IP Library Granted Patent US 12670810
Granted Patent B2
US 12670810 · App. 18/297,958 · Granted Jun 30, 2026

Surgical simulator and simulation method

Inventors: Kouji Ozaki (Naka-gun, JP); Ayumi Hattori (Atsugi, JP); Satoshi Kikuchi (Tokyo, JP)
Assignee: TERUMO KABUSHIKI KAISHA
G09B23/285G09B23/286
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Quick Facts
Patent No.
US 12670810
App. No.
18/297,958
Granted
Jun 30, 2026
Kind
B2
Abstract

A surgical simulator and a simulation method are disclosed. The surgical simulator includes a blood vessel model. The blood vessel model includes an aorta model simulating a case of replacing a part of the thoracic aorta of a human body with an artificial blood vessel. The aorta model includes a simulated vessel and an artificial blood vessel, or a medical device, connected to the simulated vessel.

Claims (65)

1 . A surgical simulator comprising:

a blood vessel model, the blood vessel model including an aorta model simulating a case of replacing a part of a thoracic aorta of a human body with an artificial blood vessel; and

the aorta model including a simulated vessel and the artificial blood vessel, or a medical device, connected to the simulated vessel; and

wherein the simulated vessel includes a partition wall configured to partition a lumen of the simulated vessel into a true lumen and a false lumen, the partition wall being provided with a hole that allows the true lumen and the false lumen to communicate with each other.

2 . The surgical simulator according to claim 1 , wherein the artificial blood vessel of the aorta model is located in a part of the aorta model corresponding to at least a part of an aortic arch of a human body.

3 . The surgical simulator according to claim 1 , wherein

the aorta model includes a connection between the simulated vessel and the artificial blood vessel, the connection including an annular end that forms the simulated vessel and an annular connection that forms the artificial blood vessel of the aorta model; and

the annular connection being connected to the annular end of the connection in a liquid-tight manner while being inserted into a lumen of the annular end of the connection.

4 . The surgical simulator according to claim 3 , wherein

the connection includes a non-woven fabric including a soft plastic, the non-woven fabric located on an outer periphery of the annular end of the connection; and

the annular connection, the annular end of the connection, and the non-woven fabric are sewn with a suture while overlapping each other.

5 . The surgical simulator according to claim 4 , wherein the connection includes a plastic sealing member included in the non-woven fabric.

6 . The surgical simulator according to claim 1 , wherein

the blood vessel model includes a simulated femoral artery simulating a femoral artery of a human body and a block embedded with the simulated femoral artery;

the simulated vessel and the simulated femoral artery both including a soft plastic material; and

the block including a hard plastic material.

7 . The surgical simulator according to claim 1 , the surgical simulator comprising:

a tank having a box shape configured to store water and house the aorta model submerged in the water;

a connection circuit configured to circulate the stored water in the tank into the blood vessel model; and

a pump configured to apply arterial pressure to the water in the blood vessel model.

8 . The surgical simulator according to claim 7 , wherein

the tank includes a bottom wall, a first side wall, and a second side wall protruding from the bottom wall of the tank, the first side wall and the second side wall face each other; and

the aorta model has a first interval between the aorta model and the first side wall, the first interval being shorter than a second interval between the aorta model and the second side wall, and the second interval being longer than a height of the second side wall.

9 . The surgical simulator according to claim 1 , wherein

the simulated vessel includes a tubular inner wall portion and a tubular outer wall portion located on an outer periphery of the inner wall portion; and

the inner wall portion and the outer wall portion both including a soft plastic material, and the inner wall portion having elongation larger than elongation of the outer wall portion.

10 . A surgical simulator comprising:

a blood vessel model, the blood vessel model including an aorta model simulating a case of replacing a part of an thoracic aorta of a human body with an artificial blood vessel,

the aorta model including a simulated vessel and the artificial blood vessel, the aorta model including a connection between the simulated vessel and the artificial blood vessel, the connection including an annular end that forms the simulated vessel and an annular connection that forms the artificial blood vessel of the aorta model, the annular connection being connected to the annular end in a liquid-tight manner while being inserted into a lumen of the annular end, the simulated vessel including a partition wall configured to partition a lumen of the simulated vessel into a true lumen and a false lumen, the partition wall being provided with a hole that allows the true lumen and the false lumen to communicate with each other;

a tank configured to house the aorta model submerged in water, the tank including a bottom wall, a first side wall, and a second side wall protruding from the bottom wall of the tank, and wherein the first side wall and the second side wall face each other;

a connection circuit configured to circulate the water in the tank into the blood vessel model;

a pump configured to apply arterial pressure to the water in the blood vessel model; and

wherein the aorta model has a first interval between the aorta model and the first side wall, the first interval being shorter than a second interval between the aorta model and the second side wall, and the second interval being longer than a height of the second side wall.

11 . The surgical simulator according to claim 10 , wherein

the connection includes a non-woven fabric, the connection being located on an outer periphery of the annular end;

the annular connection, the annular end, and the non-woven fabric are sewn with a suture while overlapping each other; and

wherein the connection includes a plastic sealing member included in the non-woven fabric.

12 . The surgical simulator according to claim 10 , wherein

the blood vessel model includes a simulated femoral artery simulating a femoral artery of a human body and a block embedded with the simulated femoral artery;

the simulated vessel and the simulated femoral artery both including a soft plastic material; and

the block including a hard plastic material.

13 . A simulation method using the surgical simulator of claim 1 , the method comprising:

supplying water into the blood vessel model;

operating a catheter while the water flows in the blood vessel model to guide a stent graft embedded in a tip of the catheter into the aorta model; and

expanding the stent graft after the guiding of the stent graft embedded in the tip of the catheter into the aorta model.

14 . The simulation method according to claim 13 , further comprising:

submerging the aorta model in the water in a tank; and

deploying the aorta model in the water in the tank at a desired position and in a desired posture by adjusting one or more locks relative to a side wall of the tank.

15 . The simulation method according to claim 14 , further comprising:

supplying the water into the blood vessel model by suction through a first connecting tube to a pump; and

supplying the water from the pump through a second connecting tube to the artificial blood vessel body through a simulated coronary artery, a simulated aortic root, and a simulated ascending aorta.

16 . The simulation method according to claim 15 , further comprising:

diverting the water from the artificial blood vessel body into a branched tube and a simulated descending aorta, the branched tube extending into the tank.

17 . The simulation method according to claim 16 , further comprising:

flowing the water from the simulated descending aorta into a simulated abdominal aorta;

diverting the water from the simulated abdominal aorta into a simulated left femoral artery and a simulated right femoral artery;

returning the water to the tank from the simulated left femoral artery through a third connecting tube; and

returning the water to the tank from the simulated right femoral artery through a fourth connecting tube.

18 . The simulation method according to claim 17 , wherein the guiding of the catheter having the tip embedded with the stent graft further comprises:

inserting the catheter into the simulated left femoral artery from a check valve;

advancing the tip of the catheter from the simulated left femoral artery to the simulated descending aorta through the simulated abdominal aorta; and

inserting the tip of the catheter into a lumen of the artificial blood vessel.

19 . The simulation method according to claim 14 , further comprising:

driving a radiography device to capture an image of the medical device inside the aorta model by rotating an arm of the radiography device by a predetermined angle relative to a base of the radiography device so as to position a radiation source closer to one side wall of the tank and to position a detector closer to another side wall of the tank; and

visually checking the catheter in a radiographic image.