacity, ensuring that the wall has sufficient strength and stability when carrying the equipment, effectively avoiding safety problems caused by improper installation, and thus improving the stability of medical equipment installation.
[0054] Specifically, the embodiment of the present invention determines the eligibility of the expansion bolt installation spacing based on the comparison result of the comprehensive evaluation value of the wall surface and the wall body after the intelligent three-dimensional analysis simulation drilling and the preset comprehensive evaluation value of 0.83 under the condition of determining the installation spacing of the expansion bolts;
[0055] When the comprehensive evaluation value is less than or equal to the preset comprehensive evaluation value, it is determined that the installation spacing of the expansion bolts is unqualified;
[0056] When the comprehensive evaluation value is greater than the preset comprehensive evaluation value, it is determined that the installation spacing of the expansion bolts is qualified.
[0057] In the embodiment of the present invention, the preset comprehensive evaluation value is 0.83. The preset comprehensive evaluation value is obtained by taking the average of several historical comprehensive evaluation values of qualified expansion bolt installation spacing. However, the above value is not limited to this. Those skilled in the art can also adjust the value according to actual needs.
[0058] Specifically, the comprehensive evaluation value is the ratio of the amount of damage to the wall between two adjacent expansion bolts after drilling to the amount of damage to the total wall multiplied by the ratio of the tensile strength of the wall after drilling to the tensile strength of the wall before drilling.
[0059] Specifically, in the embodiment of the present invention, under the condition that the installation spacing of the expansion bolts is determined to be unqualified, the installation spacing of the expansion bolts is adjusted according to the comparison result of the preset comprehensive evaluation value and the difference between the comprehensive evaluation value and the preset difference of 0.35;
[0060] When the difference is less than or equal to the preset difference, it is determined to increase the installation spacing of the expansion bolts to a corresponding value using a first preset spacing adjustment coefficient of 1.04;
[0061] When the difference is greater than the preset difference, it is determined that the installation spacing of the expansion bolts is increased to a corresponding value using a second preset spacing adjustment coefficient of 1.07;
[0062] The difference is the difference between the preset comprehensive evaluation value and the comprehensive evaluation value.
[0063] In the embodiment of the present invention, the preset difference value is 0.35, but the above value is not limited thereto, and those skilled in the art may also adjust the value according to actual needs.
[0064] In an embodiment of the present invention, the increased installation spacing of the expansion bolts is the product of the installation spacing of the expansion bolts and the i-th preset spacing adjustment coefficient, where i is 1 or 2, T1 represents the first preset spacing adjustment coefficient, and T2 represents the second preset spacing adjustment coefficient.
[0065] Specifically, the present invention verifies the eligibility of the expansion bolt installation spacing through intelligent three-dimensional analysis and simulation, and adjusts the installation spacing according to the difference between the comprehensive evaluation value and the preset comprehensive evaluation value to ensure the installation quality and improve the accuracy of the installation spacing determination. Through intelligent analysis and adjustment, structural problems caused by improper installation spacing are effectively avoided, and the bearing capacity of the wall and the stability of the medical equipment installation are improved.
[0066] Specifically, the embodiment of the present invention determines the eligibility of the expansion bolt expansion based on the comparison result of the state evaluation value of the expansion bolt under the load environment simulated by the intelligent three-dimensional analysis with the preset state evaluation value of 0.79;
[0067] When the state evaluation value is less than or equal to the preset state evaluation value, it is determined that the expansion of the expansion bolt is unqualified;
[0068] When the state evaluation value is greater than the preset state evaluation value, it is determined that the expansion of the expansion bolt is qualified.
[0069] In the embodiment of the present invention, the preset state evaluation value is 0.79, which is obtained by taking the average value of several historical state evaluation values of the expansion bolt that are qualified for expansion. However, the above value is not limited to this, and those skilled in the art can also adjust the value according to actual needs.
[0070] Specifically, the state evaluation value is the ratio of the tightening force of the expansion bolt to the maximum tightening force under the load-bearing environment simulated by the intelligent three-dimensional analysis multiplied by the ratio of the actual depth of the expansion bolt embedded in the wall to the maximum depth of the expansion bolt embedded in the wall.
[0071] Specifically, in the embodiment of the present invention, under the condition that the expansion of the expansion bolt is determined to be unqualified, the torque of the expansion bolt is adjusted according to the comparison result of the ratio of the state evaluation value to the preset state evaluation value and the preset ratio 0.76;
[0072] When the ratio is less than or equal to the preset ratio, the torque of the expansion bolt is increased to a corresponding value using a first preset torque adjustment coefficient of 1.14;
[0073] When the ratio is greater than the preset ratio, the torque of the expansion bolt is increased to a corresponding value using a second preset torque adjustment coefficient of 1.21;
[0074] The ratio is the ratio of the state evaluation value to the preset state evaluation value.
[0075] In the embodiment of the present invention, the preset ratio is 0.76, but the above value is not limited thereto, and those skilled in the art may also adjust the value according to actual needs.
[0076] In the embodiment of the present invention, the increased torque of the expansion bolt is the product of the torque of the expansion bolt and the jth preset torque adjustment coefficient, where j is 1 or 2, R1 is the first preset torque adjustment coefficient, and R2 is the second preset torque adjustment coefficient.
[0077] Specifically, the present invention verifies the expansion state of the expansion bolt through intelligent three-dimensional analysis simulation, and adjusts the torque of the expansion bolt according to the comparison result of the state evaluation value of the expansion bolt and the preset state evaluation value to ensure the tightening effect of the expansion bolt, thereby realizing accurate evaluation of the expansion state of the expansion bolt and intelligent adjustment of the torque, effectively improving the installation quality, ensuring the safety of the expansion bolt under the load-bearing environment, and thus improving the stability of the installation of medical equipment.
[0078] Thus far, the technical solutions of the present invention have been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art may make equivalent changes or substitutions to the relevant technical features, and the technical solutions after such changes or substitutions will fall within the scope of protection of the present invention.
[0079] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
Claims
1. A construction method for installing medical equipment based on intelligent three-dimensional analysis, characterized in that: include: Determining the type of expansion bolt based on a comparison result between the weight of the equipment to be supported on the wall to be constructed and a preset weight, and determining the torque of the expansion bolt, wherein the expansion bolt type includes a sleeve type expansion bolt and a non-sleeve type expansion bolt; Under the condition that the type of the expansion bolts is determined, the installation spacing of the expansion bolts is determined based on the comparison result of the wall strength evaluation value of the wall to be constructed and the preset wall strength evaluation value; The wall strength evaluation value is the ratio of the compressive strength on the wall to be constructed minus the average compressive strength to the standard deviation of the compressive strength; Based on the intelligent 3D analysis simulation, the comprehensive evaluation value of the wall surface and the wall body after drilling is compared with the preset comprehensive evaluation value to determine the eligibility of the installation spacing of the expansion bolts; The comprehensive evaluation value is the ratio of the damage amount of the wall between two adjacent expansion bolts after drilling to the damage amount of the total wall multiplied by the ratio of the tensile strength value of the wall after drilling to the tensile strength value of the wall before drilling; Under the condition that it is determined that the installation spacing of the expansion bolts is unqualified, determining to adjust the installation spacing of the expansion bolts based on a comparison result between a preset comprehensive evaluation value and a difference between the comprehensive evaluation value and the preset difference; The eligibility of the expansion bolts is determined by comparing the state evaluation value of the expansion bolts under the load-bearing environment simulated by intelligent three-dimensional analysis with the preset state evaluation value; The state evaluation value is the ratio of the tightening force of the expansion bolt to the maximum tightening force under the load-bearing environment simulated by the intelligent three-dimensional analysis, multiplied by the ratio of the actual depth of the expansion bolt embedded in the wall to the maximum depth of the expansion bolt embedded in the wall; Under the condition that the expansion bolt is determined to be unqualified for expansion, the torque of the expansion bolt is adjusted based on a comparison result of a ratio of a preset state evaluation value to the state evaluation value and a preset ratio.
2. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 1, characterized in that: Based on the comparison result that the weight of the equipment to be supported on the wall to be constructed is less than or equal to the preset weight, the expansion bolt type is determined to be a sleeve-type expansion bolt, and the torque of the expansion bolt is determined to be 4N·m-8N·m.
3. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 1, characterized in that: Based on the comparison result that the wall material evaluation value of the wall to be constructed is greater than the preset wall material evaluation value, the expansion bolt type is determined to be a non-sleeve expansion bolt, and the torque of the expansion bolt is determined to be 9N·m-13N·m.
4. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 1, characterized in that: Under the condition of determining the type of expansion bolts, the installation spacing of the expansion bolts is determined to be 6-9cm based on the comparison result that the wall strength evaluation value of the wall to be constructed is less than or equal to the preset wall strength evaluation value, and the installation spacing of the expansion bolts is determined to be unqualified based on the comparison result that the comprehensive evaluation value of the wall and the wall after intelligent three-dimensional analysis simulation drilling is less than or equal to the preset comprehensive evaluation value.
5. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 1, characterized in that: Under the condition of determining the type of expansion bolts, the installation spacing of the expansion bolts is determined to be 10-13cm based on the comparison result that the wall strength evaluation value of the wall to be constructed is greater than the preset wall strength evaluation value, and the installation spacing of the expansion bolts is determined to be unqualified based on the comparison result that the comprehensive evaluation value of the wall and the wall after the intelligent three-dimensional analysis simulation drilling is less than or equal to the preset comprehensive evaluation value.
6. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 4 or 5, characterized in that: Under the condition that the installation spacing of the expansion bolts is determined to be unqualified, based on the comparison result that the preset comprehensive evaluation value and the difference between the comprehensive evaluation values are less than or equal to the preset difference, it is determined that the installation spacing of the expansion bolts is increased by a first preset spacing adjustment coefficient.
7. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 4 or 5, characterized in that: Under the condition that the installation spacing of the expansion bolts is determined to be unqualified, based on the comparison result that the preset comprehensive evaluation value and the difference between the comprehensive evaluation value is greater than the preset difference, it is determined that the installation spacing of the expansion bolts is increased by a second preset spacing adjustment coefficient.
8. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 1, characterized in that: The expansion of the expansion bolt is determined to be unqualified based on the comparison result that the state evaluation value of the expansion bolt under the load-bearing environment simulated by the intelligent three-dimensional analysis is less than or equal to the preset state evaluation value.
9. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 8, characterized in that: Under the condition that the expansion of the expansion bolt is determined to be unqualified, the torque of the expansion bolt is increased by a first preset torque adjustment coefficient based on a comparison result that the ratio of the state evaluation value to the preset state evaluation value is less than or equal to the preset ratio.
10. The construction method for installing medical equipment based on intelligent three-dimensional analysis according to claim 8, characterized in that: Under the condition that the expansion of the expansion bolt is determined to be unqualified, the torque of the expansion bolt is increased by a second preset torque adjustment coefficient based on a comparison result that the ratio of the state evaluation value to the preset state evaluation value is greater than the preset ratio.
Citation Information
Patent Citations
Adjustable medical belt and construction technology thereof
CN116831848A
Setting method for expansion anchors by means of drive screws
CN111465470A
Machine fastening work method using augmented reality
WO2021176645A1