This invention relates to a drop controller for controlling the rate at which drops of fluid flow to a patient. More particularly, the invention relates to a drop controller including a disposable cassette through which the fluid flows to the patient. The invention especially relates to a drop controller which provides for a fixed, but easily releasable, relationship between the controller and the cassette. The invention further relates to a controller having fail-safe features for insuring that fluid will flow through the cassette only at proper times and at pre-set rates.
As the practice of medicine becomes progressively complex and refined, the equipment and techniques used to provide care for a patient have become increasingly sensitive in order to assure that the patient receives optimum care. For example, after an operation has been performed on a patient and the patient is in the recuperative state, intravenous fluid has often been introduced to the patient. The rate of introduction of fluid to the patient is dependent upon a number of different factors including the weight, age, sex and physical state of the patient. As the patient recovers from his illness, the rate of introduction of the intravenous fluid to the patient is preferably adjusted to assure that the patient receives an optiumum benefit from the fluid.
Drop controllers have been used in the prior art to control the rates at which drops of fluid have flowed to a patient. Such drop controllers have been relatively crude. They have provided for the clamping of a conduit to control the rate at which fluid flows. Such clamping has been relatively unreliable in controlling the rate of fluid flow.
Copending application Ser. No. 938,910 has been filed by me on Sept. 1, 1978, for "Apparatus for Controlling the Flow of Intravenous Fluid to a Patient" now abandoned and has been assigned of record to the assignee of record of this application. This copending application discloses and claims a disposable cassette which passes fluid at a controlled rate to a patient. The cassette can be used by itself to provide an accurate control over the flow of fluid at a preselected rate in accordance with the manual operation of a knob included in the cassette. The cassette can also be disposed in a drop controller to provide for a precise flow of fluid through the cassette in accordance with the operation of settings provided on the face of the controller. The electronic settings have precedence over any manual positioning of the knob. In this way, the cassette can be controlled either manually or electronically.
Furthermore, each cassette can be discarded after use by a single patient and a new cassette can be provided for the next patient without any need to sterilize the drop controller between uses.
This invention provides an improved drop controller for use with the cassettes disclosed and claimed in application Ser. No. 938,910. The drop controller provides for a fixed, but easily releasable, coupling between the cassette and the controller. The drop controller also includes apparatus for controlling the size in the cassette of the passage providing for the flow of fluid and further includes apparatus for closing this passage when the control apparatus is not functioning properly. The invention further includes apparatus for testing the operation of the drop controller before every use of the controller by closing and then opening the passage. Apparatus is also included for providing for an adjustable disposition of the controller on a support pole.
The drop controller includes a socket for receiving a cassette having a constrainable member adjustable in position. This constrainable member controls the size of a passage through which the fluid flows to the patient. The socket is defined by a plurality of spring fingers for releasably holding the cassette. A lever is mounted on the housing for the controller and is pivotable to a first position by the cassette when the cassette is disposed in the socket. The lever can be pivoted manually to a second position to obtain a removal of the cassette from the socket.
Coupling means are disposed in the controller housing for controlling the positioning of the constrainable member in accordance with the activation of settings on the face of the housing. A stepper motor is operable to adjust the position of the constrainable member in accordance with the activation of the settings. A second motor is also disposed in the motor for driving the member. The second motor becomes operative to drive the member to the closed position of the passage if the stepper motor should become inoperative. The second motor also becomes operative to drive the first member initially to the closed position of the passage when the operation of the drop controller is initiated. After the constrainable member has been driven to the closed position, it is driven by the second motor to the open position. In this way, the second motor acts to test the proper operation of the drop controller.
An arrangement is also included for releasably and adjustably positioning the controller relative to a support pole. The arrangement incudes a shaft and an arm at the end of the shaft for providing an engagement of the support pole between the arm and the housing of the controller. The arrangement further includes a rotatable knob for pivoting the controller on the pole so that the front face of the controller can be easily viewed by hospital attendants.
In the drawings:
FIG. 1 is a perspective view, partially broken away, of a drop controller and a cassette in operatively coupled relationship and further illustrates the disposition of the controller on a support pole;
FIG. 2 is an enlarged elevational view, in section, of the controller and cassette shown in FIG. 1;
FIG. 3 is an elevational view, in section, similar to that shown in FIG. 2 but restricted to the cassette and that portion of the controller providing some of the important features of the invention;
FIG. 4 is an enlarged plan view, in section, of the controller and of the arrangement for adjustably and releasably supporting the controller on a support pole; and
FIG. 5 is a schematic view, partially in section, of the cassette shown in FIGS. 1, 2 and 3.
In the embodiment of the inventions shown in the drawings, a drop controller generally indicated at 10 is provided. The drop controller may be adapted to operate in conjunction with a cassette, generally indicated at 12, to control the rate at which fluid, such as intravenous fluid, flows to a patient. The drop controller 10 and the cassette 12 may be constructed as described and shown in copending application Ser. No. 938,910. The drop controller is adapted to be supported on a pole 14.
The drop controller 10 includes a housing 16. The housing 16 includes a plurality of spring fingers 18 having detents 20 at or near their spring ends. The spring fingers are disposed in an annular configuration to define a socket 24. A lever 26 is pivotably supported at an intermediate position by a button 28 on the housing so as to define a relatively short lever arm below the button 28 and a relatively long lever arm above the button. The lower lever arm is disposed in the socket in one pivotable position, as shown in FIGS. 2 and 3.
The cassette 12 is provided with a housing 30 having detents 32 for cooperating with the detents 20 to retain the cassette in fixed position when the cassette is inserted into the socket. The cassette 12 is also provided with a wall 34 against which the lower arm of the lever 26 is disposed when the cassette is retained by the spring fingers 18 within the socket 24. When it is desired to remove the cassette 12 from the socket 24, the upper arm of the lever 26 is pressed toward the right in FIGS. 2 and 3. This produces a multiplication of force on the lower arm of the lever 26 to remove the cassette from the socket.
The cassette 12 may be provided with a rotatable knob 40 which is disposed within the controller housing 16 when the cassette is retained within the socket 24. The knob is open at a central position as indicated at 41. The knob 40 presses against a pusher rod 42 to control the positioning of a resilient diaphram 44 in a passage 46. The passage 46 communicates with an inlet conduit 48 and an outlet conduit 50. A button 51 is disposed in a closed loop at a position enveloping one of the inlet conduit 48 and the outlet conduit and a notch 53 is cut in the button. The notch 53 is closed by the diaphragm 44 through a distance dependent upon the rotational setting of the knob 40. In this way, the knob 40 acts on the pusher rod 42 to control the size of the opening defined by the passage, thereby controlling the rate at which drops of fluid flow through the passage 46.
A pusher member 52 is disposed in the controller 10 and is coupled to the knob 40 by a detent arrangement 54, preferably spring-biased, when the cassette 12 is properly positioned in the socket 24. The pusher member is in turn coupled through a yoke 60 to a hollow drive member 62 in a stepper motor 64. The motor 64 is stepped through a number of precise increments dependent upon the selection of digital settings 66 on the front of the housing 16. When the motor 64 is incrementally operated, it rotatably adjusts the positioning of the pusher member 52 and the member 52 in turn rotatably drives the knob 40 to constrain the diaphragm 44 and thereby adjust the size of the opening in the passage 46. The positioning of the pusher member 52 has precedence, in controlling the size of the opening in the passage 46, over any setting made manually in the knob 40 before the insertion of the cassette into the socket.
A threaded extension 70 is rotatably disposed within an internally threaded collar 72 having a stationary disposition. The threaded extension 70 is driven by a gear 74 which is in mesh with a gear 76 driven by a suitable motor 78 such as a D.C. motor. The threaded extension in turn drives a rod 79 which extends through the opening 41 in the knob 40 and presses against the pusher rod 42.
A yoke 80 is suitably mounted on the threaded extension 70 as by a sleeve 82. The yoke 80 is pivotably mounted as at 84 at an intermediate position along its length. The yoke 80 is provided at its outer length with a flag 86 which is movable at one extreme position between a light source 88 and a photocell 90 and at an opposite extreme position between a light source 92 and a photocell 94.
The photocells 90 and 94 and the motors 64 and 78 are included in electrical circuitry (not shown). The motor 78 is driven in opposite directions after the cassette 12 has been properly inserted into the controller 10 and when the operation of the controller is initiated by the closure of a switch 96 on the front of the housing 16 and the digital settings 66 have been set to a particular value. The operation of the motor 78 causes the rod 79 to be pressed against the pusher rod 42 and the diaphragm to be constrained in a direction for initially closing the passage 46 and for subsequently opening the passage. This insures that the passage 46 can be closed by the motor 78 if the controller 10 becomes inoperative in any way. In this way, a patient cannot be subjected to injury as a result of an improper operation or an inoperation of the controller 10.
FIG. 4 illustrates an arrangement for fixedly but releasably attaching the controller 10 to the support pole 14. The arrangement includes a shaft 140 threaded as at 142 at one end of the housing 16. A knob 144 is threadedly disposed on the threaded end of the shaft 140. The knob 144 is fixedly disposed relative to the housing as by a support clamp 146 and a button 148 for retaining the clamp in fixed positioning. The knob 144 extends outwardly from the housing to provide for a rotation of the knob and the housing relative to the shaft 140 in accordance with the manual operation of the knob.
The shaft 140 extends through the housing and emerges from the housing at the end opposite the knob 140. At this opposite end, the shaft 140 terminates in an arm 150 which extends in a direction substantially perpendicular to the shaft. The distance of the arm 150 from the end of the housing 16 can be adjusted by rotating the shaft relative to the knob 140, as may be seen by another positioning of the arm 150 in broken lines (designated as 150a). In this way, the arm 150 can be disposed against one side of the pole 14 and the housing 16 can be disposed against the other side of the pole to lock the drop controller in fixed position on the pole.
A block 152 may be disposed at the end of the housing 16 adjacent the pole 14 to cushion any force exerted on the housing by the pole. This cushioning effect is facilitated by a gasket 154 made from a suitable resilient material such as rubber. The block 152 and the gasket 154 may be fixedly positioned on a collar 156 which extends through the housing 16. The collar 156 is in turn fixedly positioned by a gasket 158 which is limited in axial movement by a button 160.
The housing 16 may be fixedly supported on the pole 14 by rotating the shaft 140 relative to the knob 144 to position the arm 150 against the pole. The knob 144 may then be rotated to tilt the housing 16 to any desired angle. This facilitates the viewing of the front face of the housing 16 by a short person disposed below the drop controller or by a tall person disposed above the drop controller.
Although this application has been disclosed and illustrated with reference to particular applications, the principles involved are susceptible of numerous other applications which will be apparent to persons skilled in the art. The invention is, therefore, to be limited only as indicated by the scope of the appended claims.