The present invention relates to a peristaltic pump device that supplies a micro-fluid such as various reagents through a tube, and specifically, to a peristaltic pump device which a tube can be easily attached to and removed from, and which can be downsized.
Conventionally, a peristaltic pump (peristalsis pump) is known through JP No. 2007-523284A, etc., which includes a plurality of rollers pivotally supported rotatably on a circular rotor, and sends a fluid inside a tube while pressing an outer circumferential surface of each roller of the rotor against the tube and rotating the rotor.
However, the type of conventional peristaltic pump is configured so that a circular rotor that is rotary-driven by a motor pivotally supports a plurality of rollers rotatably on an outer circumferential portion of the rotor, spindles of the respective rollers are located in directions at right angles to a rotary shaft of the rotor, and when the rotor rotates, the outer circumferential surfaces of the respective rollers are pressed against the tube (flexible conduit tube), and while the rollers of the rotor are pressed in order against the tube and rotationally moved, the peristaltic pump sends a fluid.
Therefore, a reactive force of a load to press the tube by each roller is applied perpendicularly to the rotary shaft of the motor, so that a rotational load of the motor increases, and in particular, in a small-sized peristaltic pump device to be used to perform cell culturing, reagent screening, and chemical analysis, etc., by flowing a micro-fluid such as various reagents through a microfluidic flow path, the motor increases in size, and this poses a problem in which it is difficult to downsize the pump as a whole.
In this type of a peristaltic pump, normally, the portion of the tube cannot be easily removed from a pump casing including the rotor. This poses a problem in which, when supplying a chemical, etc., the tube cannot be easily brought into contact with and removably fitted to the roller portion of the rotor, and the used tube cannot be easily disposed of or cleaned.
An object of the present invention is to provide a peristaltic pump device which a tube serving as a flow path can be easily attached to and removed from, and which can be downsized. The object of the present invention can be achieved by a peristaltic pump device configured as described below.
That is, a peristaltic pump device according to the present invention includes a tube allowing the passage of a fluid, a tube holder holding the tube, a base to which the tube holder is fitted, a rotor attached rotatably onto the base, and at least one roller pivotally supported on the rotor and configured to rotate while pressing and crushing the tube, wherein a tube holding groove is formed on a bonded surface of the tube holder on the base side, a depth of the tube holding groove is formed to be shorter than an outer diameter of the tube, and the depth of the tube holding groove is formed so that, when the tube is inserted into the tube holding groove, the tube is held inside the tube holding groove by a frictional resistance caused by a restoring elastic force of the tube.
According to the peristaltic pump device of the present invention, a tube holding groove is formed on a bonded surface of the tube holder on the base side, and a depth of the tube holding groove is formed to be shorter than an outer diameter of the tube and set so that, when the tube is inserted into the tube holding groove, the tube is held inside the tube holding groove by a frictional resistance caused by a restoring elastic force of the tube, and therefore, by removing the tube holder from the base, the tube can be easily removed from the tube holding groove of the tube holder. The tube holder can be formed to be very thin, so that the peristaltic pump device can be sufficiently downsized.
Here, a configuration can be adopted in which, on the bonded surface of the tube holder on the base side, a concave portion is formed so as to allow a portion of the rotor to enter, and at substantially the center of the bonded surface, a positioning convex portion to be positioned by contact with the surface of the rotor is provided. With this configuration, excessive pressing and crushing of the tube due to variation in dimensions of the respective members, variation in elastic force of a spring member, variation in inner and outer diameters of the tube, or variation in elasticity of the tube among products can be prevented, and the pressing and crushing amount can be fixed. It is preferable that the rotor is held on the base movably in an axial direction, and a spring member configured to bias the rotor to the tube holder side is provided. The tube is preferably configured to be exposed so as to become removable when the tube holder is removed from the base.
Here, a projecting amount of the tube from the tube holding groove is preferably formed to be larger than an inner diameter of the tube. With this configuration, when the roller presses and crushes the tube, a proper pressing and crushing amount of the tube can be secured.
The peristaltic pump device of the present invention enables the tube serving as a flow path to be easily attached to and removed from the peristaltic pump device, and the device can be downsized.
Hereinafter, the present invention is described based on embodiments shown in the drawings. The present invention is not limited to the embodiments. All modifications within requirements of the claims or equivalents regarding the requirements shall be included in the scope of the claims.
A peristaltic pump device of the present invention includes a tube 9 that allows the passage of a fluid, a tube holder 2 that holds the tube 9, a base 1 to which the tube holder 2 is fitted, a rotor 3 attached rotatably onto the base 1, and rollers 31 that are pivotally supported on the rotor 3 and rotate while pressing and crushing the tube 9.
The tube holder 2 includes, as shown in
As shown in
A depth f1 of the tube holding groove 21 in the concave portion 22 is formed to be, as shown in
Accordingly, when the tube 9 is bent into a U shape and inserted into the tube holding groove 21, by a frictional resistance caused by a restoring elastic force of the tube 9, the tube 9 is reliably held inside the tube holding groove 21 in the contact portion 25. In addition, the tube 9 inside the tube holding groove 21 in the concave portion 22 can be excellently pressed and crushed by the rollers 31.
As shown in
The tube 9 is a very thin tube with, for example, an outer diameter of approximately 2 mm and an inner diameter of approximately 0.5 mm, and is formed of a flexible material with flexibility such as thermoplastic elastomer and silicone rubber, and generates an excellent restoring elastic force when being bent into a U shape to form an arc-shaped flow path and when being pressed and crushed by the rollers 31. The tube holding groove 21 is formed into the U shape as shown in
The tube holder 2 is removably located on the base 1, and between the upper surface of the base 1 and the tube holder 2, an attaching retainer 4 to retain the tube holder 2 is provided. The attaching retainer 4 includes magnet-made retaining shafts 4a attached to either one of the tube holder 2 and the base 1, and retaining holes 4b provided in the other one of the tube holder 2 and the base 1. In the present embodiment, the retaining shafts 4a are provided to project on the surface of the base 1, the retaining holes 4b are formed in a lower surface of the tube holder 2 so as to allow the retaining shafts 4 to be closely inserted, and as shown in
As shown in
Further, as shown in
This positioning convex portion 23 comes into contact with the upper surface of the rotor 3 when the tube holder 2 is attached to a position to cover the rotor 3 on the base 1, and accordingly, the attaching position of the tube holder 2 to the base 1 (a position with respect to the rotor 3) is accurately set.
The rotor 3 is fitted onto a rotary shaft 6 provided vertically in the base 1, movably in the axial direction (vertical direction in
The base 1 includes a case 10 formed into a substantially rectangular parallelepiped shape, and the upper surface of the case 10 is covered by a plate-shaped cover 11. As shown in
As shown in
As shown in
The rotor 3 is configured to include a discoid substrate 32 in which openings 32a for three rollers 31 are formed, rollers 31 located inside the respective openings 32a, and a discoid cover 33 covered on the substrate 32 from above the rollers 31 and fixed. In the discoid substrate 32, three openings 32a are formed on the circumference at even intervals, that is, at intervals of approximately 120 degrees, and at a circumferential edge portion of the substrate 32, a flange 32b is formed.
The flange 32b is formed so that, as shown in
As shown in
Accordingly, by the cover 33, the spindles 31a of the rollers 31 are held rotatably between the cover 33 and the substrate 32. In this state, fixing screws 34 are inserted into the holes 33b to fasten and fix the cover 33 and the substrate 32. Accordingly, the three rollers 31 are held on the substrate 32 radially at intervals of approximately 120 degrees so as to be rotatable via the spindles 31a. The rotor 3 including such rollers 31 holds the respective rollers 31 rotatably and is pivotally supported in a state where, as shown in
When the rotor 3 is attached to the base 1, as shown in
Next, a usage form and operation of the peristaltic pump device configured as described above are described. This peristaltic pump device is used to supply, for example, a micro-fluid such as various reagents by flowing the micro-fluid through the flow path in the tube 9.
The tube 9 to be used is inserted into the tube holding groove 21 on the inside surface of the tube holder 2 as shown in
Accordingly, a frictional resistance is generated between the tube 9 and the tube holding groove 21, the tube 9 is held inside the tube holding groove 21, and is excellently held even in a state where the tube holder 2 is reversed. In particular, the tube 9 is held in an excellently pressed and crushed form by the tube holding groove 21 in the concave portion 22 of the tube holder 2, and excellent holding performance is secured inside the deep tube holding groove 21 in the contact portion 25.
As described above, only by removing the tube holder 2 and inserting the tube 9 into the tube holding groove 21, the tube 9 can be easily set at a proper position, and reliably held at a fixed position. When the tube 9 is replaced for each use, the tube can be very easily replaced, and the tube can be easily disposed of after use.
Next, the tube holder 2 in which the tube 9 is set is attached to a position covering the rotor 3 of the base 1. At this time, as shown in
When the tube holder 2 is attached to a fixed position on the base 1, as shown in
In this state, when the motor 7 is activated, the rotor 3 rotates and the rollers 31 freely rotate while pressing and crushing the tube 9. At this time, a load of pressing the tube 9 by the rollers 31 is applied parallel to the rotary shaft 6. Therefore, a rate at which a rotational load of the rotor 3 increases due to the pressing load of the rollers 31 is very small. Therefore, even with the motor 7 that is very small in size and has a low output, the rotor 3 can be rotary-driven and a liquid inside the tube 9 can be sent, so that the device is used for supply of a chemical, etc.
Then, after use, as shown in
As described above, in the peristaltic pump device configured as described above, a tube holding groove 21 is formed on a bonded surface of the tube holder 2 on the base 1 side, and the depth f1 (
Number | Date | Country | Kind |
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2017-217712 | Nov 2017 | JP | national |