Hemodialysis systems and methods
The present invention generally relates to hemodialysis and similar dialysis systems, including a variety of systems and methods that would make hemodialysis more efficient, easier, and/or more affordable. One aspect of the invention is generally directed to new fluid circuits for fluid flow. In one set of embodiments, a hemodialysis system may include a blood flow path and a dialysate flow path, where the dialysate flow path includes one or more of a balancing circuit, a mixing circuit, and/or a directing circuit. Preparation of dialysate by the preparation circuit, in some instances, may be decoupled from patient dialysis. In some cases, the circuits are defined, at least partially, within one or more cassettes, optionally interconnected with conduits, pumps, or the like. In one embodiment, the fluid circuit and/or the various fluid flow paths may be at least partially isolated, spatially and/or thermally, from electrical components of the hemodialysis system. In some cases, a gas supply may be provided in fluid communication with the dialysate flow path and/or the dialyzer that, when activated, is able to urge dialysate to pass through the dialyzer and urge blood in the blood flow path back to the patient. Such a system may be useful, for example, in certain emergency situations (e.g., a power failure) where it is desirable to return as much blood to the patient as possible. The hemodialysis system may also include, in another aspect of the invention, one or more fluid handling devices, such as pumps, valves, mixers, or the like, which can be actuated using a control fluid, such as air. In some cases, the control fluid may be delivered to the fluid handling devices using an external pump or other device, which may be detachable in certain instances. In one embodiment, one or more of the fluid handling devices may be generally rigid (e.g., having a spheroid shape), optionally with a diaphragm contained within the device, dividing it into first and second compartments.
1. A method to test the integrity of a membrane of a dialyzer in a hemodialysis system with each therapy, the method comprising:
pumping a liquid from a dialysate path through the dialyzer into a blood path;
stopping the pumping of the liquid into the blood path;
pumping air into the blood path;
displacing the liquid in the blood path through the membrane of the dialyzer with the air;
monitoring a flow of the air in the blood path; and
detecting a ruptured membrane of the dialyzer when the flow of the air does not stop once the liquid in a blood path side of the dialyzer has been displaced by the air.
2. The method of claim 1 further comprising;
filling a blood flow pump in the blood path with liquid from a dialysate path;
emptying a dialysate pump in fluid communication with the dialyzer; and
fluidically connecting the dialysate pump to atmosphere.
3. The method of claim 2 further comprising;
fluidically connecting the blood flow pump to a pressure source via a valve;
cycling the valve between an open state and a closed state;
monitoring a signal of the pressure in the blood flow pump over time; and
determining end of stroke based on the signal.
4. The method of claim 3 further comprising determining a flowrate through the blood pump based on the signal.
5. The method of claim 4 further comprising:
monitoring the flowrate through the blood pump; and
detecting a ruptured membrane of the dialyzer when the flowrate does not stop after the liquid in the blood path side of the dialyzer has been displaced.