Flap blood supply monitoring device with intelligent heating lamp

By designing a flap blood circulation monitoring device with intelligent baking lamp, and using the linkage between the monitoring mechanism and the transmission mechanism, automated blood circulation monitoring is achieved, solving the problems of low monitoring efficiency and low survival rate in the existing technology, and improving the efficiency of vascular crisis detection and flap survival rate.

CN119949776AInactive Publication Date: 2025-05-09YUYAO PEOPLES HOSPITAL
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Patent Information

Application Number
CN202510135739.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-07
Publication Date
2025-05-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The prior art has problems such as large workload, susceptible to external factors, and lack of objective data evaluation in blood circulation monitoring after flap transplantation, resulting in low vascular crisis detection efficiency and low flap survival rate.

Method used

A flap blood circulation monitoring device with intelligent baking lamp was designed, using a monitoring mechanism and a transmission mechanism to control the expansion and contraction of the cylinder through the controller to realize the collection and release of the monitoring mechanism. Combined with infrared image acquisition, the lamps and other components are automatically removed to reduce the workload of medical staff.

Benefits of technology

It improves the work efficiency and quality of medical staff, can detect the vascular crisis after flap transplantation early, improves the survival rate of flap transplantation tissue, and reduces postoperative complications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of medical instruments, in particular to a flap blood supply monitoring device with an intelligent heating lamp. Comprising a box body, an electric push rod, a control box, an up-down telescopic rod, a first bolt, a left-right telescopic rod, a connecting sleeve, a supporting shell, a lifting mechanism and a monitoring mechanism, the electric push rod is arranged on the left side of the top end of the box body, the control box is connected to the electric push rod, and the monitoring mechanism is arranged at the inner bottom end of the control box; a threaded hole is formed in the up-down telescopic rod, a first bolt is arranged in the threaded hole, the up-down telescopic rod is connected with a left-right telescopic rod, the left-right telescopic rod is connected with a connecting sleeve, the bottom end of the connecting sleeve is connected with a supporting shell, cavities are formed in the supporting shell and the connecting sleeve, and lifting mechanisms are arranged in the two cavities. According to the invention, medical staff can remotely control the data memory through the WiFi module, research on infrared images in the data memory is carried out, and the recovery condition of a patient after an operation is known.
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Description

Technical Field

[0001] The invention relates to the technical field of medical devices, and in particular to a skin flap blood circulation monitoring device with an intelligent heating lamp. Background Art

[0002] Blood circulation observation after flap transplantation in hand and foot microsurgery is the focus of perioperative care. Timely and accurate blood circulation observation can detect problems in time, reduce the incidence of vascular crisis, and improve the survival rate of transplanted tissue. The main monitoring indicators of blood circulation after flap transplantation include four items: color, temperature, tissue tension, and capillary filling time. Among them, the color change of the flap is one of the most intuitive indicators reflecting the state of blood circulation, and the temperature of the flap is an important indicator of whether the blood circulation is good. It reflects the blood supply and venous return of the flap, which is closely related to the survival of the flap and is also an important part of postoperative nursing observation of the flap.

[0003] At present, the blood circulation after flap transplantation is mainly monitored by nurses routinely visiting the bedside for naked eye observation and traditional finger palpation or direct skin temperature measurement. The frequency is generally once an hour within 1-3 days after surgery and once every 2 hours within 4-7 days after surgery, which is a lot of work. Naked eye observation of blood circulation is easily interfered by external factors and has large subjective differences. It often relies on the clinical experience of medical staff and lacks objective data evaluation.

[0004] In order to ensure the survival rate of replanted tissue, the room temperature is usually raised and a 60W lamp is used for local continuous irradiation after flap transplantation in clinical practice, with an irradiation distance of 30-40cm. Before using a skin thermometer to directly measure the skin temperature of the skin flap, the nurse needs to remove the lamp for 3-5 minutes before measuring it. Not only is the measurement procedure cumbersome, but there are also disadvantages such as low work efficiency, large measurement error, small temperature measurement range, and the measurement data is easily disturbed by factors such as measurement point and measurement pressure. Summary of the invention

[0005] In order to overcome the shortcomings of the above-mentioned background technology, the purpose of the present invention is to provide a flap blood circulation monitoring device with an intelligent heating lamp.

[0006] The technical implementation scheme of the present invention is: a skin flap blood circulation monitoring device with an intelligent baking lamp, including a box body, an electric push rod, a control box, upper and lower telescopic rods, a first bolt, left and right telescopic rods, a connecting sleeve, a supporting shell, a lifting mechanism, a round frame, a heat-insulating shading cloth, a measuring scale tape, a lamp and a monitoring mechanism. An electric push rod is provided on the left side of the top end of the box body, and the electric push rod is connected to the control box, and a monitoring mechanism is provided at the inner bottom end of the control box. The top of the control box is rotatably connected with the upper and lower telescopic rods, and threaded holes are opened on the upper and lower telescopic rods. The first bolt is provided in the threaded hole, and the upper and lower telescopic rods are connected to the left and right telescopic rods, and the left and right telescopic rods are connected to the connecting sleeve. The bottom end of the connecting sleeve is connected to the supporting shell, and cavities are provided inside the supporting shell and the connecting sleeve. A lifting mechanism is provided in the two cavities, and a lamp is connected to the bottom end of the lifting mechanism, and a round frame is connected to the bottom end of the supporting shell. The heat-insulating shading cloth is connected to the bottom end of the round frame, and a measuring scale tape is provided at the right end of the heat-insulating shading cloth.

[0007] Furthermore, the monitoring mechanism includes a cylinder, a connecting plate, a first rack, a support frame, a notched gear, a support platform, a sliding plate, a fixed frame, a bidirectional screw, a moving block, a rubber pad, a second bolt, a sliding block and a rotating handle. A cylinder is provided on the left side of the inner bottom end of the control box, a connecting plate is connected to the gas rod of the cylinder, the right end of the connecting plate is connected to the first rack, a support frame is provided on the right side of the inner bottom end of the control box, a notched gear is rotatably connected to the support frame, a support platform is connected to the toothless part of the notched gear, a sliding plate is connected to the end of the support platform away from the notched gear, a fixed frame is slidably connected to the sliding plate, a bidirectional screw is rotatably connected in the fixed frame, a rotating handle is connected to the end of the bidirectional screw away from the support platform, moving blocks are symmetrically threadedly connected on the bidirectional screw, rubber pads are provided on the ends of the two moving blocks close to each other, a sliding block is slidably connected to the sliding plate, the sliding block is connected to the fixed frame, a screw hole is provided on the sliding block, and the second bolt is threadedly connected in the screw hole.

[0008] Furthermore, the lifting mechanism includes a guide rod, a connecting seat, a screw, a worm wheel, a worm and a driving motor. The inner top end of the connecting sleeve is connected to the guide rod, and the screw is slidably connected to the guide rod. The worm is rotatably connected to the right side of the support shell cavity. A connecting seat is provided on the left side of the cavity, and a worm wheel is rotatably connected to the connecting seat. The worm wheel and the worm are meshed with each other. A thread matching the screw is provided on the inner diameter of the worm wheel. The worm wheel is threadedly connected to the screw. The right side of the rear end of the support shell is connected to the driving motor, and the output shaft of the driving motor is connected to the worm.

[0009] Furthermore, it includes a universal wheel, a driven wheel, a locking switch, a box plate and a battery. The universal wheel is symmetrically arranged on the right side of the bottom end of the box body, and the driven wheel is symmetrically arranged on the left side of the bottom end of the box body. The universal wheel and the driven wheel are both provided with a locking switch. The box plate is hinged on the right side of the top end of the box body, and a cavity is provided inside the box body, and a battery is provided in the cavity.

[0010] Furthermore, it includes a door panel, a rotating plate, an alarm, a control panel and a control switch. The front end of the control box is hinged with a door panel, and a handle is provided on the door panel. The right end of the control box is hinged with a rotating plate, and an alarm is provided on the rear side of the top of the control box. A control panel is provided on the right side of the rear end of the control box. A control switch is provided on the right side of the rear end of the control panel, and USB interfaces are provided on the left side of the rear end of the control panel from top to bottom.

[0011] Furthermore, it also includes a rotating motor, a rotating wheel and a soft rope. The inner bottom end of the round frame is provided with a rotating motor, the output shaft of the rotating motor is connected to the rotating wheel, and a soft rope is wound around the rotating wheel. The other end of the soft rope is connected to the bottom end of the heat-insulating blackout cloth.

[0012] Furthermore, it also includes a transmission mechanism, which includes a connecting rod, a connecting gear and a connecting rack. The bottom ends of the upper and lower telescopic rods are connected to the connecting rod, the lower part of the connecting rod is connected to the connecting gear, and the top of the connecting plate is provided with a connecting rack, and the connecting rack and the connecting gear are meshed with each other.

[0013] Furthermore, it also includes a WiFi module, a data storage device, a controller, a power supply battery and a display screen. The data storage device, the power supply battery, the controller and the WiFi module are arranged on the rear wall of the control box in a clockwise rotation direction. A display screen is arranged at the rear end of the control box. The battery, the electric push rod, the lamp, the drive motor, the cylinder, the WiFi module, the data storage device, the power supply battery, the alarm, the control switch, the USB interface and the display screen are all electrically connected to the controller.

[0014] Compared with the prior art, the present invention has the following advantages: 1. The monitoring mechanism and the transmission mechanism are designed, and the expansion and contraction of the cylinder are controlled by the controller to realize the expansion and contraction of the monitoring mechanism, and the infrared image of the wound surface of the affected limb can be obtained by combining the monitoring component. The linkage between the monitoring mechanism and the transmission mechanism realizes the automatic removal of components such as lamps, reduces the workload of medical staff, and improves the work efficiency and work quality of doctors and nurses.

[0015] 2. Infrared images can directly reflect the local microcirculation of the wound surface. By comparing the changes in infrared images of the wound surface at different time periods, vascular crises after flap transplantation can be detected early, the survival rate of flap transplanted tissue can be improved, and the harm of postoperative complications to patients can be minimized. A large number of infrared images stored in the data storage device can quantify the observation data, which is also convenient for data sharing and quantitative record analysis. The collected infrared images can provide an important basis for the identification of flap vascular crises. Through the WiFi module, medical staff can remotely access the data storage device, study the infrared images in the data storage device, and understand the patient's recovery after surgery. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0017] Figure 2 It is a schematic diagram of the three-dimensional structure from another viewing angle of the present invention.

[0018] Figure 3 It is a three-dimensional structural schematic diagram of the battery and other components of the present invention.

[0019] Figure 4 It is a three-dimensional structural schematic diagram of the control box and other components of the present invention.

[0020] Figure 5 It is a three-dimensional structural schematic diagram of the alarm and other components of the present invention.

[0021] Figure 6 It is a three-dimensional structural schematic diagram of the monitoring mechanism and the transmission mechanism of the present invention.

[0022] Figure 7 It is a schematic diagram of the main structure of the monitoring mechanism of the present invention.

[0023] Figure 8 It is a cross-sectional view of the supporting shell, the circular frame and the connecting sleeve of the present invention.

[0024] In the above drawings: 1: box body, 2: universal wheel, 201: driven wheel, 202: locking switch, 3: box plate, 4: battery, 5: electric push rod, 6: control box, 601: door plate, 602: rotating plate, 7: alarm, 8: upper and lower telescopic rods, 801: first bolt, 10: left and right telescopic rods, 11: connecting sleeve, 111: guide rod, 12: support shell, 1222: lifting mechanism, 121: connecting seat, 13: screw rod, 14: worm gear, 141: worm, 15: driving motor, 16: round frame, 17: heat insulation blackout cloth, 18: rotating motor, 181: rotating wheel, 182: soft rope, 19: measuring scale tape, 2 0: lamp, 21: monitoring mechanism, 210: cylinder, 211: connecting plate, 212: first rack, 213: support frame, 214: notched gear, 215: support table, 216: sliding plate, 217: fixed frame, 218: bidirectional screw, 219: moving block, 220: rubber pad, 221: second bolt, 222: sliding block, 223: rotating handle, 231: connecting rod, 232: connecting gear, 233: connecting rack, 234: transmission mechanism, 22: WiFi module, 23: controller, 24: power supply battery, 25: display screen, 26: control board, 261: control switch, 27: data storage device. DETAILED DESCRIPTION

[0025] The present invention will be described in detail below in conjunction with the accompanying drawings.

[0026] A skin flap blood flow monitoring device with an intelligent heating lamp, such as Figure 1-Figure 8As shown, it includes a box body 1, an electric push rod 5, a control box 6, an upper and lower telescopic rod 8, a first bolt 801, a left and right telescopic rod 10, a connecting sleeve 11, a supporting shell 12, a lifting mechanism 1222, a round frame 16, a heat-insulating shading cloth 17, a measuring scale tape 19, a lamp 20 and a monitoring mechanism 21. An electric push rod 5 is provided on the left side of the top of the box body 1, and the electric push rod 5 is connected to the control box 6. The height of the control box 6 can be adjusted by adjusting the electric push rod 5. A monitoring mechanism 21 is provided at the inner bottom end of the control box 6. The top of the control box 6 is rotatably connected to the upper and lower telescopic rods 8. The upper and lower telescopic rods 8 are provided with threaded holes, and the first bolt 801 is provided in the threaded holes. When the first bolt 801 is tightened so that one end of the first bolt 801 contacts the telescopic rod inside the upper and lower telescopic rods 8, the lengths of the upper and lower telescopic rods 8 are fixed and cannot be extended. 8 is connected to left and right telescopic rods 10, and the left and right telescopic rods 10 are connected to a connecting sleeve 11. The bottom end of the connecting sleeve 11 is connected to a supporting shell 12. Both the supporting shell 12 and the connecting sleeve 11 are provided with cavities. A lifting mechanism 1222 is provided in the two cavities. The bottom end of the lifting mechanism 1222 is connected to a lamp 20. The lifting mechanism 1222 can realize the up and down movement of the lamp 20. The irradiation power of the lamp 20 is 60w. The lamp 20 can irradiate the wound surface of the patient's affected limb. The bottom end of the supporting shell 12 is connected to a round frame 16, and the bottom end of the round frame 16 is connected to a heat-insulating shading cloth 17. The heat-insulating shading cloth 17 can limit the heat light irradiated by the lamp 20 within the heat-insulating shading cloth 17. A measuring scale tape 19 is provided at the right end of the heat-insulating shading cloth 17. With reference to the measuring scale tape 19, the distance between the wound surface of the patient's affected limb and the lamp 20 can be roughly understood.

[0027] like Figure 5-Figure 7As shown, the monitoring mechanism 21 includes a cylinder 210, a connecting plate 211, a first rack 212, a support frame 213, a notched gear 214, a support platform 215, a sliding plate 216, a fixing frame 217, a bidirectional screw 218, a moving block 219, a rubber pad 220, a second bolt 221, a sliding block 222 and a rotating handle 223. The cylinder 210 is provided on the left side of the inner bottom end of the control box 6, and the connecting plate 211 is connected to the gas rod of the cylinder 210. The right end of 211 is connected to the first rack 212, and a support frame 213 is provided on the right side of the inner bottom end of the control box 6. A notch gear 214 is rotatably connected to the support frame 213. The toothless part of the notch gear 214 is connected to a support platform 215. The end of the support platform 215 away from the notch gear 214 is connected to a sliding plate 216. The gas rod on the cylinder 210 retracts into the cylinder body, driving the connecting plate 211 and the first rack 212 to move, thereby causing the notch gear 214 to rotate. The support platform 215 rotates, and a fixed frame 217 is slidably connected to the sliding plate 216. A bidirectional screw 218 is rotatably connected in the fixed frame 217. The end of the bidirectional screw 218 away from the support platform 215 is connected with a rotating handle 223. The bidirectional screw 218 is symmetrically threaded with moving blocks 219. The ends of the two moving blocks 219 close to each other are provided with rubber pads 220. The rotating handle 223 can make the two moving blocks 219 approach each other or move away from each other. A sliding block 222 is slidably connected to the sliding plate 216. The sliding block 222 is connected to the fixed frame 217. A screw hole is provided on the sliding block 222. The second bolt 221 is threadedly connected in the screw hole. The second bolt 221 is loosened so that the rear end of the second bolt 221 no longer resists the sliding plate 216, and the fixed frame 217 is moved to an appropriate position. After the fixed frame 217 rotates 90 degrees, the fixed frame 217 is just located above the wound surface of the affected limb.

[0028] like Figure 8As shown, the lifting mechanism 1222 includes a guide rod 111, a connecting seat 121, a screw 13, a worm wheel 14, a worm 141 and a driving motor 15. The inner top of the connecting sleeve 11 is connected to the guide rod 111, and the screw 13 is slidably connected to the guide rod 111. The guide rod 111 makes the screw 13 unable to rotate and can only move up and down. The right side of the cavity of the support shell 12 is rotatably connected to the worm 141, and the left side of the cavity is provided with a connecting seat 121, and the connecting seat 121 is rotatably connected to the worm wheel 14. The worm wheel 14 and the worm 141 are meshed with each other. A thread matching the screw rod 13 is provided on the inner diameter, and the worm wheel 14 is threadedly connected to the screw rod 13. A drive motor 15 is connected to the right side of the rear end of the support shell 12, and the output shaft of the drive motor 15 is connected to the worm 141. The drive motor 15 is started, and the drive motor 15 drives the worm 141 to rotate, thereby driving the worm wheel 14, so that the screw rod 13 moves up and down, and the screw rod 13 drives the lamp 20 to move up and down. Referring to the measuring scale tape 19 on the outer surface of the blackout cloth, the reference lamp distance is used as a basis, so that the distance between the lamp 20 and the wound surface of the affected limb is maintained at 30cm-40cm.

[0029] like Figure 1-Figure 3 As shown, it also includes a universal wheel 2, a driven wheel 201, a locking switch 202, a box plate 3 and a battery 4. The universal wheel 2 is symmetrically arranged on the right side of the bottom end of the box body 1, and the driven wheel 201 is symmetrically arranged on the left side of the bottom end of the box body 1. The universal wheel 2 and the driven wheel 201 are both provided with a locking switch 202. The design of the universal wheel 2 and the driven wheel 201 allows medical staff to easily push the device and move the device to the front of the patient's bed. The right side of the box body 1 can be pushed under the patient's bed. The universal wheel 2 and the driven wheel 201 can be locked by the locking switch 202, so that the device cannot be moved. The box plate 3 is hinged on the right side of the top end of the box body 1, and a cavity is provided inside the box body 1, and a battery 4 is provided in the cavity.

[0030] like Figure 1 and Figure 2 As shown, it also includes a door panel 601, a rotating plate 602, an alarm 7, a control panel 26 and a control switch 261. The front end of the control box 6 is hinged with a door panel 601, and a handle is provided on the door panel 601. The right end of the control box 6 is hinged with a rotating plate 602. When the device is not in use, the door panel 601 and the rotating plate 602 are rotated and closed to protect the components in the control box 6. An alarm 7 is provided on the rear side of the top of the control box 6. When the electrical components in the device (such as the drive motor 15, the lamp 20, etc.) fail, the controller 23 will cause the alarm 7 to emit an audible and visual alarm to remind medical staff that the device has failed. A control panel 26 is provided on the right side of the rear end of the control box 6, and a control switch 261 is provided on the right side of the rear end of the control panel 26. A USB interface is provided on the left side of the rear end of the control panel 26 from top to bottom.

[0031] like Figure 8 As shown, it also includes a rotating motor 18, a rotating wheel 181 and a soft rope 182. The inner bottom end of the round frame 16 is provided with a rotating motor 18, and the output shaft of the rotating motor 18 is connected to the rotating wheel 181, and the soft rope 182 is wound around the rotating wheel 181. The other end of the soft rope 182 is connected to the bottom end of the heat-insulating shade cloth 17. When the rotating motor 18 is started, the rotating motor 18 drives the rotating wheel 181 to rotate, and the rotating wheel 181 rotates to retract the soft rope 182. The soft rope 182 drives the bottom end of the heat-insulating shade cloth 17 to move upward, so that the heat-insulating shade cloth 17 is gradually retracted from the bottom to the top.

[0032] like Figure 6 As shown, it also includes a transmission mechanism 234, which includes a connecting rod 231, a connecting gear 232 and a connecting rack 233. The bottom ends of the upper and lower telescopic rods 8 are connected to the connecting rod 231, and the lower part of the connecting rod 231 is connected to the connecting gear 232. The top of the connecting plate 211 is provided with a connecting rack 233, and the connecting rack 233 and the connecting gear 232 are meshed with each other. When the monitoring mechanism 21 rotates 90 degrees to above the wound surface of the patient's affected limb, the transmission mechanism 234 moves synchronously, and the connecting rack 233 drives the connecting gear 232 to rotate, thereby driving the connecting rod 231 and the upper and lower telescopic rods 8 to rotate, thereby causing the left and right telescopic rods 10, the lamp 20 and the heat-insulating shading cloth 17 and other components to rotate horizontally, so that the heat-insulating shading cloth 17 will not prevent the sliding plate 216 from rotating to just above the affected limb.

[0033] like Figure 2 and Figure 5As shown, it also includes a WiFi module 22, a data storage device 27, a controller 23, a power supply battery 24 and a display screen 25. The data storage device 27, the power supply battery 24, the controller 23 and the WiFi module 22 are arranged on the rear wall of the control box 6 in a clockwise manner. The data storage device 27 is used to store infrared images taken by a monitoring component formed by connecting a smart phone and a thermal imager. The power supply battery 24 can provide power for the power supply battery 24, the controller 23 and the WiFi module 22. Through the WiFi module 22, medical staff can remotely access the data storage device 27 to study the infrared images stored in the data storage device 27 to understand the patient's recovery after surgery. A display screen 25 is provided at the rear end of the control box 6. The display screen 25 can be turned on by pressing the control switch 261. The storage battery 4, the electric push rod 5, the lamp 20, the drive motor 15, the cylinder 210, the WiFi module 22, the data storage device 27, the power supply battery 24, the alarm 7, the control switch 261, the USB interface and the display screen 25 are all electrically connected to the controller 23. The USB interface can be directly connected to the data line to read the data in the data storage device 27. The power supply battery 24 is electrically connected to the storage battery 4. When the power supply battery 24 is low on power, the storage battery 4 can supply power to the power supply battery 24 so that the device can continue to work.

[0034] Push the device and move it to the front of the patient's bed. Press the control switch 261 to turn on the display screen 25. Adjust the height of the electric push rod 5 on the display screen 25 so that the moving block 219 on the monitoring mechanism 21 is about 30 cm above the surgical wound on the patient's hand. Push the right side of the box 1 under the patient's bed. Lock the universal wheel 2 and the driven wheel 201 through the locking switch 202 so that the device cannot be moved. Adjust the left and right telescopic rods 10 so that the lamp 20 is located directly above the wound on the patient's affected limb. Loosen the first bolt 801 and pull the upper and lower telescopic rods 8 back so that the wound on the patient's affected limb is just at the same horizontal height as the bottom end of the heat-insulating shade cloth 17. Tighten the first bolt 801. , rotate and open the rotating plate 602, vertically place the monitoring assembly formed by connecting the smart phone and the thermal imager on the rubber pad 220, rotate the rotating handle 223 to make the moving blocks 219 on the bidirectional screw 218 approach each other, fix the smart phone between the two rubber pads 220, turn on the mobile phone and the thermal imager, set the working time parameters of the thermal imager on the mobile phone, turn on the lamp 20 on the display screen 25 to irradiate the affected limb, set the continuous irradiation time of the lamp 20 and the time to start the cylinder 210 on the display screen 25, turn off the baking lamp 5 minutes before taking the temperature measurement and taking the photo, when the time after the lamp 20 is turned off reaches 5 minutes, the controller 23 controls the gas rod on the cylinder 210 to retract, and the cylinder 210 The gas rod drives the connecting plate 211 and the first rack 212 to move toward the cylinder body, and the first rack 212 drives the notched gear 214 to rotate, thereby driving the support platform 215 and the sliding plate 216 to rotate 90 degrees, so that the monitoring component is located 30 cm above the wound surface of the affected limb and perpendicular to the wound surface of the affected limb. The smart phone uses a thermal imager to take infrared photos of the surgical wound surface and transmits the photos taken in the form of data to the data storage device 27. During the process of the connecting plate 211 approaching the cylinder body, the connecting rack 233 drives the connecting gear 232 to rotate, thereby driving the connecting rod 231 and the upper and lower telescopic rods 8 to rotate, thereby causing the left and right telescopic rods 10, the lamp 20 and the heat-insulating shading cloth 17 and other components to rotate. The heat-insulating shading cloth 17 will not block the rotation of the sliding plate 216. After the monitoring component completes taking pictures of the wound on the affected limb, the data will be transmitted to the data storage device 27. The monitoring mechanism 21, driven by the cylinder 210, brings the monitoring component back to the control box 6. During this process, the transmission mechanism 234 allows the lamp 20 to return to the top of the affected limb. The controller 23 turns on the lamp 20 to continue irradiating the surgical wound. The monitoring component stores the captured infrared image in the data storage device 27, which can provide objective data for clinical use. Medical staff can remotely access the data in the data storage device 27 through the WiFi module 22, study the infrared images in the data storage device 27, and understand the patient's recovery after surgery.

[0035] The above is a detailed introduction to the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for general technical personnel in this field, according to the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. A skin flap blood flow monitoring device with an intelligent heating lamp, comprising a housing (1), characterized in that: The housing (1) further comprises an electric push rod (5), a control box (6), upper and lower telescopic rods (8), a first bolt (801), left and right telescopic rods (10), a connecting sleeve (11), a supporting shell (12), a lifting mechanism (1222), a round frame (16), a heat-insulating shading cloth (17), a measuring scale tape (19), a lamp (20) and a monitoring mechanism (21). The left side of the top of the housing (1) is provided with an electric push rod (5), the electric push rod (5) is connected to the control box (6), the inner bottom end of the control box (6) is provided with a monitoring mechanism (21), the top of the control box (6) is rotatably connected to the upper and lower telescopic rods (8), and the upper and lower telescopic rods (8) are provided with threaded A hole is provided in the threaded hole, a first bolt (801) is provided in the threaded hole, the upper and lower telescopic rods (8) are connected to the left and right telescopic rods (10), the left and right telescopic rods (10) are connected to the connecting sleeve (11), the bottom end of the connecting sleeve (11) is connected to the supporting shell (12), the supporting shell (12) and the connecting sleeve (11) are both provided with cavities inside, the two cavities are provided with lifting mechanisms (1222), the bottom end of the lifting mechanism (1222) is connected to the lamp (20), the bottom end of the supporting shell (12) is connected to the round frame (16), the bottom end of the round frame (16) is connected to the heat insulation blackout cloth (17), and the right end of the heat insulation blackout cloth (17) is provided with a measuring scale tape (19).

2. A skin flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 1, characterized in that: The monitoring mechanism (21) comprises a cylinder (210), a connecting plate (211), a first rack (212), a support frame (213), a notched gear (214), a support platform (215), a sliding plate (216), a fixing frame (217), a bidirectional screw (218), a moving block (219), a rubber pad (220), a second bolt (221), a sliding block (222) and a rotating handle (223). The cylinder (210) is arranged on the left side of the inner bottom end of the control box (6), the connecting plate (211) is connected to the gas rod of the cylinder (210), the right end of the connecting plate (211) is connected to the first rack (212), the support frame (213) is arranged on the right side of the inner bottom end of the control box (6), the notched gear (214) is rotatably connected to the support frame (213), and the notched gear (214) is rotated. ) is connected to a support platform (215) at a toothless portion, and one end of the support platform (215) away from the notched gear (214) is connected to a sliding plate (216), a fixed frame (217) is slidably connected to the sliding plate (216), a bidirectional screw (218) is rotatably connected in the fixed frame (217), an end of the bidirectional screw (218) away from the support platform (215) is connected to a rotating handle (223), a moving block (219) is symmetrically threadedly connected on the bidirectional screw (218), and rubber pads (220) are provided at the ends of the two moving blocks (219) close to each other, a sliding block (222) is slidably connected to the sliding plate (216), the sliding block (222) is connected to the fixed frame (217), a screw hole is provided on the sliding block (222), and a second bolt (221) is threadedly connected in the screw hole.

3. A flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 2, characterized in that: The lifting mechanism (1222) comprises a guide rod (111), a connecting seat (121), a screw rod (13), a worm wheel (14), a worm (141) and a driving motor (15); the inner top end of the connecting sleeve (11) is connected to the guide rod (111); the screw rod (13) is slidably connected to the guide rod (111); the bottom end of the screw rod (13) is connected to the lamp (20); the right side of the cavity of the supporting shell (12) is rotatably connected to the worm (141) ), a connecting seat (121) is provided on the left side of the cavity, a worm wheel (14) is rotatably connected to the connecting seat (121), the worm wheel (14) and the worm (141) are meshed with each other, a thread matching the lead screw (13) is provided on the inner diameter of the worm wheel (14), the worm wheel (14) and the lead screw (13) are threadedly connected, a driving motor (15) is connected to the right side of the rear end of the support shell (12), and the output shaft of the driving motor (15) is connected to the worm (141).

4. A flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 3, characterized in that: The invention also comprises a universal wheel (2), a driven wheel (201), a locking switch (202), a box plate (3) and a storage battery (4); the universal wheel (2) is symmetrically arranged on the right side of the bottom end of the box body (1) and the driven wheel (201) is symmetrically arranged on the left side of the bottom end of the box body (1); the locking switch (202) is arranged on the universal wheel (2) and the driven wheel (201); the box plate (3) is hingedly connected to the right side of the top end of the box body (1); a cavity is arranged inside the box body (1), and the storage battery (4) is arranged in the cavity.

5. A flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 4, characterized in that: The invention also comprises a door panel (601), a rotating plate (602), an alarm (7), a control panel (26) and a control switch (261), wherein the front end of the control box (6) is hingedly connected to the door panel (601), the door panel (601) is provided with a handle, the right end of the control box (6) is hingedly connected to the rotating plate (602), the top rear side of the control box (6) is provided with an alarm (7), the right rear side of the control box (6) is provided with a control panel (26), the right rear side of the control panel (26) is provided with a control switch (261), and the left rear side of the control panel (26) is provided with USB interfaces spaced from top to bottom.

6. A flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 5, characterized in that: The invention also comprises a rotating motor (18), a rotating wheel (181) and a soft rope (182); the rotating motor (18) is arranged at the inner bottom end of the circular frame (16); the rotating wheel (181) is connected to the output shaft of the rotating motor (18); the rotating wheel (181) is wound with a soft rope (182); the other end of the soft rope (182) is connected to the bottom end of the heat-insulating light-shielding cloth (17).

7. A flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 6, characterized in that: The invention also comprises a transmission mechanism (234), wherein the transmission mechanism (234) comprises a connecting rod (231), a connecting gear (232) and a connecting rack (233), wherein the bottom ends of the upper and lower telescopic rods (8) are connected to the connecting rod (231), the lower part of the connecting rod (231) is connected to the connecting gear (232), and the top end of the connecting plate (211) is provided with a connecting rack (233), and the connecting rack (233) and the connecting gear (232) are meshed with each other.

8. A skin flap blood flow monitoring device with an intelligent heating lamp as claimed in claim 7, characterized in that: The device also comprises a WiFi module (22), a data storage device (27), a controller (23), a power supply battery (24) and a display screen (25). The data storage device (27), the power supply battery (24), the controller (23) and the WiFi module (22) are arranged on the inner rear wall of the control box (6) in a clockwise direction. The rear end of the control box (6) is provided with a display screen (25). The storage battery (4), the electric push rod (5), the lamp (20), the drive motor (15), the cylinder (210), the WiFi module (22), the data storage device (27), the power supply battery (24), the alarm (7), the control switch (261), the USB interface and the display screen (25) are all electrically connected to the controller (23).