Uterus heating device for human assisted reproduction embryo transplantation

Through the synchronous control of the belt-type heat compress heating assembly and the uterine cavity heating assembly, the problems of heat transfer loss and inaccurate heating in existing equipment are solved, efficient heating and precise temperature control of the uterine cavity are achieved, and implantation of reproductive embryos is promoted.

CN120478033APending Publication Date: 2025-08-15SHANGHAI NINTH PEOPLES HOSPITAL SHANGHAI JIAO TONG UNIV SCHOOL OF MEDICINE
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Patent Information

Application Number
CN202510840725.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-23
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

The existing reproductive embryo transfer equipment has problems such as heat transfer loss, inaccurate heating, and may damage the endometrium or cervical mucosa during the heating process.

Method used

The belt-type heat compress heating assembly and the uterine cavity heating assembly are adopted. The heating of graphene heater sheet and electric heating tube is controlled separately through the electric heating controller to achieve synchronous heating of the uterine peripheral and uterine cavity, and the heating position is flexibly adjusted using low-thermal conductive materials and Velcro structure.

Benefits of technology

It improves the heating efficiency inside the uterine cavity, reduces heat loss, provides accurate temperature control, reduces the risk of damage to the endometrium and cervical mucosa, and promotes the implantation environment of reproductive embryos.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a uterus heating device for human assisted reproductive embryo transplantation. The uterus heating device comprises a waistband; the hot compress heating assembly is arranged on the waistband and used for conducting hot compress heating on the abdomen part on the outer side of the uterus of the patient; the uterine cavity heating assembly is used for being inserted into the uterine cavity of the patient for heating; the electric heating controller is arranged on the waistband and connected with the hot compress heating assembly and the uterine cavity heating assembly through wires so as to control heating starting and stopping of the hot compress heating assembly and the uterine cavity heating assembly. Compared with the prior art, according to the human assisted reproductive embryo transplantation uterus heating device, the hot compress heating assembly of the uterus heating device heats the outer side of the abdomen, the temperature of the peripheral tissue of the uterus is increased, pelvic cavity blood circulation is promoted, the uterus cavity heating assembly directly heats the interior of the uterus cavity, and the temperature of the uterus cavity is accurately controlled; in-vitro hot compress assists in-vivo heating, the overall temperature rising time is shortened, the requirement for high-load operation of a single assembly is reduced, and the device is particularly suitable for precise control over the temperature of the uterus during embryo transplantation.
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Description

Technical Field

[0001] The present invention relates to the field of reproductive embryo transplantation, and in particular to a human assisted reproductive embryo transplantation warm uterine device. Background Art

[0002] Reproductive embryo transfer is an artificial medical assisted reproductive technology that transplants human embryos obtained through in vitro fertilization into the female uterine cavity at the blastomere or blastocyst stage. This technology uses human intervention to help sperm and egg meet and combine, eventually forming an embryo that is implanted into the mother's uterus, thereby enabling infertile patients to complete conception.

[0003] At present, before the reproductive embryo is implanted into the uterine cavity, in order to increase the implantation probability of the embryo in the inner wall of the uterus, a uterine warmer and other equipment are usually used to perform heat compress treatment on the female uterus to ensure that the reproductive embryo has a warm implantation environment. However, the traditional uterine warmer equipment only uses a waist-tied heat compress belt to heat the abdominal skin outside the uterus. The heat generated by the heat compress belt needs to pass through the abdominal skin, subcutaneous fat and muscle tissue before it can gradually radiate to the uterine area. It can be seen that the heat radiation generated by the heat compress belt will cause heat loss in the process of penetrating the subcutaneous human tissue, resulting in delayed heat transfer and poor heating therapy effect inside the female uterine cavity. In addition, the heating plate on the heat compress bag of the traditional uterine warmer is fixed and cannot be moved, and the heating area cannot be flexibly adjusted according to the part of the female uterus that needs concentrated heat.

[0004] In addition, patent CN218010123U discloses a human assisted reproductive embryo transplantation thermouterine device, including an electric heating rod, an outer sheath and a physical therapy device, the left and right ends of the outer sheath are respectively provided with an opening and an operation port, the physical therapy device includes a connecting ring, a plurality of physical therapy rods are evenly distributed on the circumference of the left end of the connecting ring, and a plurality of physical therapy rods are installed with a plurality of infrared lamps on the outward side, and a plurality of groups of clips are provided on the inner wall of the outer sheath corresponding to the plurality of physical therapy rods, the clips include two clips, the two clips are fixedly connected to the inner wall of the outer sheath, and the spacing between the two clips near the opening is equal to the width of the physical therapy rod, and the spacing between the two clips near the operation port is greater than the width of the physical therapy rod, and a plurality of heat-conducting strips for supporting the electric heating rod and conducting heat are evenly distributed on the inner wall of the outer sheath. However, the device provided by the above patent only heats the inside of the uterine cavity through intrauterine heating. If the heating time is long, there will be a long-term high-temperature environment in the uterine cavity, which may destroy the normal balance of bacteria in the reproductive tract. If the target temperature is to be reached quickly, the power of the electric heating tube may need to be increased, resulting in burns to the endometrium or cervical mucosa due to close high-temperature contact. Summary of the Invention

[0005] The purpose of the present invention is to provide a human assisted reproductive embryo transfer warming device in order to overcome at least one of the defects of the above-mentioned prior art.

[0006] The purpose of the present invention can be achieved by the following technical solutions:

[0007] A human assisted reproductive embryo transfer warm uterine device, comprising:

[0008] belt;

[0009] A hot compress heating component is provided on the waist belt and is used to apply hot compress heating to the abdominal area outside the patient's uterus;

[0010] The intrauterine heating component is used to be inserted into the patient's uterine cavity for heating.

[0011] An electric heating controller is provided on the waist belt and is connected to the hot compress heating component and the uterine cavity heating component respectively through wires to control the heating on and off of the hot compress heating component and the uterine cavity heating component.

[0012] Furthermore, the hot compress heating component includes a shell arranged in the middle of the waist belt, a heat insulation layer, an adhesive layer, a heating patch, a mesh, and a sealing rubber ring arranged from the inside to the outside starting from the inner side of the shell.

[0013] Furthermore, a first opening is provided on a side of the shell near the heat insulation layer, the heat insulation layer is located in the first opening, and a Velcro adhesive loop hook surface is provided on the periphery of the first opening.

[0014] Furthermore, the thermal insulation layer is a layered structure made of a low thermal conductivity material, a second opening is provided on a side of the layered structure near the adhesive layer, and the adhesive layer is located in the second opening.

[0015] Furthermore, the adhesive layer is a Velcro patch with a fleece surface, and the adhesive layer is fixedly connected to the thermal insulation layer, and the fixed connection method is gluing or other connection methods that can achieve fixed connection; the fleece surface of the adhesive layer is on the side away from the thermal insulation layer, and the adhesive layer is detachably connected to the heating patch through the fleece surface.

[0016] Furthermore, the heating patch includes a rubber sleeve, a graphene electric heating sheet arranged in the rubber sleeve, a first tourmaline stone sheet arranged on one side of the rubber sleeve, and a Velcro hook surface arranged on the other side of the rubber sleeve. The heating patch is detachably connected to the adhesive layer through the adhesion between the Velcro hook surface and the Velcro fleece surface patch; wherein, the graphene electric heating sheet is connected to the electric heating controller.

[0017] Furthermore, a Velcro loop velvet surface is provided on one side of the mesh cloth near the heating patch, and the Velcro loop velvet surface is detachably connected to a Velcro loop hook surface provided on the shell.

[0018] Furthermore, the uterine cavity heating assembly includes a sheath, a sleeve and an electric heating tube arranged in sequence from the outside to the inside, and the electric heating tube is connected to the electric heating controller;

[0019] One end of the sheath is closed and the other end is open, the open end of the sheath extends from the inside to the outside to form a first annular plate that is concave inward, and the middle portion of the sheath is provided with an arc-shaped protrusion;

[0020] One end of the sleeve is closed and the other end is open, a second annular plate is provided at the open end of the sleeve, the first annular plate abuts against the second annular plate, and second tourmaline stone pieces are provided at intervals on the outer wall of the sleeve;

[0021] A connecting seat is provided on one side of the electric heating pipe near the open end of the sleeve, the connecting seat comprising a first connecting seat and a second connecting seat connected in sequence, and a rubber gasket sleeved on the first connecting seat, and an outer wall of the first connecting seat is provided with an external thread;

[0022] An inner wall of the open end of the sleeve is provided with an internal thread, and the internal thread and the external thread are rotated until the sleeve abuts against the second connecting seat.

[0023] Furthermore, the sheath is made of silicone material, an arc-shaped protrusion structure is arranged around the outer side of the sheath, a ring plate is arranged at the bottom end of the sheath, and the upper side of the ring plate is a curved surface structure.

[0024] Furthermore, the sleeve is a cylindrical structure with an open lower side, a threaded structure is provided on the inner wall of the sleeve cylindrical structure near the bottom end, a ring plate is provided on the outer side of the sleeve cylindrical structure near the bottom end, the upper side of the ring plate of the sleeve is fitted on the lower side of the ring plate of the sheath, the sleeve is made of polycarbonate plastic material as a whole, and the outer side of the sleeve is densely covered with second tourmaline stone pieces.

[0025] Furthermore, the waist belt is made of silicone material, the outer side of the waist belt is sewn with a Velcro hook surface, the inner side of the waist belt is sewn with a Velcro velvet surface, and the Velcro hook surface on the outer side of the waist belt and the Velcro velvet surface on the inner side of the waist belt are adhered to each other.

[0026] Furthermore, a cylindrical boss is provided at the center position of the upper side surface of the connecting seat, and a threaded structure is provided on the outer side surface of the cylindrical boss of the connecting seat. The threaded engagement of the inner wall of the sleeve barrel structure is connected to the threaded structure on the outer side surface of the cylindrical boss of the connecting seat, and a rubber gasket is bonded to the upper side surface of the connecting seat.

[0027] Furthermore, the uterine heating device also includes a storage bag arranged on the outside of the belt, and the electric heating controller is located in the storage bag.

[0028] Compared with the prior art, the present invention has the following advantages:

[0029] (1) The present invention provides a uterine heating device for human assisted reproductive embryo transplantation. The hot compress heating component of the uterine heating device heats the outside of the abdomen to increase the temperature of the peripheral tissue of the uterus and promote pelvic blood circulation. The uterine cavity heating component directly heats the inside of the uterine cavity to accurately control the uterine cavity temperature; external hot compress assists internal heating, shortens the overall heating time, and reduces the need for high-load operation of a single component. It is particularly suitable for accurate control of uterine temperature during embryo transplantation.

[0030] (2) The present invention provides a human assisted reproductive embryo transplantation heating uterine device. On the one hand, the present invention inserts a sleeve with a silicone sheath into the uterine cavity, and then the electric heating controller controls the electric heating tube in the uterine cavity heating device through a wire to energize the electric heating tube, and the electric heating tube generates heat to heat the inside of the uterine cavity. On the other hand, the electric heating controller controls the graphene electric heating plate to generate heat through a wire, so that the heat emitted by the graphene electric heating plate radiates through the mesh to heat the female abdomen synchronously. The electric heating tube cooperates with the graphene electric heating plate to achieve synchronous heating inside and outside the uterine cavity, avoiding the situation where heat transfer loss is formed by simply using the outer side of the abdomen to heat, greatly improving the heating effect inside the uterine cavity, and providing a good uterine cavity temperature environment for reproductive embryo implantation.

[0031] (3) The present invention provides a human assisted reproductive embryo transplantation thermouterine device. The present invention utilizes the bonding structure of the Velcro hook surface on the rear side of the rubber sleeve to the rear side of the Velcro velvet patch, so that the rubber sleeve drives the graphene heating plate on the inner side to flexibly bond and adjust the heating position according to the heated part of the female uterus, ensuring that the graphene heating plate can accurately and centrally cover the heated part of the uterus, thereby exerting the effect of warm care for the uterus. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 It is a structural diagram of an embodiment.

[0033] Figure 2 2 is a schematic diagram of the upward side view structure in the embodiment.

[0034] Figure 3 Schematic diagram of the heating patch structure in the embodiment.

[0035] Figure 4 2 is a schematic diagram of the rear side structure of the heating patch in the embodiment.

[0036] Figure 5 Schematic diagram of the cross-section structure of the heating patch in the embodiment.

[0037] Figure 6 Schematic diagram of the structure of the uterine cavity heating device in the embodiment.

[0038] Figure 7 2 is a schematic diagram of the structure of the uterine cavity heating device in the embodiment from a bottom up view.

[0039] Figure 8 Schematic diagram of the cross-section structure of the uterine cavity heating device in the embodiment.

[0040] Figure 9 In the embodiment Figure 8 Schematic diagram of the enlarged structure of part A in the middle.

[0041] Figure 10 Schematic diagram of the cross-section structure in the embodiment.

[0042] Figure 11 In the embodiment Figure 10 Schematic diagram of the enlarged structure of part B in the middle.

[0043] Figure 12 Schematic diagram of the explosion structure in the embodiment.

[0044] Figure 13 2 is a schematic diagram of the rear side structure in the embodiment.

[0045] The numbers in the figure show:

[0046] 1. Belt;

[0047] 2. Velcro hook surface;

[0048] 3. Velvet surface;

[0049] 4. Casing;

[0050] 5. Power cord;

[0051] 6. Electric heating controller;

[0052] 7. Container bag;

[0053] 8. Insulation soft hose;

[0054] 9. Uterine cavity heating device; 901. Sheath; 902. Connecting seat; 903. Sleeve; 904. Rubber gasket; 905. Electric heating tube; 906. Second tourmaline stone;

[0055] 10. Sealing rubber ring;

[0056] 11. Velcro adhesive loop hook surface;

[0057] 12. Heating patch; 1201. Rubber sleeve; 1202. Graphene heating sheet; 1203. Velcro hook surface; 1204. First tourmaline stone sheet;

[0058] 13. Mesh;

[0059] 14. Velcro adhesive loop velvet surface;

[0060] 15. Thermal insulation layer;

[0061] 16. Velcro fleece patch. DETAILED DESCRIPTION

[0062] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments. This embodiment is implemented based on the technical solution of the present invention, and provides a detailed implementation method and specific operation process, but the protection scope of the present invention is not limited to the following embodiments.

[0063] The present invention provides a human assisted reproductive embryo transplantation hot uterine device, the specific structure of which is shown in Figure 1-13 , including a waist belt 1, a hot compress heating component, a uterine cavity heating component and an electric heating controller 6;

[0064] The hot compress heating component is provided on the waist belt 1 and is used to apply hot compress to the abdominal area outside the patient's uterus;

[0065] The uterine cavity heating component is used to be inserted into the patient's uterine cavity for heating.

[0066] The electric heating controller 6 is arranged on the waist belt 1 and is connected to the hot compress heating component and the uterine cavity heating component through wires to control the heating on and off of the hot compress heating component and the uterine cavity heating component.

[0067] In some embodiments of the present invention, the hot compress heating component includes a shell 4 arranged in the middle of the belt 1, an insulation layer 15 arranged from the inside to the outside starting from the inner side of the shell 4, an adhesive layer 16, a heating patch 12, a mesh 13, and a sealing rubber ring 10.

[0068] In some embodiments of the present invention, a first opening is provided on a side of the shell 4 close to the thermal insulation layer 15 , the thermal insulation layer 15 is located in the first opening, and a Velcro hook surface 11 is provided on the periphery of the first opening.

[0069] In some embodiments of the present invention, the thermal insulation layer 15 is a layered structure made of a low-thermal-conductivity material. A second opening is defined on the side of the layered structure near the adhesive layer 16, and the adhesive layer 16 is positioned within the second opening. The low-thermal-conductivity material can be aerogel. In other words, the thermal insulation layer 15 is a trough structure with an opening on the rear side, and the entire thermal insulation layer 15 is made of aerogel.

[0070] In some embodiments of the present invention, the adhesive layer 16 is a Velcro velvet patch 16, and the adhesive layer 16 is fixedly connected to the thermal insulation layer 15, and the fixed connection method is gluing or other connection methods that can achieve fixed connection; the velvet surface of the adhesive layer 16 is on the side away from the thermal insulation layer 15, and the adhesive layer 16 is detachably connected to the heating patch 12 through the velvet surface.

[0071] In some embodiments of the present invention, the heating patch 12 includes a rubber sleeve 1201, a graphene electric heating plate 1202 arranged in the rubber sleeve 1201, a first tourmaline stone piece 1204 arranged on one side of the rubber sleeve 1201, and a Velcro hook surface 1203 arranged on the other side of the rubber sleeve 1201. The heating patch 12 is detachably connected to the adhesive layer 16 through the adhesion between the Velcro hook surface 1203 and the Velcro fleece patch 16; wherein, the graphene electric heating plate 1202 is connected to the electric heating controller 6. That is to say, the heating patch 12 includes a rubber sleeve 1201, a graphene electric heating sheet 1202, a Velcro plate nail hook surface 1203 and a first tourmaline stone piece 1204; the graphene electric heating sheet 1202 is placed on the inner side of the rubber sleeve 1201, the graphene electric heating sheet 1202 and the electric heating controller 6 are connected by a wire, the front side of the rubber sleeve 1201 is bonded with the first tourmaline stone piece 1204, the back side of the rubber sleeve 1201 is bonded with the Velcro plate nail hook surface 1203, and the Velcro plate nail hook surface 1203 on the back side of the rubber sleeve 1201 is adhered to the Velcro velvet patch 16.

[0072] In some embodiments of the present invention, a Velcro loop velvet surface 14 is provided on the side of the mesh 13 close to the heating patch 12 , and the Velcro loop velvet surface 14 is detachably connected to the Velcro loop hook surface 11 provided on the shell 4 .

[0073] In some embodiments of the present invention, the intrauterine heating assembly includes a sheath 901, a sleeve 903, and an electric heating tube 905 arranged in sequence from the outside to the inside, and the electric heating tube 905 is connected to the electric heating controller 6;

[0074] In some embodiments of the present invention, one end of the sheath 901 is closed and the other end is open, the open end of the sheath 901 extends from the inside to the outside to form a first annular plate that is concave inward, and the middle portion of the sheath 901 is provided with an arc-shaped protrusion; that is, the sheath 901 is made of silicone material, the outer side surface of the sheath 901 is surrounded by an arc-shaped protrusion structure, the bottom end of the sheath 901 is provided with a ring plate, and the upper side surface of the ring plate is a curved surface structure.

[0075] In some embodiments of the present invention, one end of the sleeve 903 is closed and the other end is open, and a second annular plate is provided at the open end of the sleeve 903, the first annular plate is abutted against the second annular plate, and second tourmaline flakes 906 are provided at intervals on the outer wall of the sleeve 903; that is, the sleeve 903 is a cylindrical structure with an open lower side, a threaded structure is provided on the inner wall of the cylindrical structure of the sleeve 903 near the bottom end, and a ring plate is provided on the outer side of the cylindrical structure of the sleeve 903 near the bottom end, and the upper side of the ring plate of the sleeve 903 is fitted on the lower side of the ring plate of the sheath 901, and the sleeve 903 is made of polycarbonate plastic material as a whole, and the outer side of the sleeve 903 is densely covered with intracavitary tourmaline flakes 906.

[0076] In some embodiments of the present invention, a connecting seat 902 is provided on one side of the electric heating pipe 905 near the open end of the sleeve 903. The connecting seat 902 includes a first connecting seat and a second connecting seat connected in sequence, and a rubber gasket 904 sleeved on the first connecting seat. The outer wall of the first connecting seat is provided with an external thread.

[0077] In some embodiments of the present invention, the inner wall of the open end of the sleeve 903 is provided with an internal thread, and the internal thread and the external thread are rotated until the sleeve abuts the second connecting seat. In other words, a cylindrical boss is provided at the center of the upper side of the connecting seat 902, and the outer side of the cylindrical boss of the connecting seat 902 is provided with a threaded structure. The threads on the inner side wall of the cylindrical structure of the sleeve 903 engage with the threaded structure on the outer side of the cylindrical boss of the connecting seat 902, and a rubber gasket 904 is bonded to the upper side of the connecting seat 902.

[0078] In some embodiments of the present invention, the uterine heating device further comprises a storage bag 7 provided on the outside of the waist belt 1, and the electric heating controller 6 is located in the storage bag 7. Optionally, a power cord 5 is installed on the left side of the electric heating controller 6, and an insulating soft rubber tube 8 is installed on the lower side of the electric heating controller 6, and a wire is provided on the inner side of the insulating soft rubber tube (8).

[0079] In some embodiments of the present invention, the belt 1 is made of silicone material, the outer side of the belt 1 is sewn with a Velcro hook surface 2, and the inner side of the belt 1 is sewn with a Velcro velvet surface 3, and the Velcro hook surface 2 on the outer side of the belt 1 and the Velcro velvet surface 3 on the inner side of the belt 1 are adhered to each other.

[0080] Example

[0081] like Figures 1-13As shown, this embodiment provides a human assisted reproductive embryo transplantation hot uterine device, including a holding bag 7; a belt 1 is bonded to the back side of the holding bag 7, an electric heating controller 6 is placed on the inner side of the holding bag 7, a power cord 5 is installed on the left side of the electric heating controller 6, an insulating soft rubber tube 8 is installed on the lower side of the electric heating controller 6, and a wire is provided on the inner side of the insulating soft rubber tube 8; it also includes a casing 4, a uterine cavity heating device 9 and a mesh 13; the rear end of the casing 4 is bonded with a Velcro adhesive ring hook surface 11, the outer side of the casing 4 is installed with a belt 1, the back side of the casing 4 is bonded with a heat insulation layer 15, and the back side of the heat insulation layer 15 is bonded with a Velcro velvet patch 16. The rear side of the velvet patch 16 is bonded with a heating patch 12; the intrauterine heating device 9 includes a sheath 901, a connecting seat 902, a sleeve 903, a rubber gasket 904, an electric heating tube 905 and a second tourmaline stone piece 906; the connecting seat 902 is bonded to the rubber gasket 904, and an insulating soft rubber tube 8 is installed at the bottom end of the connecting seat 902; the outer side of the sleeve 903 is bonded with the sheath 901, the sleeve 903 is bonded to the second tourmaline stone piece 906, and the inner side of the sleeve 903 is embedded with an electric heating tube 905, and the electric heating tube 905 is connected to the electric heating controller 6 through a wire; the front side of the mesh 13 is sewn with a velvet surface 14 with a Velcro sticky loop.

[0082] In this embodiment, the heating patch 12 includes a rubber sleeve 1201, a graphene electric heating sheet 1202, a Velcro hook surface 1203 and a first tourmaline stone sheet 1204; the graphene electric heating sheet 1202 is placed on the inner side of the rubber sleeve 1201, and the graphene electric heating sheet 1202 and the electric heating controller 6 are connected by a wire. The first tourmaline stone sheet 1204 is bonded to the front side of the rubber sleeve 1201. The pyroelectric effect of the first tourmaline stone sheet 1204 is utilized to make the first tourmaline stone sheet 1204 Negative ions and far infrared rays generated during the heating process dilate the abdominal and uterine blood vessels of the human body, promoting blood circulation and metabolism in the uterine blood vessels. The back side of the rubber sleeve 1201 is bonded with a Velcro hook surface 1203. The Velcro hook surface 1203 on the back side of the rubber sleeve 1201 and the Velcro velvet surface patch 16 adhere to each other, so that the heating patch 12 can be pasted at any position on the back side of the Velcro velvet surface patch 16, allowing the heating patch 12 to adjust the heating area according to the heating position of the female uterus.

[0083] In this embodiment, a sealing rubber ring 10 is bonded to the edge of the rear side of the mesh 13, and the sealing rubber ring 10 fits tightly to the female abdomen to prevent heat from being lost through the contact between the abdominal skin surface and the rear side of the mesh 13. The Velcro adhesive ring velvet surface 14 sewn on the front side of the mesh 13 is bonded to the Velcro adhesive ring hook surface 11 on the rear side of the casing 4, forming a quick-release separation structure of the mesh 13 and the casing 4 using Velcro adhesion, which facilitates the rapid disassembly and separation of the mesh 13 and the casing 4 to clean the mesh 13 and the sealing rubber ring 10 separately.

[0084] In this embodiment, the thermal insulation layer 15 is a groove structure with an opening on the rear side. The thermal insulation layer 15 is made of aerogel material as a whole. The low thermal conductivity of aerogel is utilized to prevent the heat generated by the graphene heating plate 1202 in the heating patch 12 from diffusing toward the housing 4, so that the heat generated by the graphene heating plate 1202 is concentrated to flow to the female's abdominal skin, reducing heat loss and improving heating efficiency.

[0085] In this embodiment, the sheath 901 is made of silicone material. The flexible structural characteristics of silicone material are utilized to make the sheath 901 fit more closely to the skin inside the female uterine cavity, preventing the uterine cavity heating device 9 from scratching the inner wall of the uterine cavity and the cervix when penetrating into the female uterus, thereby reducing the female pain. The outer side surface of the sheath 901 is surrounded by an arc-shaped convex structure. When the uterine cavity heating device 9 is subjected to a slight external force, the lower edge of the arc-shaped convex structure of the sheath 901 will form a barrier with the contact surface of the cervix, preventing the uterine cavity heating device 9 from slipping out of the uterine cavity as a whole, ensuring that the uterine cavity heating device 9 is stably placed in the female uterine cavity. A ring plate is provided at the bottom end of the sheath 901, and the upper side surface of the ring plate is an arc surface structure.

[0086] In this embodiment, the sleeve 903 is a cylindrical structure with an opening on the lower side. A threaded structure is provided on the inner wall of the sleeve 903 cylindrical structure near the bottom end. A ring plate is provided on the outer side of the sleeve 903 cylindrical structure near the bottom end. The side surface of the ring plate of the sleeve 903 fits on the lower side surface of the ring plate of the sheath 901. The ring plate structure of the sleeve 903 supports the ring plate of the sheath 901 to block the female vaginal opening, so that the bottom end of the uterine cavity heating device 9 remains outside the female vaginal opening, preventing the uterine cavity heating device 9 from completely penetrating into the female uterine cavity, making it convenient for the uterine cavity heating device 9 to be taken out of the female uterine cavity. 03 is made of polycarbonate plastic material as a whole, and the outer side of the sleeve 903 is densely covered with second tourmaline stone pieces 906. The good thermal conductivity and insulation characteristics of the polycarbonate plastic material are utilized to quickly transfer the heat generated by the electric heating tube 905 to the second tourmaline stone pieces 906 and the sheath 901 for heating. The second tourmaline stone pieces 906 generate negative ions and far infrared rays during the heating process, which promote blood circulation in the blood vessels on the inner wall of the uterine cavity. The sheath 901 heats the uterine cavity, which not only improves the temperature environment inside the uterine cavity, but also effectively avoids the risk of electrical contact between the electric heating tube 905 and the inner wall of the uterine cavity.

[0087] In this embodiment, the belt 1 is made of silicone material, and the outer side surface of the belt 1 is sewn with a Velcro hook surface 2, and the inner side surface of the belt 1 is sewn with a Velcro velvet surface 3. The Velcro hook surface 2 on the outer side surface of the belt 1 and the Velcro velvet surface 3 on the inner side surface of the belt 1 are adhered to each other. The flexible material structure of silicone material is utilized to make the belt 1 cooperate with the Velcro hook surface 2 and the Velcro velvet surface 3 to be quickly wrapped around and tied according to the waist shape of different women. The belt 1 fits the skin of the female waist, thereby improving the wearing comfort of the belt 1.

[0088] In this embodiment, a cylindrical boss is provided at the center position of the upper side surface of the connecting seat 902, and a threaded structure is provided on the outer side surface of the cylindrical boss of the connecting seat 902. The threaded engagement of the inner side wall of the barrel structure of the sleeve 903 is connected to the threaded structure on the outer side surface of the cylindrical boss of the connecting seat 902, so that the sleeve 903 drives the sheath 901 to be twisted and separated from the connecting seat 902, making it convenient for the sleeve 903 and the sheath 901 to be disassembled separately to clean the uterine cavity mucus attached to the surface. A rubber gasket 904 is bonded to the upper side surface of the connecting seat 902. During the process of tightening the sleeve 903 and the connecting seat 902 through the threaded structure, the upper side surface of the connecting seat 902 is tightly fitted to the bottom end of the sleeve 903 for sealing, thereby preventing the uterine cavity mucus from penetrating into the inside of the sheath 901 and contaminating the electric heating tube 905.

[0089] The specific usage and function of this embodiment are as follows:

[0090] When performing hot compress work on the female uterus, the present invention first manually adjusts the position of the heating patch 12 according to the heated part of the female uterus, holds the rubber sleeve 1201, and sticks the Velcro hook surface 1203 on the back side of the rubber sleeve 1201 to the position opposite to the back side of the Velcro velvet patch 16 and the heated part of the uterus, then sticks the Velcro adhesive loop velvet surface 14 on the front side of the mesh 13 to the Velcro adhesive loop hook surface 11 of the casing 4, and the mesh 13 covers the heating patch 12, then ties the belt 1 to the female waist, and sticks the Velcro hook surface 2 on the outer side of the belt 1 and the Velcro velvet surface 3 on the inner side of the belt 1 to each other, then inserts the uterine cavity heating device 9 into the uterine cavity from the female vaginal opening, and then connects the power cord 5 to the external power supply device, and the external power supply device supplies power to the electric heating controller 6 through the power cord 5, and the user controls the electric heating controller 6 through the electric heating controller 6 The graphene heating sheet 1202 generates heat, and the graphene heating sheet 1202 heats the first tourmaline stone sheet 1204. The first tourmaline stone sheet 1204 generates far infrared rays and negative ions when heated, which act on the female abdomen, promoting blood circulation of the organs in the inner area of the female abdomen. The heat generated by the graphene heating sheet 1202 heats the corresponding area of the female abdomen, and the heat is transferred to the uterine area through the subcutaneous tissue and fat muscle. Then the user controls the electric heating tube 905 to generate heat through the electric heating controller 6. The heat of the electric heating tube 905 is directly transferred to the inside of the female uterine cavity through the sheath 901 and the sleeve 903. The electric heating tube 905 heats the second tourmaline stone sheet 906. The second tourmaline stone sheet 906 generates far infrared rays and negative ions when heated, which act on the inner wall of the female uterine cavity, promoting blood circulation of the inner wall of the female uterine cavity, thereby providing a good uterine wall implantation environment for reproductive embryo transplantation.

[0091] All of the above components are installed, connected, or arranged using common mechanical methods, such as welding, threaded connections, and screw connections. The specific structures, models, and coefficients of all components are proprietary technologies, and any method that can achieve the desired effect may be employed. The power cord 5, electric heating controller 6, electric heating tube 905, second tourmaline sheet 906, graphene electric heating sheet 1202, and first tourmaline sheet 1204 used are all commonly available components on the market. Upon purchase, they can be connected and used simply by following the included instruction manual, so further description is omitted.

[0092] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any other manner. Any person skilled in the art may utilize the above-disclosed technical content to modify or modify the present invention into equivalent embodiments. However, any simple modifications, equivalent variations, and modifications to the above embodiments that do not depart from the technical content of the present invention and are based on the technical essence of the present invention remain within the scope of protection of the present invention.

Claims

1. A human assisted reproductive embryo transfer warm uterine device, characterized in that: include: Belt (1); A hot compress heating component is provided on the waist belt (1) and is used to apply hot compress heating to the abdominal area outside the patient's uterus; The uterine cavity heating component is used to be inserted into the patient's uterine cavity for heating; An electric heating controller (6) is provided on the waist belt (1) and is connected to the hot compress heating component and the uterine cavity heating component respectively through wires to control the heating on and off of the hot compress heating component and the uterine cavity heating component.

2. The human assisted reproductive embryo transfer warming device according to claim 1, characterized in that: The hot compress heating assembly comprises a shell (4) arranged in the middle of the waist belt (1), a heat insulating layer (15) arranged from the inside to the outside starting from the inside of the shell (4), an adhesive layer (16), a heating patch (12), a mesh (13), and a sealing rubber ring (10).

3. A human assisted reproductive embryo transfer warm uterine device according to claim 2, characterized in that: The shell (4) is provided with a first opening on a side close to the heat insulation layer (15), the heat insulation layer (15) is located in the first opening, and a Velcro hook surface (11) is provided on the periphery of the first opening.

4. The human assisted reproductive embryo transfer warming device according to claim 2, characterized in that: The heat-insulating layer (15) is a layered structure made of a low-thermal-conductivity material. A second opening is provided on a side of the layered structure close to the adhesive layer (16), and the adhesive layer (16) is located in the second opening.

5. The human assisted reproductive embryo transfer warming device according to claim 2, characterized in that: The adhesive layer (16) is a Velcro velvet patch (16), and the adhesive layer (16) is fixedly connected to the thermal insulation layer (15); the velvet surface of the adhesive layer (16) is located on the side away from the thermal insulation layer (15), and the adhesive layer (16) is detachably connected to the heating patch (12) through the velvet surface.

6. The human assisted reproductive embryo transfer warming device according to claim 5, characterized in that: The heating patch (12) comprises a rubber sleeve (1201), a graphene electric heating plate (1202) arranged in the rubber sleeve (1201), a first tourmaline stone sheet (1204) arranged on one side of the rubber sleeve (1201), and a Velcro hook surface (1203) arranged on the other side of the rubber sleeve (1201); the heating patch (12) is detachably connected to the adhesive layer (16) by bonding the Velcro hook surface (1203) and the Velcro fleece patch (16); wherein the graphene electric heating plate (1202) is connected to the electric heating controller (6).

7. The human assisted reproductive embryo transfer warming device according to claim 2, characterized in that: A Velcro adhesive loop velvet surface (14) is provided on one side of the mesh (13) near the heating patch (12), and the Velcro adhesive loop velvet surface (14) is detachably connected to a Velcro adhesive loop hook surface (11) provided on the housing (4).

8. The human assisted reproductive embryo transfer warming device according to claim 1, characterized in that: The uterine cavity heating component comprises a sheath (901), a sleeve (903) and an electric heating tube (905) which are arranged in sequence from the outside to the inside, and the electric heating tube (905) is connected to the electric heating controller (6).

9. The human assisted reproductive embryo transfer warming device according to claim 8, characterized in that: The sheath (901) is closed at one end and open at the other end, the open end of the sheath (901) extends from the inside to the outside to form a first annular plate that is concave inward, and an arc-shaped protrusion is provided in the middle of the sheath (901); The sleeve (903) is closed at one end and open at the other end. A second annular plate is provided at the open end of the sleeve (903). The first annular plate abuts against the second annular plate. Second tourmaline stone pieces (906) are spaced apart on the outer wall of the sleeve (903). A connecting seat (902) is provided on one side of the electric heating pipe (905) near the open end of the sleeve (903), wherein the connecting seat (902) comprises a first connecting seat and a second connecting seat connected in sequence, and a rubber gasket (904) sleeved on the first connecting seat, and an outer wall of the first connecting seat is provided with an external thread; An inner wall of the open end of the sleeve (903) is provided with an internal thread, and the internal thread and the external thread are rotated until the sleeve abuts against the second connecting seat.

10. The human assisted reproductive embryo transfer warming device according to claim 1, characterized in that: The uterine heating device further comprises a storage bag (7) arranged on the outside of the waist belt (1), and the electric heating controller (6) is located in the storage bag (7).

Citation Information

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