The present invention relates to a peristaltic pump and a method for its realization. As will be better described hereinafter, the peristaltic pump of the present invention is coupled to a removable (and potentially disposable) support which holds the sub-pump tube and any additional components both for the control and for the eventual treatment of the pumped liquid.
The invention is inserted in the medical field and, in particular, in the treatment of blood in extracorporeal circulation, an area in which the following aspects are of major importance: the reduction of trauma, the possibility of rapid circuit replacement, the assurance of asepsis, the reduction of risk related to possible human errors and the simplicity and safety of execution.
This will not prevent extending the use also to other areas, as critical as the treatment of food substances, the pharmaceutical industry, chemistry, etc.
As stated previously, the common peristaltic pumps are composed of an external cylindrical stator and an internal rotor coaxial to the stator. The rotor comprises two or more pads or rollers and is moved by means of a motor connected to it. The motor rotates the internal rotor which drives the rollers (or pads) into its circular motion. A portion of tube or “sub-pump tube” (in this way the segment of elastic tube subjected to the peristaltic action of the pump is in fact called in technical jargon) is placed manually between the space between the inner surface of the stator, which acts as a plane of reaction, and the circumference described by the pressure elements (shoes or rollers) which rotate integral with the rotor, arranged along the external surface of the latter.
In peristaltic pumps of a known type, the space for receiving the sub-pump tube is designed to be equal to the sum of the thickness of the walls of the tube to be compressed (small variations in plus or minus are chosen according to the type of pipe or of the fluid to be pumped). The rollers compress the tube progressively occluding it against the stator in their rotary motion. The compressed tube generates the flow by variation of its internal volume. In the tube section arranged upstream of the compression performed by the rotor (that is on the portion already affected by compression of the pressure rollers), the tube resumes its original shape thanks to its elastic memory, sucking the fluid to be pumped. The cyclic and mono-directional repetition of this action allows pumping.
Peristaltic pumps of the known type are not always able to provide high quality standards with regard to the aspects mentioned above, i.e. with regard to the reduction of traumatism, the possibility of rapid circuit replacement, the guarantee of asepsis, the reduction of the risk related to the possible human errors, as well as the simplicity and safety of execution.
Among the aims of the present invention there is therefore that of providing very high standards for the aforementioned aspects, thanks to the structural and functional characteristics listed below and relating to a preferable embodiment:
The advantages and characteristics of the invention will be more evident from the following description which refers to the attached drawings, provided as a non-limiting example, in which:
With reference to the drawings of the attached figures, a peristaltic pump (1) according to the present invention is substantially constituted by a base (2) on which a stator (3) and a pressor (4) are arranged.
The base (2) comprises an electric motor (21), located below it, and a support and containment structure (20) inside which the means for transmitting the motion and movement of the pressor (4) can be contained.
The stator (3) consists of a hollow cylindrical body provided inside a groove (37) with a helical lay adapted to receive the sub-pump tube (7). In the preferred (but not limiting) solution shown in the drawings, the assembly formed by tube (7)/stator (3) is designed as a pre-assembled single-use kit to increase ease of assembly and operational safety. According to other embodiments, not illustrated, it is possible to provide a reusable stator in which it is possible to manually preload the sub-pump tube, for less critical uses and for purposes of greater economy of operation.
In the illustrated example the ends of the sub-pump tube (7), usable for upstream and downstream connection, are marked with (70); moreover, it is possible to notice that inside the stator (3) the sub-pump tube (7) follows a helical path with a variable diameter. More particularly, the sub-pump tube (7) presents, from upstream to downstream, an initial portion which is more distant from the center of the cylindrical body of the stator (i.e. from the axis marked with y in the drawings), an intermediate portion which is more close to said axis (y) and an end portion which is again spaced from the axis (y). In the drawings the difference between the distances from the center of these portions is indicated with (L). This particular arrangement allows the pressor to interact with the sub-pump tube in an extremely effective manner, as better expressed later.
In the examples of the drawings it is provided that the groove (37) of the stator (3) is formed by a helix that extends along the inner cylindrical surface of the stator, presenting a variable diameter along the height of the stator so as to define said initial, median and terminal portions that are invested in succession and cyclically by the pressor (4) in its circular path. In particular, the groove (37) does not have a constant diameter and is provided with a series of steps indicated with (370) in
The stator (3) is provided, in its lower portion, with a plurality of arcuate wings (30) with variable development increasing in one direction (e.g., levorotatory like in the drawings). In practice, the appendices (30), which are four in the illustrated example, are developed on a plane perpendicular to the axis (y) of the body of the stator (3), i.e. on a plane which is parallel to that of the upper surface the base (2) when the stator (3) is fixed to the base (2) in the configuration of use. Each of the appendices (30) protrudes progressively from the body of the stator (3), from an initial point (31), which substantially coincides with the external surface of the stator, up to an end portion (32) which, further protruding in a radial direction with an arched beveled portion forms a sort of tooth (33); the appendices (30) are therefore cam elements which interact with corresponding pins (22) presented by the base (2). The pins (22) have a stem (24) protruding from the upper surface of the base (2) for a value corresponding to the thickness of the cam elements (30) and a head (23) with a larger diameter which defines a vertical block for the tooth (33) of the same cam elements (30). This feature makes it possible to associate the assembly formed by stator (3)/sub-pump tube (7) to the base (2) with a simple and safe operation, i.e. with an operation that determines a fast association and with very few risks of incorrect positioning. In other words, it is sufficient to fit the assembly stator/sub-pump tube on the pressor and “screw” the stator (3) on the base (2). In this way, the sub-pump tube (7) which is permanently inserted into the groove (37) of the stator (3), is positioned in the correct configuration for the interaction with the pressor (4), thus excluding in substantially absolute manner the possibility of twisting and/or unwanted squeezing of the same sub-pump tube.
In the peristaltic pump (1) of the invention there is a single pressor roller (4) in order to increase the efficiency of the pump, to reduce tube wear and trauma to the blood.
Furthermore, the presence of a single pressor allows an extremely simple coupling of the pump/kit (i.e. pump/stator provided with a sub-pump tube), impossible to be found in the other cases of the known art.
In the illustrated example, the pressor (4) is motorized so as to rotate around its longitudinal axis (x). The pressor (4) is arranged cantilevered with respect to a circular platform (5) which is rotatable with respect to the base (2). In particular, the platform (5) is provided with a circular hole (50) crossed by the cylindrical pressor (4); in use, the pressor (4) rotates about its own axis (x) and inside the hole (50), rotatably idle with respect to the platform (5). The interaction of the pressor (4) with the sub-pump tube (7) determines the rotation of the platform (5) with a circular trajectory of the pressor (4), due to the friction between the sub-pump tube (7), which is integral with the stator (3), and the pressor (4), which rotates in contact with the same sub-pump tube (7) and drives the platform (5) in respect to which it is cantilevered. In other words, the friction of the pressor (4) rotating about its longitudinal axis (x) with respect to the sub-pump tube (7) integral with the stator (3) (and therefore also with the base 2) causes, by reaction, the moving of the pressor (4) along an orbit described inside the stator (and coinciding with the orbit formed by the coil of the sub-pump tube pressed against the cavity of the stator). This movement determines the subsequent complete compression of the tube (7) for the whole length of the coil thus generating the pumping action.
More particularly, with reference to
In the operation of the pump (1), the motor (21), by means of the shaft (25) and the gear train formed by the pinion (26) and by the toothed wheel (41), rotates the pressor (4) around its longitudinal axis (x). The rotation of the pressor (4) which is in contact with the sub-pump tube (7) supported by the stator (3) causes a sort of “rolling” of the same pressor along the sub-pump tube (7), determining the succession of compressions of the same sub-pump tube and, therefore, the pumping effect of the pump (1).
The solution shown in the drawings has a helical arrangement of the sub-pump tube (7) since the same must necessarily make a complete revolution (360°) or almost, as will be seen below, so that, at each point of the cyclic rotation of the pressor roller there is a section of tube occluded by the roller itself.
In the embodiment of the present invention, further circumference arches of the sub-pump tube are dedicated to allow a gradual achievement of full occlusion and full re-opening of the tube (7) by the pressor (4), which, in its path inside the stator (3), always compresses at least two coils of the sub-pump tube, one of them always occluded while the other alternately in occlusion or opening.
With reference to the diagram of
The sub-pump tube (7) (made of elastic material with shape memory, e.g. PVC or silicone) is mounted on the removable stator (3), inserted in the housing (37), wound inside the wall of the same stator whose section in this first section is an arc of circumference, eccentric with respect to the orbit described by the pressor (4) in its circular movement, and with a helical shape that employs substantially 180° (in the illustrated but not limiting form) to increase of a suitable value to bring the tube from a position where it is only touched by the circular path (see position A of
In the example illustrated in the accompanying drawings, the stator (3) is a substantially cylindrical body which is hollow inside to allow insertion of the sub-pump tube (7) around the pressor path (4).
Internally, from top to bottom, the stator (4) has a first portion which develops in an eccentric circular section with decreasing diameter until a minimum value is reached which is kept concentric by 360° (variations less than that arc amplitude will be decided according to the type of tube or to the fluid to be pumped, also keeping in mind the intent to avoid trauma due to blood shear stress that could compromise the integrity of the solid components of the blood itself as well as avoiding excessive and sudden mechanical stress to the tube; in this embodiment a path of complete occlusion around 300 degrees is assumed) assuming a cylindrical circular shape, and a last portion (180° in the example) where an eccentric circular path again but this time increasing returns to the maximum starting diameter. The path of the under-pipe defines a helix along the axis of the stator to avoid overlapping the tube. The advantages deriving from this arrangement are, in the object of the present invention, the following:
In
For example,
The arrangement of the sub-pump tube (7) shown in
In the configuration of
Subsequently, as shown in
The diagram of
The present invention also relates to a method of realization a pump which provides to realize a disposable stator i.e. having an sub-pump tube therein inserted during manufacture. Therefore, the industrial realization of the pump (1) according to the invention provides for the manufacture of a pump body comprising the base (2) and the motorizing means of the pressor (4) with respect to the base (2) and a disposable stator (3), in which the sub-pump tube is inserted and which is provided with devices for the treatment of blood such as oxygenators, hemofilters, and/or sensors of various types, etc. . . . In this way, it is obtained a reusable pump body which can be equipped by means of the stator-sub-pump tube assembly, an assembly which is already set up for use and which is easily and above all safety connectable to the pump body.
In conclusion, among the advantages of the present invention the following can be listed.
The preparation of the pump is extremely easy, fast and error-proof because, unlike traditional peristaltic pumps, the stator is removable and pre-assembled at the factory so the pump (1) does not require manual actions for the assembly of the various tubing.
The pressor (4) is a single roller so it is considerably smaller than the space presented inside the stator (3) even if the stator is already pre-assembled with the sub-pump tube (7). It is sufficient to fit the stator around the pressor (4) putting it on the base of the pump and rotating it until it stops in position, thanks to the fixing means consisting of the fixing appendices which automatically center the stator coaxially with the rotating platform (5) and with the pressor orbit (4) without the need for moving parts.
The stator (3), which is external to the orbit of the pressor (4), protects the operator from accidental contact with the pressor during its movement.
What is described is intended with reference to what is illustrated in the attached diagrams which constitute embodiments of the invention.
Moreover, the details of execution may in any case vary in the form, size, arrangement of the elements, nature of the materials used, without however departing from the idea of the solution adopted or the inventive concept and therefore remaining within the limits of the protection given by the present patent.
Number | Date | Country | Kind |
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102017000013374 | Feb 2017 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2018/000085 | 2/7/2018 | WO | 00 |