Simulate cutting possible tissue
The simulated tissue structure, with silicone polymer layers and intertwined fibers, addresses the realism and durability issues of existing models by creating a realistic incision plane, improving surgical training through enhanced tactile feedback and durability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-10-02
- Publication Date
- 2026-03-18
AI Technical Summary
Existing simulated tissue structures for surgical training, particularly in laparoscopic and endoscopic surgeries, lack the realism and tactile feedback of real tissue, as they either rebound excessively or tear easily, and fail to mimic the complexity of anatomical structures and environments.
A simulated tissue structure composed of multiple layers, including silicone polymer sheets and intertwined fibers, which are embedded within each other to create a mechanical linkage, providing a realistic incision plane and suppressing the elasticity of silicone, while allowing for precise surgical practice.
The structure mimics the feel and behavior of real tissue, offering improved realism and durability for surgical training, enhancing the learning experience by accurately simulating the challenges of laparoscopic and endoscopic procedures.
Smart Images

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Abstract
Description
Technical Field
[0001] This application generally relates to surgical training tools, and more particularly to simulated tissue structures and models that teach and practice various surgical techniques and procedures associated with (but not limited to) laparoscopic surgery, endoscopic surgery, and minimally invasive surgery.
[0002]
Description of Related Applications
Background Art
[0003] Medical students and experienced surgeons learning new surgical techniques must undergo extensive training before they are qualified to perform surgery on human patients. This training must instruct them in the proper techniques of using various medical instruments to cut, penetrate, clamp, grasp, staple, cauterize, and suture various forms of tissue. The range of scenarios that trainees may encounter is wide. For example, various organs, as well as the anatomical structures and diseases of patients, will be presented. The thickness and consistency of various tissue layers will also vary from one part of the body to the adjacent part, and may also vary from patient to patient. Different techniques require different skills. Furthermore, trainees must practice their techniques in various anatomical environments influenced by factors such as the patient's physique and condition, the adjacent anatomical landscape of the target tissue, and whether the landscape and target tissue are easily accessible or relatively inaccessible.
[0004] Numerous teaching aids, training devices, simulators, and model organs are available for one or more aspects of surgical training. However, there is a need for model or simulated tissue elements that may be encountered and can be used to practice endoscopic, laparoscopic, and minimally invasive surgical procedures. In laparoscopic surgery, a trocar or cannula is inserted to access the body cavity or to create a channel for inserting a camera, such as a laparoscope. The camera provides live video feed capturing images, which are then displayed to the surgeon on one or more monitors. At least one additional small incision is made, through which another trocar / cannula can be inserted to create a pathway through which surgical instruments can be inserted to perform the procedure observed on the monitor. The target tissue site, e.g., the abdomen, is typically expanded by pumping or injecting carbon dioxide gas into the body cavity to create a working space large enough to accommodate the scope and instruments used by the surgeon. The gas injection pressure in the tissue cavity is maintained by using a dedicated trocar. Laparoscopic surgery offers many advantages compared to open surgery. These advantages include less pain, less bleeding, and a shorter recovery time, all due to smaller incisions.
[0005] Laparoscopic or endoscopic minimally invasive surgery requires a higher skill level compared to open surgery because the target tissue is not directly observed by the surgeon. The target tissue is observed via a monitor displaying a portion of the surgical site accessed through a small opening. Therefore, surgeons need to practice visually locating the tissue plane, perceiving three-dimensional depth on a two-dimensional viewing screen, handling instruments, suturing, high-precision cutting, and manipulating tissue and instruments. Typically, a model mimicking a specific anatomical structure or procedure is placed within a simulated pelvis or lumbar spine training device, where the anatomical model is hidden from direct visualization by the surgeon. Ports provided in the training device are used to practice techniques performed on the anatomical model, which is hidden from direct visualization through the device. Pelvic training devices are a functional, inexpensive, and practical means of training surgeons and residents in how to perform basic and typical skills used in laparoscopic surgery, such as grasping, manipulating, cutting, knotting, suturing, stapling, cauterization, and specific surgical procedures that utilize these basic skills. [Overview of the project] [Problems that the invention aims to solve]
[0006] There is a need for organ models for simulated pelvic training devices that allow surgeons to practice surgical techniques or procedures. These organ models need to be lifelike so that surgeons can properly learn procedures and improve their skills. Currently, most simulated tissue structures are made of silicone. On the one hand, silicone is extremely elastic and, when cut, rebounds quickly. On the other hand, real tissue does not rebound sufficiently even when manipulated. Furthermore, silicone tears fairly easily if there is a cut or hole, although this silicone resists tearing if no defects are present. On the other hand, real tissue is easily incised. Also, if tissue surfaces are glued together, another problem arises, such as excessive stickiness, if a realistic interface is desired. Therefore, there is a challenge in creating a simulated tissue structure out of silicone that not only looks real but also functions with the feel of real tissue when surgically incised and manipulated. This invention provides such a simulated tissue structure. [Means for solving the problem]
[0007] According to one aspect of the present invention, a simulated tissue structure for surgical training is provided. The simulated tissue structure has a first layer of silicone polymer in the form of a flat sheet having an upper and lower surface, with a defined thickness between the upper and lower surfaces. The simulated tissue structure has a second layer of silicone polymer in the form of a flat sheet having an upper and lower surface, with a defined thickness between the upper and lower surfaces. The second layer is spaced apart from the first layer such that the upper surface of the first layer faces the lower surface of the second layer. The simulated tissue structure has a third layer made of a plurality of intertwined fibers positioned between the first and second layers. At least a portion of the plurality of intertwined fibers of the third layer are embedded in at least one of the first and second layers.
[0008] According to another aspect of the present invention, a simulated tissue structure for surgical training is provided. The simulated tissue structure has a first layer of silicone polymer having an upper and a lower surface. The simulated tissue structure has a second layer of silicone polymer having an upper and a lower surface. The second layer is spaced apart from the first layer such that the upper surface of the first layer faces the lower surface of the second layer. The simulated tissue structure further has a third layer made of a plurality of intertwined fibers positioned between the first and second layers. The third layer has an upper and a lower surface. At least a portion of the lower surface of the third layer is embedded within the upper surface of the first layer. The simulated tissue structure has a fourth layer made of a plurality of intertwined fibers positioned between the first and second layers. The fourth layer is embedded within the second layer at the lower surface of the second layer. The simulated tissue structure has a first inclusion positioned between the third and fourth layers.
[0009] According to another aspect of the present invention, a simulated tissue structure for surgical training is provided. The simulated tissue structure has a first tube having a first lumen. The first tube has an inner layer, an outer layer, and an intermediate layer. The outer layer is connected to the inner layer by the intermediate layer. The intermediate layer is made of a plurality of intertwined fibers, some of which are embedded in the inner layer and some of which are embedded in the outer layer. The simulated tissue structure has a second tube having a second lumen. The second tube has an outer layer and an inner layer. The first tube is located inside the second lumen. The simulated tissue structure further has an inclusion body located between the inner layer of the second tube and the outer layer of the first tube.
[0010] According to another aspect of the present invention, a simulated tissue structure for surgical training is provided. The simulated tissue structure has a first layer made of silicone and a second layer made of silicone, the first and second layers being interconnected by a third layer made of loose fibers, partly embedded in the first layer and partly embedded in the second layer, to create a mechanical linkage between the first and second layers. Parts of the third layer adjacent to the first layer and parts of the third layer adjacent to the second layer have silicone-coated fiber strands. An inclusion body mimicking an anatomical structure is placed between the first and second layers. The third layer of polyester fibers provides a realistic incision plane for practicing surgical excision of the inclusion body. [Brief explanation of the drawing]
[0011] [Figure 1] This is a cross-sectional side view of the simulated tissue structure of the present invention. [Figure 2A] This is a top-down perspective view of the casting pan of the present invention. [Figure 2B] This is a top-down perspective view of the casting pan and the first layer of silicone according to the present invention. [Figure 2C] This is a perspective view of the casting pan, the first silicone layer, and the fiber layer of the present invention, as seen from above. [Figure 3A] This is a top-down perspective view of an organ model that has been prepared with the simulated tissue structure of the present invention. [Figure 3B] This is a top-down perspective view of an organ model that has been prepared with the simulated tissue structure of the present invention. [Figure 3C] This is a top-down cross-sectional perspective view of an organ model made with the simulated tissue structure of the present invention. [Figure 4] This is a top-down cross-sectional perspective view of an organ model made with the simulated tissue structure of the present invention. [Figure 5] This is a top-down perspective view of the surgical training device of the present invention. [Figure 6] This is an exploded assembly diagram of the simulated rectum model of the present invention. [Figure 7]This is a cross-sectional view of the simulated rectum model of the present invention. [Figure 8] This is a partial cross-sectional view of the simulated rectum model of the present invention. [Figure 9A] This is a cross-sectional view of the casting pan, the first silicone layer, and the first fiber layer of the present invention. [Figure 9B] Figure 9A shows a cross-sectional view of the casting pan of the present invention, the first layer of silicone, and the first layer of fiber, positioned above the second layer of silicone, the second layer of fiber, and the simulated blood vessels. [Figure 10A] This is a plan view of the casting pan of the present invention. [Figure 10B] Figure 10A is a side view of the casting tray of the present invention. [Figure 11A] This is a side view of the casting pan, wet foam layer, and fiber layer of the present invention. [Figure 11B] Figure 11A is a side view of the first fiber layer and foam layer positioned above the second silicone layer of the present invention. [Figure 11C] Figure 11B shows a side view of the first layer of fibers, the foam layer, and the second layer of silicone, positioned beneath the second layer of fibers, the third layer of silicone, and the artificial blood vessel of the present invention. [Modes for carrying out the invention]
[0012] The simulated tissue structure 30 of the present invention is shown in FIG. 1. The structure 30 has a first layer 32 and a second layer 34 each having upper surfaces 36, 38 and lower surfaces 40, 42. The first layer 32 and the second layer 34 are interconnected by a third layer 44 that defines a gap 46 between the first layer and the second layer. The simulated tissue structure 30 may optionally further have an enclosure or inclusion 48 disposed between the first layer 32 and the second layer 34. Examples of the enclosure 48 include a simulated blood vessel, a simulated vein, a simulated tumor, a simulated tube, a simulated vascular system, a simulated nerve, a simulated fat deposit, a simulated pathological structure, or other simulated anatomical structures. The enclosure 48 is typically made of silicone, but may be made of other polymers or other suitable materials and may be made in a realistic shape, color, and form.
[0013] The third layer 44 has a plurality of nonwoven fibers 50 randomly arranged in a non-aligned state, linked to the first layer 32 and / or the second layer 34 at one or more locations along the length of the fiber 50. The fibers 50 are linked to one or more of the first layer 32 and the second layer 34 by being embedded in one or more of the first layer 32 and the second layer 34 during the manufacturing process, which is described in detail below. Each fiber may be in the form of a strand, filament, yarn, microfiber or ultrafine fiber, and each fiber has a length, a first free end, and a second free end. No adhesive is used to link the fibers. The fibers of the third layer 44 are located in a randomly arranged manner within the gaps 46. It is preferable that one strand of fiber 50 is connected to the first layer 32 at one location, and then, again in this case, to the first layer 32 or to the second layer at another location along the length of the fiber, and its free end may or may not be embedded in the first or second layer. Some strands of fiber 50 are not connected to the first layer 32 or the second layer 34, and these strands are freely positioned between the first layer 32 and the second layer 34. Some strands of fiber 50 are entangled with each other and loosely entangled with or twisted with other strands, so that these strands can move relative to other strands. It is preferable that the fiber straddles the gap 46 so that it is connected to opposing or to the second layer 34 at one or more locations along the length of the fiber. It is possible to construct the third layer 44 using a single fiber strand rather than multiple fiber strands. A single fiber strand is longer in length than using shorter strands to fill the gaps 46 between layers 32,34, while still filling the same gaps 46.The fiber is selected from any suitable material, such as polyester, polyamide, acrylic resin, acetate, polyolefin, cotton, fiber fill, raw cotton, polyethylene terephthalate, polyethylene naphthalate, nylon, polyfill, fiber fill, polymer, plastic, spandex or other suitable fiber, natural fiber, non-absorbent fiber, synthetic fiber or fibrous material. The material may be woven, non-woven, or partially woven. The fiber film is typically made by garnetting, in which a garnet machine takes the fibers and combs them into a batt form. The garnet machine then bends and cuts the fibers, thereby creating short and clumped strands. The fibers tangle, intermingle, and clump together.
[0014] One or more of the first layer 32 and the second layer 34 have a substantially uniform thickness between its upper surfaces 36, 38 and its lower surfaces 40, 42, thereby forming a substantially flat configuration. In one form, the first layer 32 and the second layer 34 have a substantially uniform thickness between its upper surfaces 36, 38 and its lower surfaces 40, 42. The lower surface 42 of the second layer 34 faces the upper surface 36 of the first layer 32. Where the fiber 50 is attached to one of the first layer 32 and the second layer 34, the layers 32, 34 have a reduced thickness because a portion of the thickness is taken up by the thickness of the fiber itself. The first and second layers 32, 34 are made of any suitable elastomeric material, such as silicone. In one form, room temperature vulcanizing silicone is used. In one form, the second layer 34 is omitted and the simulated tissue structure 30 has only the first layer 32 and a third layer 44 of fibers connected to the first layer 32.
[0015] Next, a method for manufacturing the simulated structural body 30 will be described with reference to Figures 2A to 2C. A casting dish 52 with a patterned surface 54 is prepared. In another embodiment, the casting dish 52 has a smooth surface. Uncured room-temperature vulcanizing silicone is prepared and evenly applied to the patterned surface 54 of the casting dish 52 as shown in Figure 2B, thereby forming a thin first layer 32. It is preferable to calender the silicone evenly in the thin first layer 32 using a spatula. While the silicone of the first layer 32 is uncured, a third layer 44 is applied. In particular, a layer of polyester fibers 50 is placed on the upper surface 36 of the first layer 32 while the first layer 32 is still wet. The polyester fibers 50 are placed to the desired shape, thickness, and density. The fibers 50 are then compacted in the first layer 32 to help embed the fibers randomly in the first layer 32. Some portions of the fiber 50 are embedded in the silicone, while the majority is exposed to the air, making it available for embedding in the next silicone casting.
[0016] As an optional feature, the injector 48 is placed on or alongside the upper surface 36 of the first layer 32. The inclusion body 48 is placed, and then the polyester fibers 50 are attached. In another embodiment, the inclusion body 48 is placed after the polyester fibers 50 have been placed. If the inclusion body 48 is placed before the polyester fibers 50, the inclusion body 48 will remain attached to the first layer 32 while the silicone is curing. If the inclusion body 48 is placed after the polyester fibers 50, only the portion of the inclusion body 48 that is in direct contact with the wet silicone of the first layer 32 will remain attached to the first layer 32 while the silicone is curing. This allows for a realistic scenario to be set up for practicing the removal of the inclusion body in a simulated surgical excision of the inclusion body 48, with the inclusion body selectively attached to either the first layer and / or the second layer, and with the surgeon employing a careful and selective incision. Furthermore, only the portion of the fiber 50 that is in contact with the wet silicone of the first layer 32 will remain attached to the first layer 32. The silicone of the first layer 32 hardens, thereby fully embedding the fiber portion within the first layer 32. In one embodiment, the inclusion body 48 is placed on the first layer 32 after the first layer 32 has hardened, so as not to be embedded within it. Similarly, the third fiber layer 44 is placed on the hardened first layer 32, so as not to bond to it.
[0017] After the first layer 32 has cured, the patterned first layer 32 is removed from the casting pan 52. Typically, extremely thin sheets of silicone are difficult to remove from the casting pan 52, even when a mold release layer covers the casting pan. However, because of the fibers 50 attached to the first layer 32 during the curing of the silicone, the extremely thin layer of silicone can be removed from the casting pan without the layer tearing or being damaged. The interconnected embedded fibers 50 help to gently separate the thin layer from the casting pan. Therefore, the fiber layer 44 enhances the tear resistance of the structure 30, and such fiber layer 44 advantageously allows the extremely thin layer of silicone to be cast and safely removed from the casting pan without tearing. The patterned casting pan 52 advantageously provides a reduced thickness area, as the wet silicone accumulates in the deeper parts of the casting pan. In one embodiment, the surface pattern of the casting dish 52 creates numerous small holes throughout the layer. These holes are relatively unnoticeable, advantageously, as the fibrous layer provides a visually glossy texture because light is reflected in many directions from the glossy fibers, mimicking living tissue in a wet state. Furthermore, these holes act as starting points for cracking in the first layer 32 of silicone, which is advantageous in mimicking incisions, as, as mentioned above, helps the defects in the silicone overcome the large and often impractical crack resistance of the silicone. However, because the first layer 32 of silicone is made thin, this first silicone layer becomes more difficult to demold and remove. Additional fibers 50, positioned on top of the uncured silicone while located in the casting dish 52, form a composite with the silicone, thereby enabling the demolding of an extremely thin sheet. Furthermore, advantageously, by providing the fibers 50 on and in association with the top of the first layer 32 while the silicone of the first layer 32 is still in an uncured state, capillary action or absorbency can be obtained depending on the type of material used to produce the fibers that draw the silicone into the fibers 50 or pull it away from the casting pan 52.As a result of this capillary action, extremely thin spots and evenly spaced small holes are obtained during the casting of the first and second layers 32,34, which are easy to cut with surgical instruments and are realistic. This capillary action allows for the formation of a sheet onto a smooth casting pan without any patterns, and the same desirable final result is obtained in which layers 32,34 have areas of reduced thickness in the silicone. The isolated spots of reduced thickness within the silicone layers 32,34 act as starting points for tears that mimic realistic incisions made with a scalpel. The capillary action occurs when the fibers 50 are placed on the silicone while the silicone is in an uncured state, and as a result, at least a portion of the fiber strands becomes coated with the polymer or silicone polymer. The silicone bonds well to the microfibers or ultrafine fibers, advantageously reducing friction when the fibers move against each other, thereby creating a smooth, almost wet interface. In one configuration, the entire fiber is covered and then embedded in one or both of the first and second layers. The fibers 50 of the third layer 44 are left unordered or aligned, but randomly intertwined. This intertwined configuration resists the natural rebound of the silicone, thereby greatly enhancing the realistic feel of the tissue structure 30, especially when making dull incisions such as during laparoscopic surgery. This is because the fibers can slide / move relative to each other, thereby dampening the elasticity of the silicone. Also, the intertwined configuration of the fibers 50 makes the separation of the first layer 32 and the second layer 34 function by pulling the intertwined fibers rather than pulling the layers bonded together with silicone or other adhesives. In a sense, the fibers act as an adhesive layer or mechanical linkage between the first layer 32 and the second layer 34. The adhesion is determined by the degree to which the intertwined fibers of the third layer 44 adhere to layers 32 and 34. By separating the entangled fibers when pulling apart the first and second layers, surgeons can practice this by employing tissue-care techniques rather than simply using great force, because the model is made of silicone and the adjacent layers are firmly bonded together with adhesive or similar means.Therefore, the present invention is extremely effective in producing tissue models that can be dissected.
[0018] A method for manufacturing a simulated tissue structure 30 includes the step of preparing a second layer 34 of silicone. The second layer 34 of silicone is applied to a smooth or patterned casting dish to create a thin layer of silicone. It is preferable to calender the silicone evenly in the thin second layer 34 using a spatula. While the silicone of the second layer 34 is still uncured, the combination of the previously formed first layer 32 and third layer 44 is applied to the underside 42 of the second layer 34 while the silicone of the second layer 34 is still uncured. In particular, the third layer 44 of polyester fibers 50 is placed on the underside 42 of the second layer 34. The fibers 50 are then compacted on the second layer 34 to help embed the fibers 50 in the second layer 34. Optionally, an inclusion or inclusion 48 is applied to the underside 42 of the second layer 34. The inclusion 48 is placed, and then the polyester fibers 50 are applied. The inclusion body 48, together with the fiber layer, can be attached to the second layer 34 while the silicone is curing. In one embodiment, the second layer 34 is cured, and then the first layer 32 and the third layer 44 are placed on top of the second layer 34 if it is desirable to attach the fibers only to the first layer 32.
[0019] In one embodiment, a frame with a central window of the desired shape is prepared. The frame (not shown) is placed against the lower surface 40 of the first layer 32 and pushed down toward the second layer 34, thereby causing the periphery of the first layer 32 to adhere closely to the uncured silicone of the second layer 34, trapping the third layer 44 between these layers and creating a pocket for the fibers 50, with or without the inclusion body 48. In one embodiment, the peripheral regions of the first and second layers 32 and 34 are fiber-free, thereby causing the first layer 32 and the second layer 34 to come into direct contact with each other, creating a pocket and substantially sealing it. In another embodiment, no pocket is created, and the sides of the simulated tissue structure 30 are left open as shown in Figure 1. The silicone of the second layer 34 is fully cured, resulting in the third layer being attached to the upper surface 36 of the first layer 32 and the lower surface 42 of the second layer 34, and embedded between them in a sandwich-like manner. It is preferable that one of the first layer 32 and the second layer 34 is thicker than the other. In another embodiment, both the first layer 32 and the second layer 34 have the same thickness.
[0020] The most basic form of the simulated tissue structure 30 is one in which fibers 50 are attached to one side of a first sheet-like layer 32 of silicone. By combining this basic form with other processes, it is possible to create increasingly complex models with additional layers of silicone, fibers, and inclusions provided on the outer or inner surface. It is preferable to cure the first layer 32 of silicone to which the fibers 50 have been added and remove it from the casting tray 52, then to apply the second layer 34 of silicone to the same casting tray 52, and then to place the previously made first layer 32 together with the attached third layer 44 on the uncured second layer 34 with the fiber side facing downwards. As a result, a sandwich with a thin layer of silicone on the outside and ultrafine fibers and inclusions on the inside has various degrees of embedding and / or adhesion, as well as various embedding and / or adhesion locations. This assembly can then be used alone or as a component in larger and more complex models. The thickness of the first and second layers is approximately 1.0 mm to 7.0 mm, preferably 0.5 mm to 3 mm. The third layer is approximately 2.5 mm to 25.0 mm thick.
[0021] Figures 3A to 3C show an embodiment of the simulated tissue structure 30 to be used in a large-scale model. Figures 3A to 3C show a pelvic model 56 equipped with the simulated tissue structure 30 of the present invention. The pelvic model 56 has a portion 58 of a simulated pelvis. The simulated tissue structure 30 has only a first layer 32 and a third layer 44 of fibers 50, and does not have a second layer 34 of silicone. The upper surface 36 of the first layer 32 is oriented toward the simulated pelvis 58 so that the fibers 50 are positioned between the first layer 32 and the simulated pelvis. The simulated pelvis 58 serves as an armature to which the simulated tissue structure of the present invention is attached. The simulated tissue structure 30 of the present invention is placed over the simulated pelvis 58, which is shown to have other anatomical features, such as, but not limited to, the tubes 59 and defects 60 inside the first layer 32. The edge of the first layer 32 is attached to the posterior side of the simulated pelvis 58 as shown in Figure 3B, and optionally to other selected areas along the first layer 32. When a laparoscopic surgeon approaches the pelvic model 56, they first visualize the underside 40 of the first layer 32. Due to the textured surface of the first layer 32 and the varying placement and arrangement of the third layer 44 located beneath the thin first layer 32, the model 56 will appear more realistic than a uniform layer of silicone without the texture or without the underlying fibrous layer 44. When simulated anatomical structures and / or inclusions 48 are employed, the first layer 44 advantageously helps to partially conceal the simulated anatomical structures / inclusions, thereby making it difficult to identify these simulated anatomical structures / inclusions, and thereby making the incision practice more realistic and challenging for the physician. The thicker regions of the third layer 44, compared to the regions with more fibers, obscure the structures / inclusions 48 located below the thinner regions of the third layer 44, compared to the thinner regions of the third layer 44, where the fiber thickness is smaller. Furthermore, the first layer 32 itself may vary in thickness, thereby enabling different degrees of visibility of the structures / tissues located below. The first layer 32 may be dyed red or pink. Light-colored or white fibers 50 make the first layer 32 located above appear brighter in color in certain areas.Due to the third layer 44 of fibers located beneath, the first layer 32 appears bright red or bright pink in certain areas compared to other areas where there are no or few fibers. The surgeon then practices making an incision 62 with a scalpel or a blunt surgical instrument. The incision 62 is shown in Figures 3A and 3C. When the incision 62 is made, the first layer 32 does not rebound due to the elasticity of the silicone itself, and as a result, the incision 62 appears to close at an unrealistically fast rate or in response. In contrast, the incision 62 would remain substantially open as shown, as a result of the fiber layer 44 dampening or suppressing the elasticity of the silicone itself. Also, because the fiber layer helps to form an extremely thin layer of silicone, the resulting thin layer of silicone is small in thickness and has low rebound properties. Under laparoscopic observation, the polyester fibers 50 appear glossy because they reflect light in various directions, thereby advantageously making the simulated tissue structure 30 appear wet or moist like real tissue, even without the help of liquid present in the model. In laparoscopic simulation, the simulated tissue structure may not look real when viewed with the naked eye outside the simulator or outside the laparoscopic simulation environment, but since visualization is performed via a scope in an artificially illuminated hollow training device, certain risks may be taken to achieve realistic advantages that cannot be achieved for organs suitable for open procedures used outside the laparoscopic simulation environment. Essentially, the fibers 50 of the third layer 44 may look extremely unrealistic as an organ or tissue simulation when viewed with the naked eye, but can look and behave extremely realistically within the laparoscopic training environment, which will be described in detail below. After the incision 62 is made, the inclusion body 48, which includes the tube 59 and the artificial tissue structure 60 located below it, is exposed.
[0022] Next, referring to Figure 4, another embodiment is shown in which the simulated tissue structure 30 of the present invention is employed in an organ model. Figure 4 shows an abdominal organ model 64 including a simulated intestine located at the top of a simulated mesentery or reticular layer 68 constituting the simulated tissue structure 30 of the present invention. The bottom surface 40 of the structure 30 faces upward, and a vascular system 70 is provided as an inclusion 48 attached to a first layer 32. The vascular system 70 is attached to the first layer 32, and then a third layer 44 of fibers 50 is embedded. Thus, the vascular system is clearly visible through the first layer 32. The simulated mesenteric layer 68 is made of yellow-stained silicone, and the vascular system is red in color and made of silicone.
[0023] Having described above how to form a substantially flattened or pocket-shaped simulated tissue structure 30, the method for forming a tubular simulated tissue structure 30 of the present invention will now be described. Uncured silicone is prepared and evenly applied to a rotating mandrel to form a first layer 32. While the silicone of the first layer 32 is still wet, a polyester fiber layer is applied to form a third layer 44 of fibers 50. The fibers are applied randomly, evenly, or cleverly to form areas in which the fibers are more or less intentionally arranged to produce the desired simulated result. The first layer 32 of silicone is cured to embed the fibers 50 within the first layer 32. The cured first layer 32 is peeled off the mandrel, and this cured first layer has the shape of a cylinder, with the lower surface 40 of the first layer 32 forming the interior of the cylinder and defining the lumen of the cylinder. The cylindrical shape of the first layer 32 and the third layer 44 is inverted so that the fiber layer 44 is positioned inward, and the lower surface 40 of the first layer 32 forms the smooth outer surface of the cylinder. It is preferable to attach the inclusion body 48 to the outer surface of the cylinder either after inverting the first layer 32 or before forming the first layer 32. In another embodiment, the cylinder is not inverted. A first strip of uncured silicone is applied to the surface. The first strip has a length approximately equal to the length of the tubular first layer 32. The tubular first layer 32 and the third layer 44 are aligned with the first strip and placed on the first strip with the first surface of these combinations facing the uncured first strip, and then compacted to embed the fibers 50 in the first strip. The first strip is cured to embed the fibers 50 of the third layer 44 in the first strip. A second strip of uncured silicone is applied to the surface. The second strip has a length approximately equal to the length of the tubular first layer 32. The tubular first layer 32, the third layer 44, and the first strip are placed on the second strip while the silicone of the second strip is still wet, thereby embedding the fibers 50 of the third layer 44.The tubular first layer 32 is attached to the second strip offset from the first strip, and the adjacent portions of the exposed fibers of the third layer 44 are in contact with the wet second strip, preferably adjacent to the first step and slightly covering the first strip, to form a substantially continuous second layer 34. This process is repeated to form the second layer 34 from multiple or any number of silicone sections or strips. The strips may be rectangular, triangular, or any other shape, as long as they adequately cover the cylindrical surface and allow the third layer to be embedded in the second layer 34. Different organ models, such as the intestine, can be formed with a tubular-shaped simulated tissue structure 30, and any inclusions 48 may be provided directly on either side of the first layer 32 or directly on the second layer 34 before or after the attachment of the fiber layer 44. In another embodiment, the second layer 34 is not applied, and the simulated tissue structure has the first, second, and third layers as well as the inclusion body 48.
[0024] In another form, the simulated tissue structure 30, formed either by itself or as part of another larger model or tissue structure, such as the abdominal organ model 64 or pelvic model 56 described above with reference to Figures 3A-3C and 4, is sized and shaped to be placed within a simulated laparoscopic environment, such as the surgical training device 10 shown in Figure 5. Naturally, the simulated tissue structure can also be used to practice open surgical procedures.
[0025] Figure 5 shows a surgical training device 10 that mimics a patient's torso, for example, the abdominal region. The surgical training device 10 is substantially hidden from the user and comprises a body cavity 12 that receives the mimicked or living tissue, model organ, or training model described herein. The body cavity 12 is accessed through a tissue simulation area 14 that is penetrated by the user using an instrument to perform a surgical procedure on the tissue or training model provided visible within the body cavity 12. Although the body cavity 12 is shown as being accessible through the tissue simulation area, in variations, the body cavity 12 may be accessed using a hand-operated access instrument or a single-site port instrument. The exemplary surgical training device is described in U.S. Patent Application No. 13 / 248,449, filed September 29, 2011 (Title of Invention: Portable Laparoscopic Trainer), which is incorporated herein by reference in its entirety as part of this specification. The surgical training device 10 is particularly suitable for practicing laparoscopic or other minimally invasive surgical techniques.
[0026] Referring still to Figure 5, the surgical training device 10 has a top cover 16 spaced apart from the base, connected to a base 18 by at least one leg or foot 20. Figure 5 shows multiple legs 20. The surgical training device 10 is made to mimic the torso of a patient, for example, the abdominal region. The top cover 16 represents the anterior surface of the patient, and the space 12 between the top cover 16 and the base 18 represents the inside or body cavity of the patient where organs reside. The surgical training device 10 is a useful tool for teaching, practicing, and demonstrating various surgical procedures and associated instruments in a simulation of a patient undergoing a surgical procedure. Surgical instruments are inserted into the cavity 12 through the tissue simulation area 14 and through pre-formed holes 22 in the top cover 16. Various tools and techniques can be used to penetrate the top cover 16, thereby allowing simulated procedures to be performed on a simulated organ or practice model positioned between the top cover 16 and the base 18. The base 18 has a model receiving area 24 or tray for staging or holding a simulated tissue model or living tissue. The model receiving area 24 of the base 18 has frame-like elements for holding a model (not shown) in place. To assist in holding a simulated tissue model or living organ on the base 18, a clip attached to a retractable wire is provided at location 26. The retractable wire is extended and then clipped to hold the tissue model in place substantially below the tissue simulation area 14. Other means of holding the organizational model include a patch of hook-and-loop fastening material (so-called Velcro® type or hook-and-loop fastener type) attached to the base 18 within the model receiving area 24, the patch of hook-and-loop fastening material being detachably connected to complementary pieces of hook-and-loop fastening material attached to the model.
[0027] A video display monitor 28, hinged to the top cover 16, is shown in a closed orientation in Figure 5. The video monitor 28 can be connected to various visual systems that send images to the monitor. For example, a laparoscope, inserted through either a pre-formed hole 22 or a webcam located in a cavity, and used to observe simulated procedures, can be connected to the video monitor 28 and / or a mobile computing device to provide images to the user. Audio recording or output means are also provided and integrated with the training device 10 to provide audio and visual functions. Portable storage devices, such as flash drives, smartphones, digital audio or video players, or other digital mobile devices are also provided to record training procedures for demonstration purposes and / or to play back pre-recorded images on the monitor. Naturally, connection means are provided to provide audio-visual output to a screen larger than the monitor. In another variation, the top cover 16 does not have a video display and includes means to connect to a laptop computer, mobile digital device, or tablet, and to connect this to the training device by wire or wirelessly.
[0028] During assembly, the top cover 16 is positioned directly above the base 18 with the legs 20 substantially positioned around its periphery and interconnected between the top cover 16 and the base 18. The top cover 16 and the base 18 are substantially identical in shape and dimensions and have substantially the same circumferential shape. The internal cavity is partially or completely hidden from view. In the modified form shown in Figure 5, the leg portion has an opening to allow ambient light to illuminate the internal cavity as much as possible, and advantageously, to reduce weight as much as possible for portability. The top cover 16 is detachable from the leg portion 20, and the leg portion 20 is detachable from the base 18 or foldable relative to the base 18 by a hinge or the like. Thus, the unassembled training device 10 has a reduced height for easy portability. Essentially, the surgical training device 10 includes a simulated body cavity 12 hidden from the user. The main cavity 12 is configured to accept at least one surgical model accessible through at least one tissue simulation region 14 and / or holes 22 provided in the top cover 16, allowing the user to access the model through the holes 22 and practice laparoscopic or endoscopic minimally invasive surgical techniques.
[0029] Next, with reference to Figures 6 to 8, a simulated rectal model 100 including a composite of simulated tissue structures 30 will be described below. The simulated rectal model 100 has a first tube 102 made of silicone. The first tube 102 preferably has an embedded mesh material so that it can hold sutures, and the sutures are not pulled out or torn through the silicone. The first tube 102 has a first lumen 103 extending between its proximal and distal ends.
[0030] The simulated rectum model 100 has a second lumen 105 and further a second tube 104 extending between its proximal and distal ends. The second tube 104 is made of yellow polyurethane foam. Layers of foam are formed, then folded into a cylindrical shape, and the ends are joined together to form the tube. The front end of the polyurethane foam second tube 104 is thin, as shown in Figure 6. The second lumen 105 is sized to receive the first tube 102 concentrically within the second lumen 105. The second tube 104 is attached to the first tube 102 using cyanoacrylate glue.
[0031] Model 100 further comprises a third tube 106. The third tube 106 is the same simulated structure 30 as described above, having a first layer 32, a second layer 34, and a third layer 44 of polyfill fibers 50 formed in the form of a cylindrical tube that constitutes the third lumen 107. The first layer 32 of the third tube 106 is yellow in color, and the second layer 34 is white in color. The third layer 44 is made of white polyfill fibers. The diameter of the third lumen 107 is sized to accommodate the second tube 104 in an eccentric manner within the third lumen 107. The third tube 106 is attached to the second tube 104 with an adhesive, such as cyanoacrylate glue.
[0032] The simulated rectum model 100 further comprises a fourth tube 108. The fourth tube 108 is the same simulated tissue structure 30 described above, having a first layer 32 and a third layer 44 of polyfill fibers 50, but without a second layer 34, which is formed in a cylindrical tube shape to form a fourth lumen 109, with the third layer 44 of free polyfill fibers facing the fourth lumen 109. The second layer 34 is pink in color. The third layer 44 is made of white polyfill fibers. In one embodiment, the fourth tube 108 has a second layer 34 that is white in color. The diameter of the fourth lumen 109 is sized to receive the third tube 106 concentrically within the fourth lumen 109. The fourth tube 108 is attached to the third tube 106 with adhesive over a selected area.
[0033] The simulated rectum model 100 further comprises a simulated prostatic system 110 positioned between the third tube 106 and the fourth tube 108. The simulated prostatic system 110 is located on the anterior side of the model 100. The simulated prostatic system 110 includes a simulated prostate, a simulated seminal vesicle, a simulated bladder, a simulated urethra, and a simulated vas deferens. The simulated urethra and simulated vas deferens are made of silicone formed into solid tubes. The simulated seminal vesicle is made of urethane foam coated onto the simulated vas deferens. The simulated prostate is made of urethane foam coated onto the simulated urethra.
[0034] The simulated rectum model 100 further includes additional polyfill material that surrounds the simulated prostatic system 110, positioned between the fourth tube 108 and the third tube 106 at the anterior side of the model 100.
[0035] The simulated rectum model 100 is remarkably well-suited for practicing transanal total mesorectal resection (TaTME) for cancer located in the inferior colon. In this surgical procedure, the surgeon approaches from the anus through a sealable port connected to a channel inserted into the cancerous simulated rectum. A purse-string suture seals the cancerous portion of the rectum. The purse-string suture is a form of suturing technique that users of model 100 can practice. In this purse-string suture, the periphery of the rectum is sutured and then pulled tight or taut to seal the area of the rectum containing the tumor. The first tube 102 has a mesh embedded in the silicone layer of the tube to hold the purse-string suture in place. The silicone layer of the first tube 102 allows the purse-string suture to be pulled tight. The surgeon then posteriorly cuts the second tube 104, which represents the mesorectal ligament. The surgeon then incises the first layer 32 of the third canal 106, and then incises the third layer 44 of the third canal 106 circumferentially, taking care not to puncture the second layer 34 of the third canal 106, as this would endanger the adjacent simulated prostatic system 110. The first layer 32 of the third canal 106 is yellow, which is the same color as the simulated mesorectal ligament, the second canal 104, and thus difficult to distinguish from the second canal 104. While incising the third layer 44 circumferentially, care must be taken not to puncture the second layer 34, as the third layer 44 is made of white polyfill and the second layer 34 is made of white silicone, making it difficult to distinguish between them, thus teaching the physician to exercise considerable caution. The fourth canal 108 and, in particular, the second layer 34 of the fourth canal 108 are red, representing the muscles and pelvic floor. By accidentally incising the second layer 34 of the fourth canal 108 or by advancing the incision circumferentially at this location, crossing with the simulated prostatic system 110 may occur, and this model 100 instructs the surgeon to avoid this. The safe resection of the simulated prostatic system 110 is performed by incising within the third layer 44 of the third canal 106. After a posterior incision, the anterior incision begins by incising a thin section of the simulated mesorectal ligament (second canal 104) until it reaches the third canal 106.When the incision is made in the third canal 106, particularly within the third layer 44 of the third canal 106, the incision proceeds circumferentially until it meets a posterior incision. The simulated mesorectal ligament (the second canal 104) has a reduced thickness region, and the third canal 106 is attached to the second canal 104 and is colored so as to be indistinguishable from the yellow first layer 32 when compared to the yellow second canal 104. The simulated prostatic system 110 is located on the apex of the third canal 106, as shown in Figure 7, and this simulated prostatic system is surrounded by polyfill fibers 112, thereby making it difficult to distinguish from the polyfill fibers of the third layer 44 of the third canal 106 while the incision is being made within the third canal 106. The incision proceeds until the pelvic cavity is broken.
[0036] The proximal end of the simulated rectum model 100 is preferably attached to a transanal adapter. The transanal adapter is a leg 20 used to separate the top cover 16 from the base 18 of the surgical training device 10 so that access to the model 100 from the side of the surgical training device 10 is possible. The transanal adapter has an opening connected to the first lumen 103 of the first tube 102. Soft silicone is provided to mimic the anus, surrounding the opening of the transanal adapter. The surgical TaTMA procedure is performed by passing a circumferential purse-string suture through the opening of the transanal adapter with the simulated prostate gland positioned proximal to the transanal adapter and the simulated prostate gland positioned distal to the transanal adapter.
[0037] To manufacture the simulated rectum model 100, first, a mesh sheath is attached to a mandrel, and uncured silicone is applied to the mesh. The second tube 104 (simulated mesothelial rectum) is made of urethane foam that is cast into a flat sheet. The foam is cast to have thin sections. The simulated mesothelial rectum is wrapped around the first tube 102 to form a tube to create the second tube 104. The thicker parts of the second tube 104 are joined together using cyanoacrylate glue and a primer and attached to the posterior side of the simulated rectum 100. To form the third tube 106, a thin, flat sheet of yellow silicone is cast onto the foam to create the first layer 32. While the silicone of the first layer 32 is still wet, a layer of polyfill is evenly placed on top to create the third layer 44 of polyfill. After the first layer 32 has cured, it is demolded. A new layer of white-colored or transparent silicone is poured onto the foam to form a second layer 34. The previously cured first layer 32 is placed on top of the third layer 44 of polyfill together with the third layer 44 of polyfill, with the third layer 44 of polyfill in contact with the wet silicone of the second layer 34. This assembly is demolded and wrapped around the second tube 104 to form a cylindrical third tube 106, and this cylindrical third tube is attached to the second tube 104 using cyanoacrylate glue. The fourth tube 108 is formed in much the same manner as the third tube 106.
[0038] To form the fourth tube 108, a thin, flat sheet of white or transparent silicone is poured onto the form to create the first layer 32. While the silicone of the first layer 32 is still wet, a layer of polyfill is evenly placed on top to create the third layer 44 of polyfill. A large amount of polyfill fibers are added to the third layer 44 to create a thick area as shown in Figure 7. After the first layer 32 has cured, the third layer 44 is attached, and the combination of the first layer 32 and the third layer 44 is demolded. A new layer of red-colored silicone is poured onto the form to form the second layer 34 of the fourth tube 108. The previously cured first layer 32 is placed on top together with the third layer 44 of polyfill, with the third layer 44 of polyfill in contact with the wet silicone of the second layer 34. Once hardened, this assembly is demolded and wrapped around the third tube 106 to form a cylindrical fourth tube 108, and this cylindrical fourth tube is attached to the third tube 106 using cyanoacrylate glue or cyanosilicone dots. A simulated prostate system 110 is formed in advance and placed between the third tube 106 and the fourth tube 108.
[0039] Next, referring to Figure 9A, a casting pan 52 having a patterned molding surface is shown. This surface may vary in thickness. A first layer 32 of uncured silicone is poured into the casting pan 52. Before the uncured silicone hardens, a third layer 44a of fibers is placed on top of the first layer 32 so that the fibers on one side of the third layer 44a are embedded in the first layer 32. The first layer 32 is hardened. After hardening, the first layer 32 is removed from the casting pan 52 with the help of the third layer 44a. The third layer 44a and the first layer 32 are pulled up from the casting pan 52. Since the third layer 44a is attached to the first layer 32, when the third layer 44a is pulled up, the fibers of the third layer 44a distribute the removal force advantageously, preventing the thin first layer 32 from tearing during removal. After removing the combination of the first layer 32 and the third layer 44a, it is turned over and placed side by side in the second casting dish 52 together with the second layer 34 of wet silicone, as shown in Figure 9B. Another third layer 44b of fibers is placed on top of the second layer 32 of wet silicone. The inclusions 48 are placed covering the third layer 44b. A portion of the inclusions 48 is in contact with the second layer 34, and this portion remains embedded within the second layer 34 when the second layer 34 has finished curing. The third layer 44b is also embedded within the second layer 34. In one embodiment, the inclusions 48 are not embedded within the second layer 34, and these inclusions are placed between the third layers 44a and 44b. The construction is completed when the first layer 32 is attached to the second layer 34, the inclusion body 48, and the other third layer 44b together with one of the third layers 44a. In another embodiment, the first layer 32 is brought into contact with the second layer 34 while the second layer 34 is still uncured to adhere the first layer 32 and create a pocket containing the inclusion body 48 and the third layers 44a, 44b. In yet another embodiment, the third layer 44a is also partially embedded in the second layer 34 while the silicone is still wet to embed the third layer 44a in the second layer 34. The inclusion body 48 shown in Figure 9B is a vascular system made of silicone, but the present invention is not limited thereto, and the inclusion body 48 may be any inclusion body, anatomical structure, landmark, organ, nerve, tissue, tumor, etc.
[0040] Next, referring to Figures 10 and 11, and in particular Figures 10A and 10B, a casting dish 52 is shown having two channels 72 for receiving uncured silicone. Although two channels 72 are shown, any pattern can be adopted to receive the uncured material and form a desired structure, such desired structures include, but are not limited to, anatomical structures and landmarks, tissues, nerves, vascular systems, tumors, organs, etc. Materials include uncured silicone, uncured urethane foam, uncured silicone foam, etc. In one embodiment, wet uncured urethane foam is poured into the channels 72 to create a first inclusion 48a as shown in Figure 11A. A first fibrous layer 44a is placed on top of the uncured foam 48a within the channels 72 to embed the first layer 44a into the uncured foam. The uncured silicone in the channels 72 is cured, and as a result, this silicone is attached to the first fibrous layer 44a. The first fiber layer 44a is removed from the casting dish 52 together with the molded inclusion 48a and placed alongside the first layer 32 of uncured silicone as shown in Figure 11B. The first fiber layer 44a, together with the attached first inclusion 48a, is pressed into the first layer 32 while the silicone is still wet, embedding the first inclusion 48a and the first fiber layer 44a into the first layer 32 as shown in Figure 11C. The first inclusion 48a is shaped to represent and mimic nerves, but the first inclusion 48a may be any form of inclusion suitable for a simulated tissue structure. A second fiber layer 44b made of fibers is prepared together with one or more second inclusions 48b. The second inclusion body 48b is attached to the second fiber layer 44b in the same manner as described above with respect to the first fiber layer 44a and the first inclusion body 48a, and these second inclusion bodies are preferably made of silicone, silicone foam, urethane foam, etc. A casting dish is prepared with a pattern for molding one or more second inclusion bodies 48b.For example, wet silicone is filled into the pattern, and while it is still uncured, the second fiber layer 44b is placed on top of the wet silicone of the casting dish and the second inclusion 48b, embedding and attaching the second inclusion 48b to the second fiber layer 44b along its first side. The second side of the second fiber layer 44b is embedded into the second layer 34 while the second layer 34 is still uncured. Once the second inclusion 48b and the second layer 34 have cured, the second fiber layer 44b and the second layer 34 are removed from their respective casting dishes along with the second inclusion 48b and placed on the first fiber layer 44a, the first layer 32 and the first inclusion 48a, thereby creating a sandwich-like simulated tissue structure. The second inclusion body 48b is shaped to mimic a vascular system or any other anatomical structure, tissue, organ, nerve, tumor, etc. One or more of the first fibrous layer 44a and the second fibrous layer 44b create an ideal incision route for skeletonizing any one or more of the inclusion bodies 48a, 48b, and the incision route through the fibers creates a realistic look and feel, and the fibers are cut to separate and expose these fibrous layers and the inclusion body for removal and / or these gaps are expandable.
[0041] Any part of Model 30 can be made from one or more organic base polymers, such as hydrogels, homopolymer hydrogels, polypolymer hydrogels, rubber, latex, nitrile, protein, gelatin, collagen, soy, non-organic base polymers such as thermoplastic elastomers, kraton, silicone, foam, silicone-based foam, urethane-based foam, and ethylene vinyl acetate foam, but not limited to these. Any base polymer can contain one or more fillers such as cloth, woven or nonwoven fibers, polyester, nylon, cotton, and silk, and conductive filler materials such as graphite, platinum, silver, gold, copper, other additives, gels, oils, cornstarch, glass, dolomite, carbonate minerals, alcohols, deadner, silicone oil, pigments, foams, poloxamer, collagen, gelatin, etc. Adhesives used include, but are not limited to, cyanoacrylate-based, silicone-based, epoxy-based, spray-type adhesives, and rubber-based adhesives.
[0042] It goes without saying that various modifications can be made to the embodiments and variations disclosed herein. Therefore, the above description should not be interpreted as limiting the invention, but merely as an example of preferred embodiments. Those skilled in the art will likely conceive of other modifications within the scope and spirit of the invention.
Claims
1. A simulated tissue structure for surgical training, It has a first layer of silicone polymer with an upper surface and a lower surface, A second layer of a silicone polymer having an upper surface and a lower surface, the second layer being spaced apart from the first layer such that the upper surface of the first layer faces the lower surface of the second layer, A third layer made of multiple intertwined fibers arranged between the first layer and the second layer, the third layer being embedded within the upper surface of the first layer, A fourth layer made of a plurality of intertwined fibers disposed between the first layer and the second layer, the fourth layer being embedded within the second layer at the lower surface of the second layer, A first inclusion body is disposed between the third layer and the fourth layer, The third layer comprises a second encapsulating body attached to the third layer at the lower surface of the third layer, The third layer defines an embedded portion partially embedded in the second inclusion body and an extended portion extending from the lower surface of the third layer. The extended portion is embedded within the first layer at the upper surface of the first layer. A simulated tissue structure characterized by the following features.
2. The third and fourth layers are made of polyester fiber. The simulated tissue structure according to claim 1.
3. At least a portion of the third layer is embedded in at least one of the first layer and the second layer while the silicone polymer is uncured. A simulated tissue structure according to claim 1 or 2.
4. At least a portion of the plurality of intertwined fiber filaments of the third layer are embedded in both the first and second layers to form a mechanical fiber linkage connecting the first and second layers. A simulated tissue structure according to any one of claims 1 to 3.
5. At least one of the first and second inclusion bodies is selected from the group consisting of simulated anatomical structures, organs, vascular systems, nerves, tissues, tumors, prostates, prostatic systems, veins, blood vessels, and lumens. A simulated tissue structure according to any one of claims 1 to 4.
6. At least one of the first layer and the second layer has a thickness of 1.0 mm to 5.0 mm. A simulated tissue structure according to any one of claims 1 to 5.
7. The first inclusion is connected to either the first layer or the second layer. A simulated tissue structure according to any one of claims 1 to 6.
8. At least a portion of the first inclusion is embedded in either the first layer or the second layer. A simulated tissue structure according to any one of claims 1 to 7.
9. The first inclusion is positioned between the third layer and the fourth layer so that the first inclusion can be removed. A simulated tissue structure according to any one of claims 1 to 8.
10. Multiple intertwined fibers from the third and fourth layers function as an adhesive layer between the first and second layers. A simulated tissue structure according to any one of claims 1 to 9.
11. The adhesion between the first layer and the second layer is determined by the degree of adhesion between the multiple intertwined fibers of the third layer and the fourth layer and the first and second layers, respectively. A simulated tissue structure according to any one of claims 1 to 10.
12. Multiple intertwined fibers of the third and fourth layers form a dissection surface for practicing surgical incision of the first and second inclusion bodies. A simulated tissue structure according to any one of claims 1 to 11.
13. The multiple intertwined fibers of the third and fourth layers are arranged in a desired shape, thickness, and density. A simulated tissue structure according to any one of claims 1 to 12.
14. Both the first and second layers of the silicone have positions where the thickness decreases when multiple intertwined fibers of the third and fourth layers adhere to the first and second layers, respectively. A simulated tissue structure according to any one of claims 1 to 13.
15. The locations where the thickness of the first and second layers decreases are isolated spots that serve as the starting points of tears in the first and second layers to mimic actual dissection. The simulated tissue structure according to claim 14.
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