An ice pack nursing device after tonsil fossa operation
By designing a postoperative ice pack device for the tonsillar fossa with wrapping, ventilation, and support mechanisms, the problems of traditional ice pack methods requiring long-term fixation and lack of breathability have been solved, thus improving patient comfort and convenience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-31
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional postoperative ice application to the tonsillar fossa requires prolonged immobilization with both hands, which affects the patient's breathing and is not breathable, leading to discomfort and skin diseases.
A postoperative tonsillar fossa ice pack device was designed, comprising a wrapping mechanism, a ventilation mechanism, and a support mechanism. The wrapping mechanism fits snugly against both sides of the patient's neck, the ventilation mechanism provides breathability, and the support mechanism can be adjusted to facilitate ice pack application and replacement.
It frees up the patient's hands, prevents breathing difficulties, improves the comfort and convenience of postoperative patients, and avoids skin discomfort and frostbite.
Smart Images

Figure CN121587909B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of medical equipment, and particularly relates to a tonsillar fossa postoperative ice compress nursing device. BACKGROUND
[0002] Tonsillar fossa surgery refers to a surgical operation of completely removing the palatine tonsil from the tonsillar fossa where it is located, and is a very common ear-nose-throat operation. For patients with clear indications, the benefits outweigh the disadvantages.
[0003] The most important link in the postoperative nursing of tonsillar fossa surgery is ice compress. Effective ice compress can significantly reduce pain, reduce bleeding and swelling, and promote recovery. The traditional ice compress method is that the patient or his / her family members hold an ice bag and attach it to the two sides of the patient's neck. This method requires both hands to be kept in a fixed position for a long time, which is very inconvenient. A special ice bag is usually provided in the form of a ring-shaped belt. This method can wrap the special ice bag around the patient's neck, freeing the hands. However, this method tightly wraps the patient's neck, which affects the patient's breathing and is very uncomfortable for the patient. Moreover, the special ice bag is tightly attached to the skin of the neck, which is not breathable and can cause skin discomfort and even skin diseases. SUMMARY
[0004] The technical problem to be solved by the present application is to overcome the shortcomings of the prior art and provide a tonsillar fossa postoperative ice compress nursing device. In the present application, the wrapping mechanism, the ventilation mechanism and the supporting mechanism cooperate. The wrapping mechanism can be tightly attached to the two sides of the patient's neck, so that the patient's neck can be ice compressed. This not only frees the patient's hands, but also only targets the diseased part of the patient's neck, effectively preventing the patient from breathing. When the patient needs to move, the wrapping mechanism cooperates with the fixing assembly, and the wrapping mechanism can be clamped on the two sides of the patient's neck. Moreover, the wrapping mechanism does not interfere with the patient's breathing, thereby improving the comfort of the patient after the operation.
[0005] The technical solution adopted to solve the above technical problems is as follows: a tonsillar fossa postoperative ice compress nursing device, comprising a wrapping mechanism, a ventilation mechanism and a supporting mechanism, the wrapping mechanism is symmetrically arranged on the two sides of the patient's neck, the supporting mechanism is symmetrically slidably connected to the bed, the ventilation mechanism is slidably connected to the supporting mechanism, and the ventilation mechanism can clamp the wrapping mechanism.
[0006] The wrapping mechanism is provided with an ice bag, and the ventilation mechanism can ventilate the wrapping mechanism.
[0007] The ventilation mechanism can drive the wrapping mechanism to open or close by sliding on the supporting mechanism.
[0008] The wrapping mechanism can be fixed on the two sides of the patient's neck by the fixing assembly.
[0009] With the above technical solution, after surgery, the patient lies on the bed, and the ice pack is placed inside the wrapping mechanism. The ventilation mechanism holds the wrapping mechanism in place, and the height of the ventilation mechanism and the wrapping mechanism is adjusted by the support mechanism. Then, the ventilation mechanism slides horizontally on the support mechanism, which drives the wrapping mechanism to slide horizontally towards the patient's neck. During this process, the wrapping mechanism closes. After the wrapping mechanism slides into place, it fits tightly against both sides of the patient's neck, allowing the affected area to receive ice. This not only frees the patient's hands, but also effectively prevents breathing difficulties by targeting only the affected areas on both sides of the neck, rather than pressing tightly against the entire neck, thus improving the patient's comfort after surgery. After a period of ice application, the ventilation mechanism drives the wrapping mechanism to slide horizontally away from the patient's neck, allowing the wrapping mechanism to open during this process for easy replacement of the ice pack.
[0010] Furthermore, the packaging mechanism includes a cushioning layer, a ventilated shell, a receiving chamber, and a chamber cover. The inner side of the cushioning layer is in close contact with the patient's neck, the outer side of the cushioning layer is fixedly connected to the ventilated shell, the outer side of the ventilated shell is fixedly connected to the receiving chamber, the chamber cover is rotatably connected to the receiving chamber, and the ice pack is placed inside the receiving chamber.
[0011] Through the above technical solution, since the inner side of the padding layer is in close contact with the patient's neck, and the padding layer is made of skin-friendly and breathable elastic material, the breathability of the patient's skin is guaranteed, preventing the patient's skin from becoming uncomfortable and causing skin diseases.
[0012] Furthermore, multiple support plates are fixedly connected within the cushion layer, and the support plates are arranged symmetrically within the cushion layer, either longitudinally or laterally.
[0013] Through the above technical solution, multiple support plates are fixedly connected inside the cushion layer. The support plates are symmetrically arranged in the cushion layer in the longitudinal or transverse direction. The support plates are made of malleable material, which allows the cushion layer to match the shape of the patient's neck, making the cushion layer fit the patient's neck more closely and effectively improving the patient's comfort. The ice pack is placed in the receiving chamber. The setting of the ventilation shell makes there a gap between the ice pack and the cushion layer, preventing the ice pack from being too cold when it is first put in, which could cause frostbite to the patient.
[0014] Furthermore, the ventilation mechanism includes a ventilation host, a clamping plate, and an air guide pipe. A centrifugal fan blade is rotatably connected inside the ventilation host. An air outlet is provided on the top of the ventilation host, and an air inlet is provided on one side of the ventilation host. The clamping plate is slidably connected to the other side of the ventilation host. There are two sets of clamping plates, which are symmetrically slidably connected to the ventilation host. One end of the air guide pipe can be fixedly connected to the air inlet, and the other end of the air guide pipe can be fixedly connected to one end of the ventilation shell.
[0015] With the above technical solution, a centrifugal fan blade is rotatably connected inside the ventilation unit. An air outlet is provided on the top of the ventilation unit, and an air inlet is provided on one side of the ventilation unit. The clamping plate is slidably connected to the other side of the ventilation unit. There are two sets of clamping plates, which are symmetrically slidably connected to the ventilation unit. One end of the air guide pipe can be fixedly connected to the air inlet, and the other end of the air guide pipe can be fixedly connected to one end of the ventilation shell. When the centrifugal fan blade inside the ventilation unit is running, the ventilation unit draws air from the air guide pipe, that is, draws air from the ventilation shell, and then discharges the gas from the air outlet. This realizes ventilation of the ventilation shell on the wrapping mechanism, further assists the patient's neck skin to breathe, and prevents the patient's skin discomfort and skin diseases. The connection between the air guide pipe and the air inlet of the ventilation unit and the connection between the air guide pipe and the ventilation shell are magnetically connected, which is convenient for disassembly.
[0016] Furthermore, a limiting spring is fixedly connected to the clamping plate, and the other end of the limiting spring is fixedly connected to the ventilation host. The receiving chamber can be arranged between the two clamping plates.
[0017] With the above technical solution, since the clamping plate is fixedly connected to the limiting spring, and the other end of the limiting spring is fixedly connected to the ventilation host, the receiving chamber can be set between the two clamping plates. The receiving chamber is made of rigid material, and the two sides of the receiving chamber are provided with limiting grooves. The clamping plate can be locked in the limiting groove. The clamping plate and the limiting spring cooperate to fix the receiving chamber, that is, the ventilation mechanism and the packaging mechanism are fixedly connected.
[0018] Furthermore, the support mechanism includes a support frame, a threaded rod, and a support base. The support base is slidably connected to the hospital bed, and an electric lifting rod is fixedly connected to the support base. The top end of the electric lifting rod is fixedly connected to the bottom of the support frame, and the threaded rod is rotatably connected to the support frame.
[0019] With the above technical solution, since the support base is slidably connected to the hospital bed and an electric lifting rod is fixedly connected to the support base, and the top of the electric lifting rod is fixedly connected to the bottom of the support frame, the support base can slide and adjust its horizontal and vertical position on the hospital bed, that is, drive the support frame to adjust its horizontal and vertical position. The electric lifting rod can adjust the vertical height of the support frame.
[0020] Furthermore, a sliding plate is fixedly connected to the side of the ventilation unit away from the clamping plate. The sliding plate is slidably connected to the support frame. The threaded rod passes through the sliding plate and is threadedly connected to the sliding plate. A control motor is fixedly connected to one side of the support frame, and the shaft of the control motor is fixedly connected to the threaded rod.
[0021] With the above technical solution, a sliding plate is fixedly connected to the side of the ventilation host away from the clamping plate. The sliding plate is slidably connected to the support frame. A threaded rod passes through the sliding plate and is threadedly connected to the sliding plate. A control motor is fixedly connected to one side of the support frame. The control motor shaft is fixedly connected to the threaded rod, so that the rotation of the control motor can drive the threaded rod to rotate. The rotation of the threaded rod can drive the sliding plate to slide horizontally on the support frame, that is, drive the ventilation mechanism to adjust its horizontal position, that is, drive the wrapping mechanism to adjust its horizontal position.
[0022] Furthermore, a drive rack is fixedly connected to the bottom of the support frame, and a driven gear is fixedly connected to the cover shaft, the driven gear being able to mesh with the drive rack.
[0023] With the above technical solution, since a drive rack is fixedly connected to the bottom of the support frame and a driven gear is fixedly connected to the rotating shaft of the compartment cover, the driven gear can mesh with the drive rack. When the ventilation mechanism drives the packaging mechanism to slide horizontally on the support frame, the drive rack can drive the driven gear to rotate, that is, drive the compartment cover to rotate on the compartment, thereby opening or closing the compartment and facilitating the replacement of ice packs.
[0024] Furthermore, the fixing component includes an arc-shaped clamp, a sheath, and a locking plate. The two ends of the arc-shaped clamp can be inserted into the ventilation shell, the sheath is placed on the arc-shaped clamp, and the locking plate is disposed between the two wrapping mechanisms.
[0025] With the above technical solution, the fixing components include an arc-shaped splint, a sheath, and a locking plate. The two ends of the arc-shaped splint can be inserted into the ventilation shell, the sheath is placed on the arc-shaped splint, and the locking plate is located between the two wrapping mechanisms. This allows the two wrapping mechanisms to clamp on both sides of the patient's neck after the two ends of the arc-shaped splint are inserted into the ventilation shell. This allows the wrapping mechanisms to be fixed to the patient's neck without the aid of the ventilation mechanism and the support mechanism. This allows for simultaneous ice application when the patient needs to get out of bed and move around, facilitating patient movement and improving the ease of use for the patient. The sheath is placed on the arc-shaped splint and is made of a skin-friendly and breathable elastic material, enhancing the patient's comfort.
[0026] Furthermore, a handle is fixedly connected to one end of the compartment cover, and both ends of the locking plate can be locked inside the handle.
[0027] With the above technical solution, since one end of the cover is fixedly connected to a handle, the two ends of the locking plate can be locked inside the handle. After the two ends of the arc-shaped clamp are inserted into the ventilation shell, the two ends of the locking plate are locked inside the handle. The fixing component and the wrapping mechanism form a complete ring, which further fixes the wrapping mechanism and ensures that the wrapping mechanism is stably attached to both sides of the patient's neck. At the same time, after the two ends of the locking plate are locked inside the handle, the cover is locked on the receiving chamber to prevent the cover from opening accidentally and the ice pack from falling off. When the two ends of the locking plate are locked inside the handle, the locking plate does not come into contact with the patient's neck, preventing the patient from having difficulty breathing.
[0028] The beneficial effects of this invention are as follows:
[0029] (1) In this invention, the postoperative patient lies on the hospital bed and places the ice pack in the wrapping mechanism. The ventilation mechanism clamps the wrapping mechanism. The height of the ventilation mechanism and the wrapping mechanism is adjusted by the support mechanism. Then the ventilation mechanism slides horizontally on the support mechanism. The ventilation mechanism drives the wrapping mechanism to slide horizontally towards the patient's neck. During this process, the wrapping mechanism automatically closes. After the wrapping mechanism slides into place, it is close to both sides of the patient's neck, so that the patient's neck lesions are iced. This not only frees the patient's hands, but also the wrapping mechanism is only for the lesions on both sides of the patient's neck, without being completely close to the patient's entire neck, which effectively prevents the patient from having difficulty breathing and improves the comfort of the postoperative patient.
[0030] (2) In this invention, after applying ice for a period of time, the ventilation mechanism drives the wrapping mechanism to slide horizontally away from the patient's neck. During this process, the wrapping mechanism automatically opens, making it convenient to replace the ice pack.
[0031] (3) In this invention, when the patient needs to get out of bed and move, the wrapping mechanism is removed from the ventilation mechanism, and the two ends of the arc-shaped splint are inserted into the ventilation shell. The two wrapping mechanisms can be clamped on both sides of the patient's neck, so that the wrapping mechanism can be fixed to the patient's neck without the aid of the ventilation mechanism and the support mechanism. When the patient needs to get out of bed and move, ice can be applied at the same time, which facilitates the patient's movement and improves the patient's ease of use. The sheath is placed on the arc-shaped splint. The sheath is made of skin-friendly and breathable elastic material, which improves the patient's comfort. Attached Figure Description
[0032] Figure 1 This is a first-view structural schematic diagram of a postoperative ice pack nursing device for tonsillar fossa according to the present invention.
[0033] Figure 2 This is a second-view structural schematic diagram of a postoperative ice pack nursing device for tonsillar fossa according to the present invention;
[0034] Figure 3 This is a schematic diagram of the wrapping mechanism of a postoperative ice pack nursing device for tonsillar fossa according to the present invention;
[0035] Figure 4 This is an exploded structural diagram of the wrapping mechanism of a postoperative ice pack nursing device for tonsillar fossa according to the present invention;
[0036] Figure 5 This is a schematic diagram of the ventilation mechanism and support mechanism of a postoperative ice pack nursing device for tonsillar fossa according to the present invention.
[0037] Figure 6This is an exploded structural diagram showing the cooperation between the ventilation mechanism and the support mechanism of the postoperative ice pack care device for the tonsillar fossa according to the present invention.
[0038] Figure 7 This invention relates to a postoperative ice pack care device for the tonsillar fossa. Figure 2 A magnified view of a section at point A in the middle;
[0039] Figure 8 This is a schematic diagram of the structure of the receiving chamber and the chamber cover of the postoperative ice pack care device for tonsillar fossa according to the present invention;
[0040] Figure 9 This is a first-view structural diagram of the wrapping mechanism and fixing components of a postoperative ice pack nursing device for tonsillar fossa according to the present invention.
[0041] Figure 10 This is a second-view structural diagram of the wrapping mechanism and fixing components of the postoperative ice pack nursing device for tonsillar fossa according to the present invention;
[0042] Figure 11 This is an exploded structural diagram of the fixing component of a postoperative ice pack nursing device for tonsillar fossa according to the present invention.
[0043] Reference numerals: 1. Wrapping mechanism; 2. Ventilation mechanism; 3. Support mechanism; 4. Fixing component; 11. Padding layer; 12. Ventilation shell; 13. Container compartment; 14. Compartment cover; 111. Support plate; 131. Ice pack; 141. Driven gear; 142. Handle; 21. Ventilation unit; 22. Clamping plate; 23. Air duct; 211. Slide plate; 221. Limiting spring; 31. Support frame; 32. Threaded rod; 33. Support base; 311. Drive rack; 321. Control motor; 331. Electric lifting rod; 41. Arc-shaped clamping plate; 42. Sheath; 43. Locking plate. Detailed Implementation
[0044] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0045] like Figure 1 - Figure 2 and Figure 9 As shown, a postoperative ice pack nursing device for tonsillar fossa includes a wrapping mechanism 1, a ventilation mechanism 2, and a support mechanism 3. The wrapping mechanism 1 is arranged in two symmetrical sets on both sides of the patient's neck. The support mechanism 3 is also arranged in two sets and is symmetrically slidably connected to the hospital bed. The ventilation mechanism 2 is also arranged in two sets and is slidably connected to the support mechanism 3. The ventilation mechanism 2 can hold the wrapping mechanism 1.
[0046] An ice pack 131 is installed inside the parcel mechanism 1, and a ventilation mechanism 2 can ventilate the parcel mechanism 1.
[0047] The ventilation mechanism 2 slides on the support mechanism 3, which can drive the wrapping mechanism 1 to open or close.
[0048] The wrapping mechanism 1 can be fixed to both sides of the patient's neck by the fixing component 4.
[0049] In this embodiment, the postoperative patient lies on the hospital bed, and the ice pack 131 is placed inside the wrapping mechanism 1. The ventilation mechanism 2 holds the wrapping mechanism 1 in place. The height of the ventilation mechanism 2 and the wrapping mechanism 1 is adjusted by the support mechanism 3. Then, the ventilation mechanism 2 slides horizontally on the support mechanism 3, and the ventilation mechanism 2 drives the wrapping mechanism 1 to slide horizontally towards the patient's neck. During this process, the wrapping mechanism 1 closes. After the wrapping mechanism 1 slides into place, it fits tightly against both sides of the patient's neck, allowing the affected area of the patient's neck to receive ice. This not only frees the patient's hands, but also, since the wrapping mechanism 1 only targets the affected areas on both sides of the patient's neck, it does not fit tightly against the entire neck, effectively preventing breathing difficulties and improving the patient's comfort after surgery. After the ice pack has been applied for a period of time, the ventilation mechanism 2 drives the wrapping mechanism 1 to slide horizontally away from the patient's neck. During this process, the wrapping mechanism 1 can be opened, making it convenient to replace the ice pack 131.
[0050] like Figure 3 - Figure 4 As shown, the wrapping mechanism 1 includes a padding layer 11, a ventilated shell 12, a receiving chamber 13, and a chamber cover 14. The inner side of the padding layer 11 is in close contact with the patient's neck. The ventilated shell 12 is fixedly connected to the outer side of the padding layer 11. The receiving chamber 13 is fixedly connected to the outer side of the ventilated shell 12. The chamber cover 14 is rotatably connected to the receiving chamber 13. An ice pack 131 is placed inside the receiving chamber 13.
[0051] Multiple support plates 111 are fixedly connected inside the cushion layer 11. The support plates 111 are arranged symmetrically in the longitudinal or transverse direction inside the cushion layer 11.
[0052] In this embodiment, the support plate 111 is made of a malleable material, allowing the padding layer 11 to match the shape of the patient's neck, making the padding layer 11 fit the patient's neck more closely and effectively improving patient comfort. The ice pack 131 is placed in the receiving chamber 13. The ventilation shell 12 provides a gap between the ice pack 131 and the padding layer 11, increasing breathability while preventing the ice pack 131 from being too cold when it is first placed in, which could cause frostbite to the patient. The padding layer 11 is made of a skin-friendly and breathable elastic material, ensuring the breathability of the patient's skin and preventing skin discomfort and skin diseases.
[0053] like Figure 1 - Figure 8As shown, the ventilation mechanism 2 includes a ventilation host 21, a clamping plate 22, and an air guide pipe 23. A centrifugal fan blade is rotatably connected inside the ventilation host 21. An air outlet is provided on the top of the ventilation host 21, and an air inlet is provided on one side of the ventilation host 21. The clamping plate 22 is slidably connected to the other side of the ventilation host 21. There are two sets of clamping plates 22, which are symmetrically slidably connected to the ventilation host 21. One end of the air guide pipe 23 can be fixedly connected to the air inlet, and the other end of the air guide pipe 23 can be fixedly connected to one end of the ventilation shell 12.
[0054] A limiting spring 221 is fixedly connected to the clamping plate 22, and the other end of the limiting spring 221 is fixedly connected to the ventilation host 21. The receiving chamber 13 can be set between the two clamping plates 22.
[0055] The support mechanism 3 includes a support frame 31, a threaded rod 32, and a support base 33. The support base 33 is slidably connected to the hospital bed. An electric lifting rod 331 is fixedly connected to the support base 33. The top of the electric lifting rod 331 is fixedly connected to the bottom of the support frame 31. The threaded rod 32 is rotatably connected to the support frame 31.
[0056] A slide plate 211 is fixedly connected to the side of the ventilation unit 21 away from the clamping plate 22. The slide plate 211 is slidably connected to the support frame 31. A threaded rod 32 passes through the slide plate 211 and is threadedly connected to the slide plate 211. A control motor 321 is fixedly connected to one side of the support frame 31. The shaft of the control motor 321 is fixedly connected to the threaded rod 32.
[0057] A drive rack 311 is fixedly connected to the bottom of the support frame 31, and a driven gear 141 is fixedly connected to the rotating shaft of the cover 14. The driven gear 141 can mesh with the drive rack 311.
[0058] In this embodiment, the receiving chamber 13 is made of a rigid material, and the receiving chamber 13 is provided with limit grooves on both sides. The clamping plate 22 can be locked in the limit groove. The clamping plate 22 cooperates with the limit spring 221 to fix the receiving chamber 13, that is, the ventilation mechanism 2 and the wrapping mechanism 1 are fixedly connected.
[0059] The support base 33 can slide on the hospital bed to adjust its horizontal and vertical position, which in turn drives the support frame 31 to adjust its horizontal and vertical position. The electric lifting rod 331 can adjust the vertical height of the support frame 31. The adjustment of the horizontal and vertical position and vertical height of the support frame 31 can drive the ventilation mechanism 2 to adjust accordingly, which in turn drives the wrapping mechanism 1 to adjust. The control motor 321 can rotate to drive the threaded rod 32 to rotate. The rotation of the threaded rod 32 can drive the slide plate 211 to slide horizontally on the support frame 31, which in turn drives the ventilation mechanism 2 to adjust its horizontal and horizontal position, which in turn drives the wrapping mechanism 1 to adjust its horizontal and horizontal position. Ultimately, the horizontal and vertical position, horizontal and horizontal position and vertical height of the wrapping mechanism 1 can all be adjusted, making it convenient for the wrapping mechanism 1 to be aligned with the patient's neck.
[0060] When the ventilation mechanism 2 drives the packaging mechanism 1 to slide horizontally on the support frame 31, the drive rack 311 can drive the driven gear 141 to rotate, that is, drive the cover 14 to rotate on the receiving compartment 13, so as to open or close the receiving compartment 13 and facilitate the replacement of the ice pack 131.
[0061] When the centrifugal fan blades inside the ventilation host 21 are running, the ventilation host 21 draws air from the air duct 23, that is, from the ventilation shell 12, and then discharges the gas from the air outlet, thereby achieving ventilation of the ventilation shell 12 on the wrapping mechanism 1, further assisting the patient's neck skin to breathe, preventing the patient's skin discomfort and causing skin diseases.
[0062] like Figure 9 - Figure 11 As shown, the fixing component 4 includes an arc-shaped clamp 41, a sheath 42 and a locking plate 43. The two ends of the arc-shaped clamp 41 can be inserted into the ventilation shell 12. The sheath 42 is fitted on the arc-shaped clamp 41. The locking plate 43 is disposed between the two wrapping mechanisms 1.
[0063] One end of the cover 14 is fixedly connected to a handle 142, and both ends of the locking plate 43 can be locked into the handle 142.
[0064] In this embodiment, after the two ends of the arc-shaped splint 41 are inserted into the ventilation shell 12, the two wrapping mechanisms 1 can be clamped on both sides of the patient's neck, so that the wrapping mechanism 1 can be fixed to the patient's neck without the aid of the ventilation mechanism 2 and the support mechanism 3, so that the patient can apply ice at the same time when he / she needs to get out of bed and move, which facilitates the patient's movement and improves the patient's ease of use. The sheath 42 is placed on the arc-shaped splint 41. The sheath 42 is made of skin-friendly and breathable elastic material to improve the patient's comfort.
[0065] Simultaneously, after the two ends of the arc-shaped clamp 41 are inserted into the ventilation shell 12, the two ends of the locking plate 43 are locked in the handle 142. The fixing component 4 and the wrapping mechanism 1 form a complete ring, further fixing the wrapping mechanism 1 and ensuring that the wrapping mechanism 1 is stably attached to both sides of the patient's neck. At the same time, after the two ends of the locking plate 43 are locked in the handle 142, the cover 14 is locked on the receiving chamber 13 to prevent the cover 14 from opening accidentally and the ice pack 131 from falling off. When the two ends of the locking plate 43 are locked in the handle 142, the locking plate 43 does not contact the patient's neck to prevent the patient from having difficulty breathing.
[0066] Working principle:
[0067] During work, after surgery, when the patient needs to rest in bed, the patient lies on the hospital bed, the ice pack 131 is placed in the receiving chamber 13, and the clamping plate 22 fixes the receiving chamber 13.
[0068] The support base 33 slides on the hospital bed to adjust its horizontal and vertical position, which in turn drives the support frame 31 to adjust its horizontal and vertical position. The electric lifting rod 331 adjusts the vertical height of the support frame 31. The adjustment of the horizontal and vertical position and vertical height of the support frame 31 can drive the wrapping mechanism 1 to adjust accordingly, so that the wrapping mechanism 1 is aligned with the patient's neck.
[0069] Start the control motor 321. The rotation of the control motor 321 can drive the threaded rod 32 to rotate. The rotation of the threaded rod 32 can drive the slide plate 211 to slide horizontally on the support frame 31, that is, drive the ventilation mechanism 2 and the wrapping mechanism 1 to slide horizontally on the support frame 31. The ventilation mechanism 2 drives the wrapping mechanism 1 to slide horizontally towards the patient's neck. During this process, the drive rack 311 can drive the driven gear 141 to rotate in the forward direction, that is, drive the cover 14 to rotate in the forward direction on the receiving compartment 13, so that the cover 14 is closed. Then, after the wrapping mechanism 1 slides into place, the wrapping mechanism 1 is tightly attached to the patient's neck.
[0070] The support plate 111 allows the padding layer 11 to match the shape of the patient's neck, making the padding layer 11 fit the patient's neck more closely and effectively improving patient comfort. The ice pack 131 is placed in the receiving chamber 13. The ventilation shell 12 creates a gap between the ice pack 131 and the padding layer 11, increasing breathability while preventing the ice pack 131 from being too cold when it is first placed in, which could cause frostbite to the patient. The padding layer 11 is made of skin-friendly and breathable elastic material, ensuring the breathability of the patient's skin and preventing skin discomfort and skin diseases.
[0071] When the ventilation host 21 is started, the centrifugal fan blades inside the ventilation host 21 run, the ventilation host 21 draws air from the air guide pipe 23, that is, draws air from the ventilation shell 12, and then discharges the gas from the air outlet, realizing ventilation of the ventilation shell 12 on the wrapping mechanism 1, further assisting the patient's neck skin to breathe, preventing the patient's skin discomfort and causing skin diseases.
[0072] After applying ice for a period of time, the ventilation mechanism 2 drives the wrapping mechanism 1 to slide horizontally away from the patient's neck. During this process, the drive rack 311 can drive the driven gear 141 to rotate in the opposite direction, that is, drive the cover 14 to rotate in the opposite direction on the receiving chamber 13, so that the cover 14 can be opened, making it convenient to replace the ice pack 131.
[0073] When the patient needs to get out of bed, the wrapping mechanism 1 is removed from the ventilation mechanism 2, and the two ends of the arc-shaped splint 41 are inserted into the ventilation shell 12. The two wrapping mechanisms 1 can be clamped on both sides of the patient's neck, so that the wrapping mechanism 1 can be fixed to the patient's neck without the aid of the ventilation mechanism 2 and the support mechanism 3. This allows the patient to apply ice when they need to get out of bed, making it easier for the patient to move and improving the convenience of use. The sheath 42 is placed on the arc-shaped splint 41. The sheath 42 is made of skin-friendly and breathable elastic material to improve the patient's comfort.
[0074] Simultaneously, the two ends of the locking plate 43 are locked inside the handle 142, and the fixing component 4 and the wrapping mechanism 1 form a complete ring, further fixing the wrapping mechanism 1 and ensuring that the wrapping mechanism 1 is stably attached to both sides of the patient's neck. After the two ends of the locking plate 43 are locked inside the handle 142, the cover 14 is locked on the receiving compartment 13 to prevent the cover 14 from opening accidentally and the ice pack 131 from falling off, making it convenient for the patient to move. When the two ends of the locking plate 43 are locked inside the handle 142, the locking plate 43 does not contact the patient's neck, preventing the patient from having difficulty breathing.
[0075] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.
Claims
1. A tonsil cavity postoperative ice nursing device, comprising a wrapping mechanism (1), a ventilation mechanism (2) and a supporting mechanism (3), characterized in that, The wrapping mechanism (1) is symmetrically arranged on both sides of the patient's neck, the supporting mechanism (3) is two groups, the supporting mechanism (3) is symmetrically connected on the bed, the ventilation mechanism (2) is two groups, the ventilation mechanism (2) is connected on the supporting mechanism (3), and the ventilation mechanism (2) can clamp the wrapping mechanism (1); The ice bag (131) is arranged in the wrapping mechanism (1), and the ventilation mechanism (2) can ventilate the wrapping mechanism (1); The ventilation mechanism (2) can drive the wrapping mechanism (1) to open or close by sliding on the supporting mechanism (3); The wrapping mechanism (1) can be fixed on both sides of the patient's neck through the fixing assembly (4); The wrapping mechanism (1) comprises a soft pad layer (11), a ventilation shell (12), a containing bin (13) and a bin cover (14), the inner side of the soft pad layer (11) is close to the patient's neck, the outer side of the soft pad layer (11) is fixedly connected with the ventilation shell (12), the outer side of the ventilation shell (12) is fixedly connected with the containing bin (13), the bin cover (14) is rotatably connected on the containing bin (13), and the ice bag (131) is placed in the containing bin (13); The ventilation mechanism (2) comprises a ventilation host (21), a clamping plate (22) and an air guide pipe (23), the centrifugal fan blade is rotatably connected in the ventilation host (21), the ventilation host (21) is provided with an air outlet on the top, the ventilation host (21) is provided with an air inlet on one side, the clamping plate (22) is slidably connected on the other side of the ventilation host (21), the clamping plate (22) is two groups, the clamping plate (22) is symmetrically connected on the ventilation host (21), one end of the air guide pipe (23) can be fixedly connected with the air inlet, and the other end of the air guide pipe (23) can be fixedly connected with one end of the ventilation shell (12); The limiting spring (221) is fixedly connected on the clamping plate (22), the other end of the limiting spring (221) is fixedly connected with the ventilation host (21), and the containing bin (13) can be arranged between the two clamping plates (22); The supporting mechanism (3) comprises a supporting frame (31), a threaded rod (32) and a supporting base (33), the supporting base (33) is slidably connected on the bed, the supporting base (33) is fixedly connected with an electric lifting rod (331), the top end of the electric lifting rod (331) is fixedly connected with the bottom of the supporting frame (31), and the threaded rod (32) is rotatably connected on the supporting frame (31); The ventilation host (21) is fixedly connected with a sliding plate (211) away from the clamping plate (22), the sliding plate (211) is slidably connected on the supporting frame (31), the threaded rod (32) penetrates through the sliding plate (211), the threaded rod (32) is screwedly connected with the sliding plate (211), one side of the supporting frame (31) is fixedly connected with a control motor (321), and the control motor (321) is fixedly connected with the threaded rod (32) through the rotating shaft. The support frame (31) is fixedly connected with a driving rack (311) at the bottom, a driven gear (141) is fixedly connected to the rotating shaft of the bin cover (14), and the driven gear (141) can engage with the driving rack (311).
2. The tonsillar fossa post-operative ice care device of claim 1, wherein, A plurality of support plates (111) are fixedly connected in the soft cushion layer (11), and the support plates (111) are symmetrically arranged longitudinally or transversely in the soft cushion layer (11).
3. The tonsillar fossa post-operative ice care device of claim 1, wherein, The fixing assembly (4) comprises an arc-shaped clamping plate (41), a sheath (42) and a locking plate (43), both ends of the arc-shaped clamping plate (41) can be inserted into the ventilation shell (12), the sheath (42) is sleeved on the arc-shaped clamping plate (41), and the locking plate (43) is arranged between the two wrapping mechanisms (1).
4. The tonsillar fossa post-operative ice care device of claim 3, wherein, One end of the bin cover (14) is fixedly connected with a handle (142), and both ends of the locking plate (43) can be clamped in the handle (142).
Citation Information
Patent Citations
Medical tonsil buccal ice compress device
CN120241369A
Tonsil postoperative cold compress device
CN221786967U