The present disclosure relates to the field of mechanical electronic devices, for example, to a fluid driving device.
In the related art, fluid driving devices that can generate a periodic pulsating fluid have emerged to simulate an artificial heart or the like. They are used by clinicians or medical instruments research and development enterprises to simulate the clinical use environment of a device and test a medical instrument, or they may also be used by relevant units and schools for purposes of teaching demonstrations. However, most of the fluid driving devices for simulating the heart in the related art has a simple function and cannot accurately simulate the physiological conditions of the human heart (for example, it is difficult to simulate the contraction and relaxation of the heart, the heart rate, and the cardiac output, etc., or to simulate the blood temperature and pressure), or they may have a large volume and so are not portable.
The present disclosure provides a fluid driving device that has a compact structure and is able to quickly provide a pulsating fluid as needed.
There is provided a fluid driving device that includes:
a pipe flow system, configured to provide a fluid channel;
a power system, configured to provide power for a fluid to flow into and out of the pipe flow system; and
a control system, configured to control operation of the fluid driving device.
In an embodiment, the fluid driving device further includes a base. The pipe flow system is formed inside the base. The power system is supported on the base. The control system is supported on the base. And the power system is disposed between the control system and the base.
In an embodiment, the pipe flow system includes an inner chamber defined by an interior space of the base, an inflow valve operative to control the fluid to flow into the inner chamber, and an outflow valve operative to control the fluid to flow out of the inner chamber.
In an embodiment, the inflow valve and the outflow valve are both check valves.
In an embodiment, the check valve includes a valve body, a ball cage arranged at the valve body along a flowing direction of the fluid, and a movable ball arranged inside the ball cage. The valve body includes a fluid channel, and the ball is configured to block or open the fluid channel by moving in the ball cage.
In an embodiment, the valve body is formed from a soft material, the soft material including silicone or rubber.
In an embodiment, the fluid driving device further includes an energy accumulator, which is communicated with the interior chamber of the pipe flow system and is configured to buffer the flow of the fluid and to adjust a pressure difference between a first pressure and a second pressure of the fluid, where the first pressure is a fluid pressure after the energy accumulator stores energy, and the second pressure is a fluid pressure after the energy accumulator releases energy.
In an embodiment, the power system includes:
a housing, communicated with an upper portion of the inner chamber;
a piston, movable along an up and down direction in the housing; and
a drive mechanism, disposed above the housing and configured to drive the piston to move in the up and down direction.
In an embodiment, the drive mechanism includes a linear motor, a cylinder, a solenoid valve, or a reciprocating mechanical structure.
In an embodiment, the power system includes:
a housing, communicated with an upper portion of the inner chamber; and
a deformable elastomer, connected to the housing and configured to deform in the housing so as to provide a power.
In an embodiment, the fluid driving device further includes a pressure sensor configured to detect a pressure of the fluid in the pipe flow system.
In an embodiment, the control system is configured to control the pressure of the fluid in the pipe flow system based on the pressure of the fluid detected by the pressure sensor.
In an embodiment, the fluid driving device further includes a flow sensor configured to detect a flow of the fluid in the pipe flow system.
In an embodiment, the control system is configured to control the flow of the fluid flowing into the pipe flow system based on the flow of the fluid detected by the flow sensor.
In an embodiment, the fluid driving device further includes a heating assembly connected to the pipe flow system and configured to heat the fluid in the pipe flow system.
In an embodiment, the fluid driving device further includes a temperature sensor configured to detect a temperature of the fluid in the pipe flow system.
In an embodiment, the control system is further configured to control the heating assembly depending on a detection result of the temperature sensor.
In an embodiment, the inflow valve is connected to an inflow pipe, and the outflow valve is connected to an outflow pipe, where the inflow pipe is provided with a flow control valve configured to control the rate of flow and pressure of the fluid flowing into the fluid driving device.
In an embodiment, the fluid driving device further includes a touch display screen or a portable computer electrically connected to the control system and configured to input a control command and to display the pressure and the temperature detected by the pressure sensor and the temperature sensor.
In an embodiment, the control system is further configured to control the power system and the heating assembly to stop operating when detecting no fluids in the pipe flow system.
The fluid driving device of the present disclosure has an overall simple and compact structure. Thus, the overall instrument volume and weight, and making it convenient to carry around.
As illustrated in
For example, a top portion of the control system 3 may be formed as a top plate of the device, and a handle may be arranged above the top plate for the user to conveniently move the fluid driving device. The power system 2 is arranged between the pipe flow system 1 and the control system 3, and the volume of the device may be further reduced by compressing a height between the pipe flow system 1 and the control system 3. In an embodiment, the power system 2 may also be provided on a side of the pipe flow system 1 or may be separately provided, and the control system may also be provided on a side of the pipe flow system 1 or may be separately provided.
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For example, the housing may have a cylindrical shape, a bottom surface of the piston 21 moving inside the housing is a sealed circular plate, a projection area of the bottom surface of the piston 21 in the up and down direction is S, the drive mechanism 22 may be a linear motor connected to the piston 21 to drive the piston 21 to move up and down. By controlling the downward displacement amount AL of the bottom circular plate of the piston 21, the volume change (S×AL) of the fluid 23 inside the inner chamber 11 can be controlled, thereby controlling the amount (i.e., cardiac output) of the fluid 23 flowing out of the device, and by controlling a rate of up and down motion driven by the linear motor, a rate (i.e., heart rate) at which fluid 23 flows in and out can be controlled. By such design, the power system 2 can push the fluid 23 to flow out of and into (i.e., to flow into and out of the device) the piping system 1, thereby simulating the contraction and relaxation of the heart.
In an embodiment, the linear motor may be replaced with other drive mechanisms such as cylinders, and other motors, such as electromagnetic motors, solenoid valves, and centrifugal pumps, or other reciprocating mechanical structures. The housing may be in a shape of a cylinder or a rectangular parallelepiped etc.
In an embodiment, the piston 21 and the drive mechanism 22 may be replaced with a deformable elastomer, such as a balloon, and volumetric changes of the fluid 23 inside the inner chamber 11 can be controlled by means of the elastomer deforming in the housing, thereby providing power.
As illustrated in
The structure of the energy accumulator 8 is as illustrated in
The control system 3 is configured to control the operation of a fluid driving device. For example, the control system 3 may be electrically connected to the power system 2, for example, to provide a control signal (e.g., a voltage or current, etc.) to a drive mechanism 22 (e.g., a linear motor) of the power system 2 such that the power system 2 provides power for the fluid 23 to flow into and out of the piping system 1. For example, the control system may control the movement rate and the displacement change amount of the linear motor to simulate different heart rates and cardiac output.
As illustrated in
The arrangement of the control system of the device combined with the pressure sensors, temperature sensors and flow sensors allows the device to better control the pressure, temperature, rate of the flow, and the like of the provided pulsating fluid, and to better simulate the heart rate, cardiac output, and the pressure and temperature of the output fluid when used as a simulated heart, so as to better achieve cardiac simulation.
The fluid driving device further includes a heating assembly 5, which is connected to the pipe flow system 1 and is configured to heat the fluid in the pipe flow system. For example, the heating assembly 5 may be a heating rod, is connected to the inner chamber, and is electrically connected to the control system 3, which may provide a control signal to the heating assembly 5 to heat the assembly.
The fluid driving device further includes a temperature sensor 6 configured to detect a temperature of the fluid 23 in the pipe flow system 1. For example, the temperature sensor 6 may be arranged at the inner chamber of the pipe flow system 1 to detect the temperature in the inner chamber in real time, or may be arranged wherever needed. The control system 3 may control the heating assembly 5 based on the detection result of the temperature sensor, for example, when the temperature sensor detects a low temperature, the control system 3 may control the heating rod to heat the fluid 23 in the inner chamber to maintain the fluid within a set range of temperature.
The fluid driving device may further include a flow sensor configured to detect the rate of the flow of the fluid in the pipe flow system. The flow sensor may be arranged on the inflow pipe and the outflow pipe, or at the inflow valve 12 and the outflow valve 13 to detect the rate of the flow of the fluid flowing into the pipe flow system in real time. The control system 3 is configured to control the rate of the flow of the fluid flowing into the pipe flow system 1 based on the rate of the flow of the fluid detected by the flow sensor. For example, the control system 3 may control the rate of the flow of the incoming fluid by controlling the power system 2, or may control the rate of the flow of the incoming fluid by controlling the inflow valve 12, and may also control the rate of the flow of the incoming fluid by controlling the flow valve.
In an embodiment, the control system 3 is further configured to stop the power system 2 and the heating assembly 5 from operating when detecting no fluids in the pipe flow system 1, thereby achieving self-diagnosis and protection of the simulated cardiac devices. In an embodiment, the fluid driving device may further include an alarm that can send an alert to the user when detecting no fluids in the pipe flow system 1.
In an embodiment, the fluid driving device further includes a touch display screen 7, and as illustrated in
In an embodiment, the control system 3 may implement the different functions described above by a single control device, or may implement the different functions described above by a plurality of control devices. The control system 3 may include a first control device configured to control the pressure of the fluid 23 in the pipe flow system 1 based on the pressure of the fluid 23 detected by the pressure sensor. The control system 3 may include a second control device configured to control the heating assembly 5 based on the detection result detected by the temperature sensor. The control system 3 may include a third control device configured to control the rate of the flow of the fluid 23 flowing into the pipe flow system 1 based on the rate of the flow of the fluid 23 detected by the flow sensor. The control system 3 may include a fourth control device, which is configured to stop the power system 2 and the heating assembly 5 when detecting no fluids in the pipe flow system 1, and may also be electrically connected to the alarm to control the provision of the alarm. These control devices can be integrated on one chip or may be implemented by multiple chips.
The fluid driving device provided by the present embodiment can generate periodic pulsating fluid, can control a periodic rate of the flow of the fluid, the periodic pressure and the temperature according to actual needs, simulates the contraction and relaxation of the heart, and may be used for medical teaching (for example, for simulated surgery), medical device testing (for example, testing prosthetic heart valves), assist medical treatment (blood vascular system provides pulsating pressure and blood with temperature of 37±2 degrees Celsius) and other situations requiring periodic pulsating fluids.
The fluid driving device of the present disclosure has an overall simple and compact structure, which significantly reduces the overall instrument volume and weight and is convenient to carry around.
Number | Date | Country | Kind |
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201710812958.4 | Sep 2017 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/096254 | 7/19/2018 | WO | 00 |