Tubes and pumps using them
The tube design with anisotropic inner and outer layers addresses durability issues in peristaltic pumps by optimizing tensile modulus ratios to manage deformations, enhancing durability and reliability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- JUNKOSHA
- Filing Date
- 2022-07-27
- Publication Date
- 2026-04-22
AI Technical Summary
Existing tubes used in peristaltic pumps lack sufficient durability under conditions of repeated stress and deformation, such as bending, sliding, and twisting, which are required for modern manufacturing environments.
A tube design comprising an inner and outer layer with different properties, where the inner layer has a tensile modulus anisotropy with a ratio greater than 1 in the first direction to the circumferential direction, and the outer layer has a lower tensile modulus ratio, optimized to suppress wave-like deformations and enhance durability.
The tube design significantly improves durability by effectively managing macroscopic and microscopic deformations, ensuring reliable fluid transport under harsh conditions while maintaining mechanical integrity.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a tube and a pump used for fluid transportation. In particular, the present invention relates to a tube useful for controlling the flow of fluid in a tube by deformation of the tube, such as a tube used in a peristaltic device such as a peristaltic pump, and a pump provided with such a tube.
Background Art
[0002] In recent years, tubes with increasingly excellent durability have been demanded not only in chemical industrial plants and semiconductor manufacturing equipment but also in pharmaceutical and food factories. Most of the conventional tubes were used in a stationary state, but in order to suppress the manufacturing space and increase the productivity within a unit site area, the manufacturing equipment has moved complicatedly, and as a result, the cases where the tube itself is deformed and used in various ways have increased. In such cases, the tube is required to have mechanical resistance to repeated stress caused by bending, sliding, or twisting.
[0003] As another aspect, a peristaltic device such as a peristaltic pump can be exemplified. After the tube is radially pressed and deformed by a roller in the peristaltic device, the deformation position moves by the movement of the roller, thereby transporting a fluid (for example, a liquid). This peristaltic pump can simplify the structure of the flow path compared to other pumps and has less risk of contaminating the fluid. Therefore, it is often used in fields such as food and medical devices, and in recent years, it has also been used for feeding photoresist during semiconductor manufacturing.
[0004] As a tube used for this type of peristaltic pump, Prior Art Document 1 (Special Table 2002-502735) discloses a composite material including a plurality of stretched and expanded polytetrafluoroethylene layers. The polytetrafluoroethylene layer is impregnated with at least one kind of elastomer, and the impregnated polytetrafluoroethylene layers are adhered together by an elastomer layer.
[0005] Prior art document 2 (International Publication Number WO2017 / 094807) discloses a tube composed of an inner layer made of porous fluororesin impregnated with a fluorine-based elastomer, an intermediate layer made of a fluorine-based elastomer laminated on the inner layer, and an outer layer laminated on the intermediate layer. By using a fluorine-based elastomer with high resistance to organic solvents as the inner layer and a silicone rubber with excellent shape recovery properties as the outer layer, a tube is realized that can maintain its shape recovery for a long period of time even when organic solvents are pumped through it. [Overview of the project] [Problems that the invention aims to solve]
[0006] While the tubes described above offer higher durability compared to tubes with a more conventional configuration, there is a demand for even greater durability. [Means for solving the problem]
[0007] To solve the above problems, for example, a tube having the following configuration is provided. The first tube is a tube used in a pump that transports fluid by peristalsis, and the tube comprises a flow path that serves as a transport path for the fluid and extends in a first direction, and a main body formed around the flow path, and the main body includes a first layer formed on the flow path and a second layer formed on the first layer having different properties from the first layer, and the elastic modulus ratio R1 of the first layer is greater than 1 when the elastic modulus ratio R1 of the first layer is the tensile modulus of the first layer in the first direction / the tensile modulus of the first layer in the circumferential direction.
[0008] The second tube is a tube used in a pump that transports fluid by peristalsis, and the tube comprises a flow path that serves as a transport path for the fluid and extends in a first direction, and a main body formed around the flow path, the main body including a first layer formed on the flow path and a second layer formed on the first layer having different properties from the first layer, the first layer including a plurality of thread-like fibrous materials, and the plurality of thread-like fibrous materials of the first layer are preferentially oriented in the direction along the first direction compared to the direction along the circumferential direction. [Brief explanation of the drawing]
[0009] [Figure 1] This is a diagram illustrating the structure of the tube in the first embodiment. [Figure 2] This figure shows a peristaltic pump equipped with a tube according to the first embodiment. [Figure 3] This figure illustrates the shape change in a cross-sectional view of the tube in the peristaltic pump shown in Figure 2. [Figure 4] This diagram illustrates the microscopic phenomena that occur in the tubing during pump operation. [Figure 5] Figure 1 shows enlarged views of regions RG1 and RG2. [Figure 6] This is a schematic diagram showing an example of the substrate configuration of the tube according to the first embodiment. [Figure 7] This diagram illustrates an example of confirming orientation by observing the substrate. [Figure 8] This is a flowchart showing the method for manufacturing a tube according to the first embodiment. [Figure 9] This diagram illustrates an example of a method for measuring the tensile modulus of the layers that make up a tube. [Modes for carrying out the invention]
[0010] The embodiments of the tube according to the present invention will be described below. Note that the embodiments described below are not intended to limit the invention as defined in the claims, and not all combinations of features described in the embodiments are necessarily essential to the solution of the invention. Furthermore, each embodiment in each example may be freely combined as long as the technical significance of the present invention is not lost.
[0011] The first embodiment will be described using Figures 1(a) and 1(b). Figure 1(a) is a diagram illustrating the cross-sectional structure of the tube 20 in the first embodiment in a plane perpendicular to the longitudinal direction of the tube, and Figure 1(b) is a diagram illustrating the cross-sectional structure of the tube 20 in a plane parallel to the longitudinal direction of the tube at the position indicated by XX' in Figure 1(a). As shown in Figure 1(a), the tube 20 has a flow path CH inside it, and the main body BD of the tube 20 is formed so as to surround the flow path CH. The main body BD has an inner circumferential surface 20a that defines the flow path CH and an outer circumferential surface 20b which is the surface opposite to the inner circumferential surface. As shown in Figure 1(b), the flow path CH is formed continuously along the longitudinal direction of the tube 20, that is, along the left-right direction in the plane of the paper in Figure 1(b). The flow path CH serves as a fluid transport path that allows fluid taken in from one end of the tube 20 to move to the other end of the tube. The main body BD comprises an inner layer (first layer) BL1 formed on the flow path CH and an outer layer (second layer) BL2 formed to surround the outer periphery of the inner layer BL1. In this embodiment, the inner layer BL1 includes an inner circumferential surface 20a, on which the inner layer BL1 is in contact with the fluid to be transported. On the surface 20c of the inner layer BL1 opposite to the inner circumferential surface 20a, the outer layer BL2 is formed so as to surround the inner layer BL1. The inner layer BL1 and the outer layer BL2 are stacked in the radial direction of the tube, and their relative positions are fixed by, for example, bonding or welding.
[0012] Here, we will use Figure 1(a) to explain the directions used in this specification. The radial direction is the direction represented as a virtual straight line (not shown) passing through the center CG of the channel CH on a plane perpendicular to the direction of extension of the channel CH (hereinafter, the direction of extension of the channel CH will be referred to as the first direction) of the channel CH. If the cross-sectional shape of the channel is not circular, the centroid of the cross-sectional shape of the channel may be considered as the center CG. The magnitude in the radial direction is the distance between two points on this virtual straight line. For example, the thickness of a certain layer inside a tube is defined as the distance between two intersection points where one interface of that layer and the aforementioned virtual straight line intersect. Radial bending is a form of change in the shape of the tube on a plane perpendicular to the first direction. For example, deformations such that the curvature of each layer of the tube shown in Figure 1(a) or the distance from any point on each layer to the center CG changes partially (typically a deformation in which a circular tube cross-section is compressed into an elliptical shape) include radial bending of the inner layer BL1 and the outer layer BL2.
[0013] In contrast, for example, the direction in which the inner layer BL1 and / or outer layer BL2 extend on a plane perpendicular to the first direction, or the direction along the inner circumferential surface 20a and / or outer circumferential surface 20b, is called the circumferential direction. For example, the expansion of the tube due to an increase in the pressure of the internal fluid is accompanied by an expansion of the cross-sectional area of the flow path CH on a plane perpendicular to the first direction, and such deformation can be considered to be accompanied by the stretching of the inner layer BL1 and outer layer BL2 in the circumferential direction.
[0014] In this embodiment, the inner layer BL1 and the outer layer BL2 of the tube 20 have different properties. That is, the inner layer BL1 and the outer layer BL2 are configured to have different physical and / or chemical properties. Examples of these properties include mechanical properties, chemical properties, optical properties, and thermal properties. By having differences in the constituent materials and / or structure between layers, and by allowing each of the inner and outer layers to exhibit the properties required for it, the performance and quality required for the tube can be achieved. For example, by making the material constituting the inner layer chemically and thermally more stable than the material constituting the outer layer, it is possible to suppress deterioration of the tube due to attack on the inner layer by the fluid to be transported or contamination of the fluid to be transported due to elution of components derived from the material of the inner layer. By configuring the material of the outer layer to have a wider elastic range than the material of the inner layer, it is possible to obtain a tube that is less likely to experience fatigue and associated breakage even in an environment where repeated deformation occurs over a long period. By applying a material for the outer layer that is more wear-resistant than the material of the inner layer, it is also possible to suppress wear deterioration due to mechanical contact with the pump body. Alternatively, by applying a material with high light transmittance in the visible light region to a relatively thick layer, the visibility of the fluid transport state can be improved, or by using a material with high ultraviolet transmittance, the ultraviolet sterilization effect inside the tube can be improved. Thus, by appropriately combining two or more layers with different characteristics, it becomes possible to realize a tube having performance that is difficult to achieve with only a single layer or repeated structures of a specific structure.
[0015] Note that the above differences in characteristics refer to differences in characteristics caused by the application of materials having essentially different characteristics or differences in characteristics caused by intentionally provided structural differences, etc. Typically, it refers to a state where there is a significant difference between the acquired value in the inner layer and the acquired value in the outer layer when a certain characteristic value is obtained for each of the inner layer and the outer layer.
[0016] The inner layer BL1 of the tube 20 of the present embodiment has a specific anisotropy in the tensile elastic modulus. That is, when the elastic modulus ratio R is represented by the following formula (1), the elastic modulus ratio R1 of the inner layer is characterized by being greater than 1. Elastic modulus ratio R = Tensile elastic modulus in the first direction / Tensile elastic modulus in the circumferential direction ··· Formula (1) That is, the fact that the elastic modulus ratio R1 of the inner layer is greater than 1 can be paraphrased as the tensile elastic modulus of the inner layer BL1 in the first direction being greater than 1 times the tensile elastic modulus of the inner layer BL1 in the circumferential direction.
[0017] As described above, the tube of this embodiment includes an inner layer and an outer layer with different characteristics, and the inner layer has a characteristic configuration in which the tensile modulus in the first direction is greater than the tensile modulus in the circumferential direction. Thereby, a tube with significantly improved durability is provided even under extremely harsh use environments such as peristaltic pumps.
[0018] Using FIGS. 2 and 3, the peristaltic pump using the tube 20 of this embodiment and its operation will be described. FIG. 2 shows an outline of the mechanism of the peristaltic pump to which the tube 20 of this embodiment is applied. The peristaltic pump includes a case CB, and the tube 20 is arranged along the inner surface of the case CB. The peristaltic pump further includes a rotating part that rotates by driving a rotating shaft RA. The rotating part includes a support part AM fixed to the rotating shaft RA and shown by a broken line, and one or a plurality of heads HD formed at the ends of the support part AM. When the rotating part rotates in the direction of the arrow shown by the solid line in the figure, the head HD moves along the inner surface of the case CB. The head HD is preferably configured as a rotatable roller from the viewpoint of reducing damage to the tube surface. The size of the gap between the head HD and the inner surface of the case CB is set to be smaller than twice the wall thickness of the main body part of the tube 20. At the position where the head HD and the case CB face each other, the tube 20 is sandwiched between the head HD and the case CB and crushed. As a result, an occlusion region where the area of the flow path CH becomes substantially zero is formed at the same position of the tube 20.
[0019] As the rotating part rotates, the head HD moves, and accordingly the occlusion region also moves, whereby the fluid in the tube is transported. In the example shown in this figure, the rotating part rotates counterclockwise on the paper surface, and thereby the fluid in the flow path of the tube is transported in the direction represented by the white arrow. Although not shown, one end of the tube is connected to a supply source of the fluid to be transported (for example, a liquid storage tank or a pipe connected thereto), and the other end is connected to a supply destination of the fluid to be transported (for example, a treatment tank or a pipe connected thereto).
[0020] Figures 3(a) and 3(b) show the change in the cross-sectional shape of tube 20 on a plane perpendicular to the first direction at a certain position inside the peristaltic pump. As shown in Figure 3(a), before the head HD reaches that position, i.e., before pressure from the head HD is applied to tube 20, tube 20 has a roughly circular cross-sectional shape. Tube 20 includes an inner layer BL1 and an outer layer BL2, and inside the inner layer BL1 is a large internal space which becomes the flow path CH. Subsequently, when the head HD reaches that position, as shown in Figure 3(b), tube 20 is squeezed and compressed between the case CB and the head HD, forming a closed region. Furthermore, when the head HD moves away from this position, tube 20 returns to the shape shown in Figure 3(a) due to its own shape-restoring force. Such large radial deformations repeatedly occur in tube 20 inside the case CB of an operating peristaltic pump. Therefore, the tube 20 is required to have flexibility (shape recovery) that prevents irreversible deformation even under such large deformations, shape recovery force that quickly returns it to its original shape when the external force is removed, and durability that prevents it from breaking even when it is repeatedly subjected to back-and-forth motion between the crushed shape and the original shape over a long period of time.
[0021] However, these characteristics include some trade-offs; for example, flexible materials are easier to ensure durability but are less likely to regain their shape, making it difficult to achieve overall superior performance as a tube simply by selecting materials. In working to improve the durability of a multilayer tube that achieves the desired performance, the inventors of this invention investigated the external stress applied to the tube by pump operation and the resulting deformation of the tube. As a result, they classified the macroscopic repeated deformation that occurs in the tube into the following three main types. The first is deformation resulting from radial bending of the tube, which is recognized as reciprocating between the shapes shown in Figure 3(a) and Figure 3(b). The second is expansion and contraction of the tube in the longitudinal direction (i.e., the first direction) that occurs as the head HD moves. The third is expansion of the flow path volume due to the pressure of the fluid inside the tube and contraction of the flow path volume after the pressure is released, which includes expansion and contraction in the circumferential direction of each layer constituting the tube, in addition to expansion and contraction in the longitudinal direction of the tube. Based on the above, the following is considered preferable for tubes applied to peristaltic pumps. First, for radial deformation of the tube, which is considered to have the greatest deformation and is essential for fluid transport operation, it is necessary to secure an elastic range of a certain width or larger. On the other hand, for longitudinal and circumferential expansion and contraction of the tube, which are not required for fluid transport operation, it is preferable to secure an elastic modulus that can suppress the amount of deformation to a certain level or less.
[0022] In addition to examining these macroscopic deformations, the inventors also examined microscopic deformations. In particular, they focused on the edges of the closure surface, where large localized internal stresses are thought to occur, and attempted to understand its microscopic behavior during operation. Here, the edges of the closure surface refer to the edges of the contact surface formed when the opposing inner surfaces come into contact with each other when the tube is crushed and closed between the head HD and the case CB. In a cross-sectional view, the edges of the closure surface correspond to the position indicated by the symbol RGE in Figure 3(b), for example. The microscopic deformation examination included preparing a clamp jig to reproduce the tube deformation inside the pump on a microscope observation stage, and microscopic observation of the tube deformation reproduced by the jig. As a result of this examination, two phenomena that may affect the durability and reliability of the tube were found.
[0023] Figures 4(a) and 4(b) illustrate the microscopic deformation that occurs in the tube during pump operation. These figures show enlarged views of the vicinity of the end of the closure surface in a cross section perpendicular to the first direction. The inventors of this application have found that, as shown in Figure 4(a), when a tube is compressed in a peristaltic pump, a wave-like shape WS occurs on the inner surface of the inner layer at the end of the closure surface. Figure 4(a) shows the state just before complete closure for clarity, but this wave-like shape also occurs when the tube is completely closed. Since multiple minute curves with very small curvatures occur near the peaks of each wave in the wave-like shape, it can be inferred that a large localized stress is occurring there. Failure analysis of tubes in the early stages of failure during life tests also confirmed the occurrence of cracks growing from the inner surface to the outer surface near the end of the closure surface, suggesting that this wave-like shape is strongly related to the formation of the crack initiation point.
[0024] Observing tubes in which the inner and outer layers are constructed as multilayer structures with multiple substrates stacked on top of each other was useful in investigating the details of the undulation shape. In Figure 4(a), the tube includes an inner layer BLa and an outer layer BLb. Multiple solid lines extending circumferentially within each layer indicate the individual substrates that are stacked. Microscopic observation of the shape of these substrates confirmed that the undulation shape WS is not a phenomenon limited to the innermost surface (the surface in contact with the fluid), but extends in the thickness direction of the tube body, with the amplitude gradually decreasing as it moves towards the outer circumference. Furthermore, the undulation shape generally converges within the inner layer BLa, and no clear undulation shape extending to the outer layer BLb was found.
[0025] The inventors of this invention believe that the wavy shape is generated in the following way: When the tube is compressed between the head HD and the case CB, the inner layer BLa, surrounded by the outer layer BLb, has excess length in the circumferential direction. This excess length is absorbed by deformation that reduces the circumferential length, i.e., circumferential contraction. As the compression of the tube progresses, the excess length increases further, and eventually it can no longer be absorbed by circumferential contraction alone. As a result, the inner layer BLa, especially the layer closer to the inner circumferential surface where the excess length is greatest, forms a more pronounced wavy shape to absorb the excess length.
[0026] To suppress the occurrence of wave-like shapes and / or to reduce internal stress and material fatigue caused by wave-like shapes, it is considered beneficial to use a material or structure with a low modulus of elasticity and a wide elastic range for the inner layer. However, simply replacing it with such a material will result in the aforementioned macroscopic deformation becoming larger. When the elastic modulus of the tube decreases, for example, the amount of expansion and contraction of the tube in the longitudinal direction due to the movement of the head HD increases. Alternatively, the amount of deformation of the tube due to pressure fluctuations of the transported fluid becomes larger. Even if the wave-like shape is reduced, the increase in deformation due to other mechanisms may worsen the durability of the tube.
[0027] In contrast, the tube 20 of this embodiment includes an inner layer and an outer layer, and the inner layer has a characteristic configuration in which the tensile modulus in the first direction is greater than the tensile modulus in the circumferential direction. In other words, the inner layer where the wavy shape is most pronounced has anisotropy in its tensile modulus, and this anisotropy ensures that the tensile modulus in the first direction, which has the effect of suppressing expansion and contraction in the longitudinal direction of the tube, is relatively reduced, while the tensile modulus in the circumferential direction, which is expected to have an effect of suppressing the occurrence of wavy shapes, is reduced. With this configuration, it is thought that the wavy shape of the inner layer of the tube can be effectively suppressed while suppressing the influence on other mechanical properties of the tube. As a result, a tube with significantly improved durability is provided, even under extremely harsh operating environments such as peristaltic pumps.
[0028] The modulus ratio R1 of the inner layer should be greater than 1, and more preferably greater than 1.2. In this way, even if there are large fluctuations in the anisotropy of the tensile modulus of the inner layer due to variations during manufacturing, differences in usage environment, or changes over time during use, the above effects can be obtained stably. It is particularly preferable that the modulus ratio R1 of the inner layer is greater than 2. Often, to obtain the desired performance of a tube, it is not possible to select the most advantageous material or configuration for the inner or outer layer in terms of durability. Even in such cases, by setting the modulus ratio R1 of the inner layer to 2 or higher, a tube with sufficiently improved durability can be obtained.
[0029] In this embodiment, the elastic modulus ratio R2 of the outer layer of the tube 20, that is, the value obtained by dividing the tensile modulus of the outer layer in the first direction by the tensile modulus of the outer layer in the circumferential direction, can be made smaller than the elastic modulus ratio R1 of the inner layer. If the only goal is to counteract the corrugation shape, increasing the elastic modulus ratio R2 of the outer layer, similar to the elastic modulus ratio R1 of the inner layer, is expected to be effective. However, since the corrugation shape does not easily extend to the outer layer in the first place, the direct effect on the corrugation shape cannot be obtained as much as with the elastic modulus ratio R1 of the inner layer. On the other hand, if the circumferential tensile modulus of the entire tube decreases excessively, there is a risk that the circumferential expansion and contraction of the tube due to pressure fluctuations of the internal fluid will increase. In contrast, by configuring the elastic modulus ratio R2 of the outer layer to be smaller than the elastic modulus ratio R1 of the inner layer, it is possible to obtain a tube in which such an increase in risk is suppressed.
[0030] Furthermore, in tubes where the circumferential tensile modulus of the outer layer BLb is excessively small, other problems may arise. As shown in Figure 4(b), microscopic observation revealed that tubes with a circumferential tensile modulus of the outer layer BLb below a certain level tended to develop gaps at the closure end even at the same gap compared to tubes without such a gap. Here, the gap is the distance between the head HD and the case CB. When such gaps remain and the closure is incomplete, it becomes difficult to properly transport fluids, and the required transport volume cannot be secured. It is possible to create a closed state again by reducing the size of the gap between the head HD and the case CB and increasing the pressure applied to the tube, but this method may worsen durability by increasing the amount of deformation of the tube during use and by applying a greater pressure than the original state, including to areas other than the end where the gap occurs. This phenomenon is presumed to be caused by the fact that when the tube is compressed as shown in Figure 4(b), the outer layer BL2 on the outer circumference of the tube is greatly stretched, and the thickness of that region decreases. As a result, the pressure applied from the head HD and case CB is less likely to be transmitted to the inner layer BL1, making insufficient blockage more likely.
[0031] In contrast, the modulus ratio R2 of the outer layer can be less than 1. That is, the tensile modulus of the outer layer BL2 in the circumferential direction may be greater than 1 times the tensile modulus of the outer layer BL2 in the first direction. The risk of wavy shape formation in the outer layer BL2 is inherently smaller than that of the inner layer BL1. Therefore, by actively suppressing circumferential elongation in the outer layer, as opposed to the inner layer, it is possible to improve the occlusion when compressed. As a result, a tube that achieves both performance and durability can be realized.
[0032] In particular, when the elastic modulus ratio R1 of the inner layer is greater than 1, it is preferable to make the elastic modulus ratio R2 of the outer layer less than 1. In configurations where the elastic modulus ratio R1 of the inner layer is greater than 1, there is a risk that the mechanical properties of the inner layer alone may not be sufficient to suppress circumferential expansion and contraction, especially when there are large fluctuations in fluid pressure. Even in such cases, if an outer layer with an elastic modulus ratio R2 less than 1 is provided, the outer layer can suppress the circumferential expansion and contraction of the entire tube. For similar reasons, it is even more preferable to make the modulus ratio R2 of the outer layer less than 1 when the modulus ratio R1 of the inner layer is greater than 1.2, and it is particularly preferable to make the modulus ratio R2 of the outer layer less than 1 when the modulus ratio R1 of the inner layer is greater than 2. Furthermore, in each of the above cases, it is even more preferable that the elastic modulus ratio R2 of the outer layer be less than 0.9, and particularly preferable that it be less than 0.8. By doing so, a stable effect can be obtained even if the elastic modulus ratio R2 includes variations during manufacturing and fluctuations under the usage environment.
[0033] One example of a method for providing the inner layer BL1 and / or outer layer BL2 with tensile elastic anisotropy in the first direction and the circumferential direction is to control the orientation of the materials constituting the layers. For example, by increasing the draw ratio during the extrusion of a sheet-like member and further stretching the extruded sheet-like member once or multiple times in the same direction as during extrusion, a thin sheet-like member with enhanced anisotropy can be obtained. By laminating the sheet-like members obtained in this way while winding them in a predetermined direction relative to the first direction of the tube, a predetermined anisotropy can be made to any layer of the tube. Alternatively, the inner layer BL1 and / or the outer layer BL2 may be constructed as a composite of two or more materials with different elastic moduli, and anisotropy may be expressed by controlling the shape and arrangement of each material. For example, reinforcing fibers with a higher elastic modulus than the matrix resin phase may be dispersed in the layer. By giving such reinforcing fibers a desired orientation, a layer with strong and stable anisotropy can be constructed. As will be described in detail later, it is particularly preferable that the inner layer and / or the outer layer include a sheet-like substrate extending in the same direction as each layer, and that this substrate has anisotropy. The anisotropy of the layer obtained in this way is even stronger, more stable, and has excellent uniformity.
[0034] Using Figure 5, a more detailed example of the structure of the tube 20 in the first embodiment will be described. The first region RG1 is a part of the inner layer BL1. Here, the region shown by the rectangular dashed line in the inner layer BL1 in Figure 1(a) is illustrated. In this embodiment, the first region RG1 includes the first base material layer PMB1. The first base material layers PMB1 are fixed to each other via the first resin layer IMR1. The first base material layers PMB1 and the first resin layer IMR1 extend in the circumferential direction of the tube 20. In this embodiment, the first region RG1 includes a plurality of first base material layers and a plurality of first resin layers, and is configured as a laminate in which these base material layers and resin layers are alternately stacked. Preferably, the first base material layer is made of a base material whose elastic modulus is greater than that of the first resin that constitutes the first resin layer. When a tube body is applied to a pump, a large pressure may be applied from the flow path toward the outer circumference due to the fluid being transported. If the tube diameter expands due to this pressure, there is a risk that the quantitative accuracy of the transported amount will deteriorate and the lifespan will be reduced. The inner layer has a base material that extends circumferentially inside, which suppresses expansion of the tube diameter even in the presence of high internal pressure.
[0035] The second region RG2 is a part of the outer layer BL2. Here, the region shown by the rectangular dashed line within the outer layer BL2 in Figure 1(a) is illustrated. In this embodiment, the second region RG2 includes a second base material layer PMB2. The second base material layers PMB2 are fixed to each other via a second resin layer IMR2. The second base material layers PMB2 and the second resin layer IMR2 extend in the circumferential direction of the tube 20. In this embodiment, the second region RG2 includes a plurality of second base material layers and a plurality of second resin layers, and is configured as a laminate in which the base material layers and resin layers are alternately stacked. For the same reasons as for the first region RG1, it is preferable that the second base material layer is made of a base material with a higher elastic modulus than the second resin constituting the second resin layer.
[0036] In this embodiment, a porous substrate having numerous micropores can be used as the substrate constituting the first substrate layer. Preferably, the first resin is embedded in these micropores. Similarly, a porous substrate having numerous micropores can be used as the substrate constituting the second substrate layer. Preferably, the second resin is embedded in these micropores. In such a configuration, not only can the area of the bonding interface between the porous substrate and the resin be increased, but a complex interwoven structure can be created, resulting in high interlayer adhesion strength. Furthermore, by setting the micropore density to 5 × 10⁴ pores / mm² or more in a plan view of the cross-section or surface of the porous substrate, stress concentration in specific areas can be suppressed even when large internal stresses are generated due to deformation.
[0037] Figure 6 is a schematic diagram showing an example of the formation state of the substrate constituting the first substrate layer PMB1 within the inner layer BL1 in a cross section perpendicular to the first direction. In this figure, the first resin IMR1 and the outer layer BL2 are not shown. The base material constituting the first base material layer PMB1 of this tube has a spiral shape in cross-section, as shown in the figure. Such a configuration can be easily obtained by winding a single base material multiple times. The base material has a starting point RS and an ending point RE at both ends. When the base material is wound from the flow channel CH side, the starting point RS corresponds to the beginning of the winding process, and the ending point RE corresponds to the end of the winding process. In cross-sectional view, the base material revolves around the center CG while gradually increasing its radius from the starting point RS to the ending point RE, and is formed as a seamless, integrated piece from the starting point RS to the ending point RE.
[0038] In this configuration, overlapping regions (OLR) occur. An overlapping region is a region with more substrate layers than other regions. For example, the inner layer shown in Figure 6 includes an overlapping region composed of five substrate layers and other regions composed of four substrate layers. Here, in this cross-sectional view, the imaginary straight line passing through the center CG of the tube's flow path and the starting point RS is defined as straight line LN1, and the imaginary straight line passing through the center CG of the tube's flow path and the ending point RE is defined as straight line LN2. Furthermore, the size of the angle θ between straight line LN1 and straight line LN2 that is opposite the overlapping region OLR is defined as the narrow angle θ (degrees). Since the number of turns and other factors are not taken into consideration, this narrow angle θ is specified in the range of 0 degrees or more and less than 360 degrees. This narrow angle θ may also be defined as the size of the central angle of the sector formed by the overlapping region and the center CG of the flow path. The narrow angle θ of the first base material layer is preferably 270 degrees or less, more preferably 60 degrees or less, and particularly preferably 30 degrees or less.
[0039] The above configuration has been described based on the first base material layer of the inner layer, but a similar configuration can be applied to the outer layer. That is, the base material constituting the second base material layer PMB2 of the tube has a spiral shape in cross-section, similar to the first base material layer shown in Figure 6, and has a starting point RS and an ending point RE of the second base material layer at both ends. The base material is formed as a single, seamless piece from the starting point RS to the ending point RE, and the outer layer has an overlapping region OLR of the second base material layer, which has more base material than other regions. The overlapping region of the first base material layer and the overlapping region of the second base material layer should be positioned so that they do not overlap in the circumferential direction. By using one or more of these configurations, the uniformity of the wall thickness and mechanical properties of the tube body can be improved.
[0040] As the first embodiment, a configuration with two layers has been described, but the invention is not limited to this. For example, a third layer may be formed, which is a chemically stable wetted layer located in contact with the fluid inside the inner layer, or an adhesive layer may be formed between the inner and outer layers, or a surface protection layer may be formed on the outer surface of the outer layer. These wetted layers, adhesive layers, and / or surface protection layers (hereinafter referred to as the third layer, and the illustration of the third layer is omitted) may be composed of a composite material consisting of a porous substrate layer and a resin layer, but they may not include a porous substrate layer as long as they have the properties appropriate to the purpose of each auxiliary layer. For example, the shape recovery, shape recovery force, or deformation suppression properties such as expansion and contraction of the third layer itself may be inferior to those of the inner layer BL1 and outer layer BL2. Even in such a case, the desired mechanical properties of the tube as a whole can be maintained by making the thickness (i.e., radial size) of the third layer smaller than that of the inner and outer layers. For example, the inner circumferential surface of the inner layer BL1 may further include a wetted layer that has chemical stability equal to or greater than that of the first resin layer IMR1 of the inner layer BL1, is thinner than the inner layer BL1, and does not contain a porous substrate internally.
[0041] The radial flexural modulus of the outer layer BL2 may be smaller than that of the inner layer BL1. This configuration improves the overall shape recovery and durability of the tube, even when a material with a high modulus of elasticity is applied to the inner layer BL1 due to chemical property requirements. The radial size of the region consisting of the second base material layer and the second resin layer may be larger than the radial size of the region consisting of the first base material layer and the first resin layer. Even when a layer with high flexibility and a low modulus of elasticity is formed thickly, the increase in internal stress during deformation can be relatively suppressed. The average distance between substrates in the region consisting of the second substrate layer and the second resin layer may be greater than the average distance between substrates in the region consisting of the first substrate layer and the first resin layer. Here, the distance between substrates is the radial distance between the thickness centers of each substrate when adjacent substrates are stacked vertically. The average distance between substrates is the average value of the distances between each substrate in a laminate containing four or more substrate layers.
[0042] (base material) The substrates constituting the first and / or second substrate layers are made of, for example, resin and have high flexibility. Preferably, a plurality of micropores are formed on the surface and / or from the surface to the interior. The resin constituting the resin layer formed between the substrate layers penetrates into these micropores, thereby ensuring adhesive strength that can withstand the large internal stresses during severe deformation, such as that experienced by tubes applied to peristaltic pumps. The average diameter of the micropores in a plan view is preferably 1 mm or less, and more preferably 1 μm (micrometer) or less. The micropores only need to be formed on the substrate surface, but it is preferable that they have a configuration that communicates in the depth direction. Examples of such substrates include woven and nonwoven fabrics made from polymer fibers. A porous structure may also be created by foaming and stretching a substrate formed in sheet form. The formation of micropores by foaming and stretching is preferable because it easily provides extremely small diameters and high porosity. The constituent resins are not limited to any particular type, but preferably fluororesins, with specific examples including polytetrafluoroethylene (PTFE), tetrafluoroethylene-hexafluoropropylene copolymer resin (FEP), tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer resin (PFA), tetrafluoroethylene-hexafluoropropylene-perfluoroalkyl vinyl ether copolymer resin (EPE), ethylene-tetrafluoroethylene copolymer resin (ETFE), tetrafluoroethylene-hexafluoropropylene-vinylidene fluoride copolymer resin (THV), trifluoroethylene chloride resin (PCTFE), ethylene-trifluoroethylene chloride copolymer resin (ECTFE), vinylidene fluoride resin (PVdF), and vinyl fluoride resin (PVF). Furthermore, from the standpoint of mechanical properties and chemical resistance, polyester resins such as polyethylene terephthalate (PET) and polyethylene naphthalate (PEN), polyarylate resins such as polyetheretherketone (PEEK), high molecular weight polyethylene and polyaramid, and even polyimide resins are also preferred embodiments.
[0043] When the inner layer BL1 or outer layer BL2 contains such a substrate, the anisotropy of the tensile modulus of these layers can be easily controlled by the anisotropy of the contained substrate. For example, if the substrate is a woven fabric, an anisotropic substrate layer can be obtained by creating a difference of 1 or more in density, number of threads, modulus of elasticity, or strength between the warp and weft threads, or by applying a known weaving method that provides anisotropy in elasticity. The anisotropy of the substrate is also reflected in the resin layer-forming substrate obtained by impregnating it with a low-elasticity resin. By forming a tube using such a resin layer-forming substrate, a tube with tensile elasticity anisotropy between the first direction and the circumferential direction can be obtained. Even when the base material is a nonwoven fabric or a sheet-shaped base material that has been foamed and stretched to create a porous structure, anisotropy can be expressed in the base material by giving it orientation. Similar to woven fabrics, by using a base material with such anisotropy, a resin layer-forming base material that reflects this anisotropy can be obtained. Then, by forming a tube using this resin layer-forming base material, a tube can be obtained that has anisotropy in tensile modulus between the first direction and the circumferential direction.
[0044] This specification also includes the following inventions: A tube used in a pump that transports fluid by peristalsis, the tube comprising a flow path that serves as a transport path for the fluid and extends in a first direction, and a main body formed around the flow path, the main body including a first layer formed on the flow path and a second layer formed on the first layer having different properties from the first layer, the first layer including a plurality of thread-like fibrous materials, the plurality of thread-like fibrous materials of the first layer being preferentially oriented in the direction along the first direction compared to the direction along the circumferential direction. In tubes with fibrous materials oriented in this manner, this configuration is thought to effectively suppress the undulation of the inner layer of the tube while minimizing the impact on other mechanical properties of the tube. As a result, a tube with significantly improved durability is provided, even under extremely harsh operating conditions such as those of peristaltic pumps.
[0045] In this embodiment, the base material includes a fibrous material made of a filamentous compound. The fibrous material is preferably flexible itself, and is preferably made of a material with a higher modulus of elasticity than the resin layer between the fibrous materials. Examples of fibrous materials include fibers that make up woven or nonwoven fabrics. Alternatively, the fibrous material may be a polymer resin fiber extending between the pores of a porous structure created by foaming and stretching a base material formed into a sheet. Alternatively, it may be a resin yarn made of a polymer material dispersed in a resin. Such a resin yarn is preferably one having an aspect ratio of 5 or more, and more preferably one having an aspect ratio of 10 or more. The fibrous materials may be spaced apart, but it is preferable that the majority of the fibers are entangled with each other in at least some areas, and it is even more preferable that the majority of the fibers are connected to each other in at least some areas.
[0046] The preferred orientation can be determined by observing the fibers constituting the substrate. For example, observation samples can be cut from each layer constituting the tube and observed using a laser microscope or scanning electron microscope (SEM) from a direction perpendicular to the extending surface of the substrate. Prior to observation, if necessary, the resin layer formed on the substrate may be selectively etched off while minimizing attack on the substrate to expose the fibrous material on the observation surface. If selective etching is difficult, the material may be exposed by physical methods such as microtome or polishing. If the substrate has higher heat resistance or oxidation resistance than the resin layer, the selective removal of the resin layer can be improved by heat treatment or a combination of heat treatment and the above chemical / physical methods. For example, in the case of a stretched PTFE sheet impregnated with silicone resin, the silicone resin can be selectively removed with concentrated sulfuric acid. The preferred orientation may also be quantified and determined by superimposing a virtual crosshair consisting of two XY axes onto the acquired microscope image and counting the number of intersections between each axis and each fiber. Figure 7 illustrates an example of orientation confirmation by substrate observation. Figure 7(a) shows an example where the substrate is a nonwoven fabric, and Figure 7(b) shows an example where the substrate is stretched porous PTFE. In Figure 7(b), for simplification, each fiber is represented as a single solid line. These solid lines include, for example, what are called nodes and fibrils. In Figures 7(a) and 7(b), virtual crosshairs consisting of a virtual line VCx in the X-axis direction and a virtual line VCy in the Y-axis direction are randomly placed on the microscope image containing the fibrous material FB. The virtual line in the X-axis direction is the perpendicular bisector of the virtual line in the Y-axis direction, and vice versa. The virtual lines in the axial and Y-axis directions are line segments of the same length that are perpendicular to each other. The length of the line segments can be determined according to the observation magnification and fiber density, and can be, for example, 10 μm to 1000 μm. Next, count the intersections between the fibrous material FB and the virtual line VCx in the X-axis direction, and the intersections between the fibrous material FB and the virtual line VCy in the Y-axis direction. For example, in the example shown in Figure 7(a), the number of intersections between the fibrous material FB and the virtual line in the X-axis direction is 7, and the number of intersections between the fibrous material FB and the virtual line in the Y-axis direction is 4. Similarly, in the example shown in Figure 7(b), the number of intersections between the fibrous material FB and the virtual line in the X-axis direction is 7, and the number of intersections between the fibrous material FB and the virtual line in the Y-axis direction is 5. For example, when the intersection ratio is defined as the number of intersections between the fibrous material and the imaginary line in the X-axis direction / the number of intersections between the fibrous material and the imaginary line in the Y-axis direction, if the intersection ratio is 1.2 or greater, it can be determined that the material is preferentially oriented in the Y-axis direction compared to the X-axis direction. Therefore, when an imaginary line in the Y-axis direction is placed on the observation image of the tube 20 so as to be parallel to the first direction of the tube, and an imaginary line in the X-axis direction is placed so as to be parallel to the circumferential direction of the tube, if the intersection ratio expressed above is 1.2 or greater, it can be considered that the fibrous material is preferentially oriented in the direction along the first direction compared to the direction along the circumferential direction. This intersection ratio is preferably 1.4 or higher, and particularly preferably 1.6 or higher. If there is a large variation depending on the observation position, observations may be continued until a total of 6 or more fields of view and a total of 120 or more intersections in both directions are reached, and the preferred orientation may be determined by the average value of the intersection ratio calculated for each field of view.
[0047] (resin) The resin material constituting the first and / or second resin layers formed between the substrate layers is preferably a thermosetting resin from the viewpoint of mechanical properties and chemical stability. The thermosetting resin referred to in this invention is a natural or synthetic resin that exhibits rubber elasticity, and is also called rubber or elastomer. This thermosetting resin exhibits rubber elasticity through a crosslinking reaction caused by heat treatment or electron beam treatment, etc. Alternatively, there are thermoplastic elastomers that exhibit this rubber elasticity by being block copolymers that have both crystalline and amorphous parts, and these can also be used in this invention. Thermosetting resins that are used in practical applications after curing have a network structure, restricting the free movement of molecular chains and resulting in stable physical properties. Therefore, thermosetting resins are suitable as the first and / or second resins. Generally, thermosetting resins and thermoplastic resins can be distinguished in the following ways. For example, the melting phenomenon observed in thermoplastic resins is not observed in thermosetting resins. This can be determined by the absence of endothermic and exothermic peaks associated with the melting phenomenon when measured with a differential scanning calorimeter (DSC). Alternatively, when measuring the dynamic modulus, thermoplastic resins show a gradual decrease in storage modulus with discontinuous changes associated with glass transition and melting phenomena as the temperature rises, whereas thermosetting resins do not show discontinuous changes associated with melting phenomena as the temperature rises and their storage modulus does not change much. In this embodiment, the first resin and / or the second resin may contain various additive components or be composed of composite materials. Even in this case, it is sufficient that they are thermally stable, and for example, those that satisfy the following requirements may be considered thermosetting resins. Specifically, thermosetting resins may be required to satisfy the condition that the value obtained by dividing the logarithm of the storage modulus at a base-10 operating temperature of 0°C (hereinafter referred to as SM0) by the logarithm of the storage modulus at a base-10 operating temperature of 200°C (hereinafter referred to as SM200) is 2 or less (i.e., Log10(SM0) / Log10(SM200)≦2). The storage modulus can be measured using a dynamic viscoelasticity measuring device (DMA), and reproducible results can be obtained by measuring while changing the temperature at a constant rate within the range of strain 1% to 5% and frequency 10kHz to 1MHz. Examples of such thermosetting resins include natural rubber, diene-based rubbers such as styrene-butadiene rubber (SBR), isoprene rubber (IR), butadiene rubber (BR), chloroprene rubber (CR), and acrylonitrile-butadiene rubber (NBR), as well as butyl rubber (isobutylene-isoprene rubber (IIR)), ethylene-propylene rubber (EPM), ethylene-propylene-diene rubber (EPDM), urethane resin, silicone rubber, fluororubber (FKM), and perfluorofluororubber (FFKM). From the standpoint of chemical resistance, chloroprene rubber (CR), acrylonitrile butadiene rubber (NBR), ethylene propylene diene rubber (EPDM), urethane resin, silicone rubber, fluororubber (FKM), and perfluorofluororubber (FFKM) are preferred. Furthermore, from the standpoint of workability during tube manufacturing, it is preferable that the material be liquid at or near room temperature, and urethane resin, silicone rubber, silicone rubber containing fluorine elements (fluorinated silicone rubber, polyfluoroether rubber), and fluororubber (FKM) are particularly preferred embodiments. Furthermore, thermoplastic elastomers can include olefin-based, styrene-based, polyester-based, polyamide-based, and polyurethane-based resins. Since these resins melt and liquefy at high temperatures, they can be impregnated into the aforementioned sheet-like substrates at that time. While there are no particular restrictions on the crosslinking system for thermosetting resins, it is desirable to avoid situations where relatively large molecules are generated and released from the resin by the crosslinking reaction, as this can result in residual voids in the tube or significant volume shrinkage. Preferred embodiments include addition reactions to double bonds using radical generators, addition reactions to double bonds by hydrosilylation, and addition reactions between isocyanates and hydroxyl or amino groups. Crosslinking aids or catalysts may also be added to promote the crosslinking reaction. In this specification, an elastomer can be defined, for example, as having a glass transition temperature (Tg) of 25°C or less.
[0048] In this invention, the sheet-like substrate described above is used to improve the mechanical properties of the tube, but the mechanical properties can also be improved by adding fillers to the thermosetting resin. Specifically, examples include granular materials such as natural silica, synthetic silica, carbon black, white carbon, magnesium carbonate, spherical glass beads, natural or synthetic mica, and talc. Depending on the purpose, these fillers can be added to the resin in an amount of about 0.1 to 30% by weight. Various colorants, pigments, dyes, and various stabilizers can also be added. Specifically, examples include oxidation stabilizers, UV absorbers, flame retardants, antibacterial agents, anti-aging agents, ozone degradation inhibitors, scorch inhibitors, rubber softeners, anti-bubble agents, antistatic agents, lubricants, and tackifiers. The amount of filler added may differ between the inner and outer layers. By making the amount of filler added to the inner layer, which is closer to the flow path than the outer layer, smaller than the amount of filler added to the second layer, contamination of the transported fluid can be suppressed.
[0049] Next, an example of a method for manufacturing a tube according to the embodiment will be described using Figure 8. In the following, as a preferred embodiment, a method for manufacturing a tube having both an inner layer and an outer layer made of a porous substrate will be mainly described. (Sheet-like substrate preparation process: S1) First, a sheet-like base material is prepared. In this process, if the resin constituting the base material is a thermoplastic resin, fibrous material can be manufactured in advance by melt extrusion or the like, and then woven into a fabric using various looms. When manufacturing the fibers, stretching can be performed to improve mechanical properties, and so-called irregularly shaped cross-section yarns, which are not circular, can be used to improve the interaction at the interface with the thermosetting resin described later. Furthermore, composite yarns using two or more different materials can also be used. Both shuttleless and shuttled looms can be used to manufacture the woven fabric. Examples of shuttleless looms include gripper looms, rapier looms, water jet looms, and air jet looms. Sheet-like material can be obtained by weaving strands with a diameter of 1 μm to 1000 μm with a mesh opening of 1 μm to 5000 μm using various weaving methods. Furthermore, if the sheet-like substrate is a nonwoven fabric, it can be obtained by forming a sheet from randomly dispersed fibers. Specifically, in addition to dry methods such as the dry method, meltblown method, and spunbond method, air-dray method and electrospinning method can be used. Of these, the electrospinning method is also applicable to PTFE, which will be discussed later, and is useful as a method for forming fine pores.
[0050] PTFE and some fluororesins do not exhibit the characteristics of thermoplastic resins in substance, making it difficult to obtain molded products by melt extrusion. In this case, a pre-molded product can be created by mixing PTFE powder with a lubricating solvent (solvent naphtha in this embodiment) and using this mixture. This pre-molded product can then be formed into a sheet by paste extrusion, and after drying and removing the lubricating solvent in a heated oven, a stretching treatment can be performed to create a sheet-like substrate with micropores. Furthermore, by heating the obtained sheet-like substrate at a temperature above the melting point of PTFE, a sheet-like substrate that does not change dimensions even at high temperatures can be obtained. In the stretching process described above, the stretching is performed in either the direction in which the paste is extruded as described above, or in the width direction of the sheet perpendicular to this direction, or in both directions. Alternatively, by performing the stretching process in only one direction and slitting parallel to that direction, a ribbon can be obtained, and then, for example, twisting the ribbon before weaving it into a fabric, which can then produce a PTFE woven fabric with excellent mechanical properties.
[0051] The porous structure of the stretched porous sheet subjected to the stretching treatment described above is defined by porosity and pore size. In the present invention, a porosity of 50% to 95% is preferably used. More preferably, it is 60% to 90%. The most preferred range is 65% to 85%. This is because the impregnation of the viscous thermosetting resin component before crosslinking into the pores takes a long time if the porosity is 50% or less, which can lead to uneven impregnation. Furthermore, if the porosity is 95% or more, deformation is more likely to occur during processing, making it difficult to maintain industrial quality. The above-mentioned porosity is calculated from the density. The pore size was measured using a palm porometer (POLROLUX 1000, manufactured by IB-FT GmbH). GALPORE125 was used as the measuring solution. The measurement using this palm porometer involved applying air pressure to a punched sample (φ25mm, measurement area approximately φ16mm2) immersed in the measuring solution, measuring the airflow rate in both the wet and dry states, and confirming the average pore diameter. While the above describes the measurement of pore size in a stretched porous sheet, the pore size of other sheet-like substrates, i.e., those composed of mesh, nonwoven, or woven materials, can also be measured using the same method. In this way, a sheet-like porous substrate having micropores is prepared.
[0052] One example of a suitable substrate is a thin film sheet made of polytetrafluoroethylene (PTFE). Such sheets, including stretched sheets, can be purchased commercially. Examples of such commercially available sheets include (e.g., product name Y of company X). Alternatively, it may be prepared by following the procedure below based on prior art such as Japanese Patent Publication No. 56-045773, Japanese Patent Publication No. 58-18991, and Japanese Patent Publication No. 56-45773. First, 100 parts by mass of PTFE fine powder (Daikin Industries, Ltd. Polyflon PTFE F-106) and 19 parts by mass of an auxiliary agent (ExxonMobil Corporation Isopar H) are mixed in a polyethylene container and fed into a pre-molding machine to create a pre-molded body. Next, the pre-molded body is fed into an extrusion molding machine and extruded using a cylinder extruder to form a tape. This tape is rolled to the desired thickness using metal rolls, and then the tape is heated to thoroughly dry the Isopar H. Next, the dried tape is heated to 280°C and stretched longitudinally at the desired magnification, and then the resulting stretched PTFE is heat-treated at 350°C to obtain a biaxially oriented PTFE tape with a film thickness of 50 μm. For example, by creating a difference in the ratio of the stretching process between the X and Y directions, such as N(N≠1):1, it is possible to impart an anisotropy of the tensile modulus corresponding to this difference.
[0053] (Impregnation process: S2) Next, a resin layer is formed on the surface of the prepared substrate. This resin layer is formed between the substrates in a manner that allows the substrate to be held, for example, as shown in Figure 5, as the first resin layer IMR1 or the second resin layer IMR2, when the substrate is formed into a tube. The resin layer is preferably a thermosetting resin, and in the case of a porous substrate, it is possible to form a thermosetting resin layer on the surface and at the same time allow the thermosetting resin to penetrate into the micropores of the porous substrate. In this step, it is important to obtain a resin layer-forming substrate with high micropore filling capacity and uniform thickness. As a method for manufacturing the impregnated substrate obtained in this step, the thermosetting resin before curing is flow-coated onto the substrate in a flowable state and passed through a fixed gap such as two rolls, thereby sufficiently pushing the thermosetting resin into the pores and achieving a uniform thickness. Alternatively, the thermosetting resin can be made into a sheet beforehand, and then pressed together with the sheet substrate. Furthermore, if the thermosetting resin has a viscosity of about 100 Pa·s or less, it can also be coated onto the sheet substrate using a normal coating machine. Examples of coating methods include curtain coating, spray coating, roll coating, dip coating, blade coating, and bar coating. Blade coating and bar coating are preferred embodiments for completely filling the pores of the sheet-like substrate. In preparing the resin layer-forming substrate for the first layer and the resin layer-forming substrate for the second layer, a single substrate may be switched to a different thermosetting resin during the impregnation process, or one or two types of substrates may be prepared by impregnating them with different thermosetting resins.
[0054] Furthermore, in the resin layer-forming substrate, the thickness of the thermosetting resin may be greater than that of the substrate, and a portion may exist as a standalone thermosetting resin in the radial direction. However, if only the substrate exists as a standalone material in the radial direction, sufficient adhesion cannot be ensured in the subsequent rolling process, so this should be avoided. In the laminate, such as a tube, according to the present invention, depending on the manufacturing method, the thickness of the resin layer-forming substrate is preferably 10 μm to 2 mm, more preferably 25 μm to 1 mm, and even more preferably 50 μm to 0.5 mm, for ease of workability. In addition, the thickness of the thermosetting resin existing as a standalone material is preferably 50% or less of the layer thickness, and more preferably 40% or less. In this way, a sheet-like substrate having a resin layer formed inside the micropores and on the substrate surface can be obtained.
[0055] (Rolling process: S3). Next, the resin layer-forming substrate that has undergone the impregnation process is wound around a mandrel (core) having a cross-sectional shape corresponding to the flow channel shape. For example, the impregnated sheet-like member may be wound continuously at an angle in the direction of the core's movement while it is being fed out, thereby enabling continuous production. Alternatively, the core may be wound without moving it in the longitudinal direction. In this winding method, the winding direction of the base material is defined in a plane perpendicular to the extension direction of the core. In this winding method, the maximum achievable tube length is limited by the length of the core and the width of the base material, but a winding structure with small and controlled variations in diameter and properties can be obtained. The formation of the first and second layers of the main body of the tube can be achieved by preparing two types of resin layer-forming base materials with different base materials and / or impregnating resins in advance, winding and laminating the resin layer-forming base material that will become the first layer, and then winding and laminating the resin layer-forming base material that will become the second layer on top of it.
[0056] When a resin layer-forming substrate has anisotropy such that its tensile modulus in one direction is greater than its tensile modulus in another direction, and a specific layer (inner or outer layer) is formed by winding the substrate around a mandrel in such a way that the axial direction of the mandrel is perpendicular to the direction in question, a tube can be formed in which the layer has a circumferential tensile modulus greater than that of the first direction. When a specific layer (inner or outer layer) is formed by winding the substrate around the same resin layer-forming substrate in such a way that the axial direction of the mandrel is parallel to the direction in question (the direction in which the tensile modulus of the resin layer-forming substrate is relatively large), a tube can be formed in which the layer has a circumferential tensile modulus less than that of the first direction.
[0057] (Heating process: S4) Next, the resin layer-forming substrate laminated on the mandrel is cured in the rolling process. For example, it can be cured by heating it in a mold that defines the outer shape of the tube. This heating is performed to allow the crosslinking reaction of the thermosetting resin to proceed and complete.
[0058] (Mandrel drawing process: S5) Next, the mandrel is removed from the tube. The tube is then completed through these steps.
[0059] (Measurement method) Next, the method for measuring the tube according to the invention will be described. First, regarding the preparation of test specimens used for measurement, we will describe an example of a measurement method that can clearly show the difference in elastic modulus and ensure reproducibility, even for minute samples or samples with small elastic modulus, which are difficult to measure with high reproducibility using methods such as the Japanese Industrial Standards described below. Figure 9 is a diagram illustrating the method for preparing this test specimen, and is a schematic perspective view of the tube. As shown in the figure, the longitudinal direction of the tube will be referred to as LD, and the circumferential direction as CD. First, a sheet-like sample with a uniform thickness (radial size) is cut from the tube by methods such as cutting, peeling, or shaping. Specifically, first, the tube is cut to the desired size of the test specimen. In this case, the tube is cut so that the cross-section is perpendicular to the longitudinal direction of the tube, creating a tube piece. Next, a slit is made from one end to the other of the cut tube piece, parallel to the longitudinal direction LD, to form a sheet. In this case, if the diameter of the tube is small, a slit may be made in one place on the tube to obtain a test piece of the desired size, and if the diameter of the tube is large, the tube may be divided into two equal parts by making a slit parallel to the longitudinal direction LD so as to pass through the center CGL of the tube. Next, the first layer (corresponding to the inner layer in the above-described embodiment) and the second layer (corresponding to the outer layer in the above-described embodiment) are peeled off from this sheet-like material. To perform tensile tests in the longitudinal or circumferential direction of the tube, test specimens corresponding to the longitudinal direction LD or circumferential direction CD of the tube are cut out from each of the peeled first and second layers. In these cut-out test specimens, the direction extending in the tensile direction of the tensile test is defined as the long side of the test specimen, and it is preferable that the length of the long side of the test specimen be 10 mm or more. On the other hand, the short side of the test specimen is exemplified as being between 5 mm and 15 mm, provided that it is not longer than the long side, but it is important that the curvature remaining in the test specimen does not become relatively too large. It may be adjusted as appropriate according to the diameter of the original tube as needed. For example, the developed length of the short side of the test specimen (length along the short side) should not exceed 50% of the original circumference (circumferential length when it was in a tube state). That is, the vertex angle when the test specimen is viewed as a sector from the first direction should not exceed 180 degrees.
[0060] Next, we will explain the method for measuring the tensile modulus. The tensile modulus in the first direction (longitudinal direction LD in Figure 9) and the circumferential direction (circumferential direction CD in Figure 9) shall be measured in accordance with ASTM D412 (JIS K 6251, ISO 37), except for the shape and size of the test specimen. Typical conditions include an initial chuck distance of 10 mm ± 0.5 mm, a tensile speed of 500 ± 50 mm / min, and a test temperature of 23 °C ± 2 °C. The measurement may be performed using a test specimen cut from a tube according to the present invention. The number of test specimens shall be six or more, and the measurement result shall be the average value of the measurement results obtained from each test specimen. Furthermore, when performing a chuck-tensile test on a test specimen described later in the chuck section of a tensile testing machine, if the chucked test specimen is damaged by the pressure of the chuck section, the above damage shall be avoided by inserting a rubber sheet between the chuck section and the test specimen before performing the test. In the case of a multilayer structure in which multiple layers of base material are laminated within the same layer, it is preferable to prepare a sheet-like sample so that it contains five or more base material layers. The thickness (radial dimension) of the test specimen should be 0.3 mm to 1 mm, with a long side of 20 mm or more and a short side of 5 mm or more. Cut the test specimen so that its long side is aligned with the circumference of the tube. The test specimen is chucked onto a tensile testing machine set to a chuck distance of 10 mm, ensuring that the specimen deflects as little as possible. The load is then obtained under a predetermined strain. Here, strain refers to the initial chuck distance divided by the chuck movement distance. The modulus of elasticity is obtained from the tangent to the curve created by the tensile strength and strain. For comparison of tensile moduli, it is preferable to use the modulus of elasticity obtained in the region where the strain is between 40% and 60%.
[0061] Next, we will explain the method for measuring the flexural modulus. The flexural modulus can be measured using a test specimen cut from a tube. The flexural modulus of the cut specimen can be obtained using the method specified in, for example, the Japanese Industrial Standard, JIS K 7106, Method for Testing the Bending Stiffness of Plastics Using a Cantilever Beam. However, depending on the tube diameter and the elastic modulus of the material, it may be difficult to obtain highly reproducible measurements using the method specified in the above Japanese Industrial Standards. In such cases, for example, characteristic values corresponding to the elastic modulus can be obtained in the manner shown below, and these values can be used as the flexural modulus, either directly or after performing the necessary calculations. In this case, it is important to ensure that the comparison objects, measurement methods, and calculation methods are consistent. For example, if the purpose is to compare the magnitudes of the bending modulus of elasticity of the first and second layers, care must be taken to ensure that the relative relationship of the bending modulus values is not reversed due to differences in measurement methods. Furthermore, it is desirable to standardize the shape of the test specimens as much as possible.
[0062] The compression testing machine used for measurement comprises a fixed stage and a movable stage, each having parallel surfaces facing each other. The movable stage is movable relative to the fixed stage, and at least one of the stages has a load cell that can measure minute changes in stress applied to the stage. After placing the test specimen, which has been lightly folded in half along the perpendicular bisector of its shorter side, between the stages of the compression testing machine, the movable stage is moved towards the fixed stage at a speed of approximately 5 mm / min, adjusting the gap between the stages to twice the thickness of the test specimen. This state is close to the shape of a tube when completely compressed by the rollers of a peristaltic pump, and the test specimen is folded in half until it is flat. Since holding it in this state for a long time may cause irreversible shape changes, it is preferable to start the operation to widen the gap between the stages within 3 seconds. In the gap expansion operation, the movable stage is moved away from the fixed stage at a speed of approximately 5 mm / min. As this expansion occurs, the test specimen deforms in a direction approaching its original shape. As an example, the gap between the stages after expansion is shown to be four times the thickness of the test specimen. However, in cases where the curvature of the test specimen is large, the contact between the long sides may be maintained at this gap. In such cases, the distance at which the long sides are reliably separated, including the comparison object, should be determined, and this distance should be set as the gap after expansion. However, if this distance is too large, the measured value will be small, and accurate measurement may be difficult depending on the test specimen. Therefore, it is preferable to apply the smallest possible value as the set value within the distance at which they can be reliably separated. After expanding to a predetermined gap, the load cell reading is obtained after 1 minute. The 1-minute wait is to allow the tube's repulsive force to subside. The obtained reading is divided by the cross-sectional area of the test specimen, i.e., the product of the specimen's thickness and its longest side length, to obtain the strain, which can then be used to obtain the modulus of elasticity. The measurement is preferably performed in a temperature-controlled environment, preferably at 23°C ± 2°C.
[0063] The test may involve cutting multiple test specimens from different locations within the same layer and comparing their average values. A sample size of 6 or more per level is preferable, but this can be increased further as needed to clearly define the relative magnitudes. The effectiveness of obtaining and comparing the elastic modulus using the average value of multiple test specimens also applies to the following measurements. If the test specimen has curvature even in an unloaded state, it is preferable to align the curvature with the direction that reproduces the operation of the peristaltic pump, i.e., the side that becomes the peak when folded in half. If the determination is made by comparing the average values using multiple acquired values, it is also possible to measure a portion of the test specimen by bending it in the opposite direction to the above. By doing so, the influence of the inherent curvature of the test specimen on the measurement results can be mitigated.
[0064] If the desired comparative accuracy of circumferential bending modulus cannot be obtained even with the above method due to the size of the sample or the range of elastic modulus, further comparisons using other measurement methods are also proposed. For example, if the extension direction of the substrate in the layer is circumferential at both levels being compared, the comparison results of compressive modulus in the direction perpendicular to the substrate extension direction, i.e., the radial direction, can also be applied. This is because, under conditions where the elastic modulus of the resin layer between substrates is strongly reflected, the relative relationship of compressive elasticity coincides with the relative relationship of bending elasticity. Similarly, if the substrate in each layer extends both circumferentially and in a first direction within each layer at both levels being compared, a comparison using the flexural modulus in the first direction is also proposed. The flexural modulus in the first direction can be obtained by bending the specimen so that the sides parallel to the circumferential direction come into contact with each other. However, if the specimen has a curved shape similar to a tube, the modulus will be obtained by bending it in a direction perpendicular to the curved shape of the specimen, so care should be taken to ensure that the change in modulus due to the shape effect of the specimen does not become dominant. The influence of the shape effect can be reduced by comparing samples with similar original curved shapes, reducing the length of the sides parallel to the circumferential direction, etc.
[0065] The radial compressive modulus can be measured as follows. The test specimen is prepared by cutting a portion from the tube, as described above. The test specimen may be cut from the tube in a strip shape, i.e., a rectangular parallelepiped shape, regardless of the curvature of the tube itself, or it may be cut along the circumferential direction, i.e., in a shape that has a curve derived from the tube shape immediately after cutting. Alternatively, it is also possible to prepare the test specimen by peeling off a portion of the layer starting from an incision. To achieve highly reproducible measurements, the thickness (radial size) of the test specimen is preferably 1 mm or more, although this depends on the sensitivity of the measuring device and the elastic modulus of the object being measured. The shape and size of the test specimen when viewed radially are not limited, but a rectangle with a side length of at least twice the thickness is an example. For example, the side length of the test specimen can be approximately 10 mm. If the test specimen has curvature due to its tubular shape, a part of it may float when placed on the measurement stage, which may reduce reproducibility. Therefore, it is preferable not to make the circumferential length unnecessarily large. During measurement, if the probe lifts (or the specimen lifts) due to the curvature of the specimen, causing a separation area within the compression region of the compression testing machine's probe, the probe should be selected to minimize this area, and the orientation of the specimen should be adjusted. Even if a separation area remains, it is preferable to adjust the separation distance so that it does not exceed 10% of the specimen thickness. In compression testing, the modulus of elasticity can be obtained by acquiring the load under a predetermined strain state and performing predetermined calculations, such as dividing this value by the area of the compression region.
[0066] (Examples) The following tubes were fabricated and tested for improved durability. First, two types of substrates differing in the presence or absence of anisotropy were prepared. These substrates are thin, porous sheets made from polytetrafluoroethylene (PTFE) material, which are then stretched. The anisotropic substrates exhibit anisotropy in their tensile modulus due to differences in the stretching ratio.
[0067] As the first resin constituting the inner layer's first resin layer, a perfluoropolyether elastomer (Shin-Etsu Chemical Co., Ltd., grade: SIFEL3590-N) was prepared, and as the second resin constituting the outer layer's second resin layer, a thermosetting silicone elastomer with a lower elastic modulus than that of a thermosetting silicone elastomer (Shin-Etsu Chemical Co., Ltd., grade: KE-1886) was prepared. Four types of resin-forming substrates were prepared by impregnating two types of substrates, each differing in the presence or absence of anisotropy, with these two types of resins. After thermocuring these resin-forming substrates under the same conditions as tube formation, the tensile modulus was measured. No significant anisotropy was observed in the resin-forming substrates using substrates without anisotropy, and the ratio of the magnitude of the tensile modulus in each direction was approximately 1:1. In the resin-forming substrates using substrates with anisotropy, anisotropy of the tensile modulus in the same direction as the substrate was observed. The ratio of the magnitude of the tensile modulus in each direction was approximately 1:5.
[0068] A resin layer-forming substrate coated with the first resin was wound onto a mandrel until the number of layers (turns) reached 13. Then, a resin layer-forming substrate coated with the second resin was wound onto the wound first resin-coated substrate until the number of layers (turns) reached 13. Next, the mandrel, which had been wrapped around the resin layer-forming substrate of the second resin, was placed in a hot air circulating oven set to 190°C to 200°C for 4 hours to simultaneously cure the first and second resins. After curing, the mandrel was withdrawn to obtain a tube containing an inner layer with the first resin and an outer layer with the second resin. This tube had an inner diameter of 6.4 mm, a body thickness of 2.4 mm, and an outer diameter of 11.2 mm.
[0069] By combining the four types of resin layer-forming substrates mentioned above, the following four types of tubes were fabricated. (Sample 1) Inner layer: Anisotropic (tensile modulus in the first direction > tensile modulus in the circumferential direction) Outer layer: Anisotropic (tensile modulus in the first direction > tensile modulus in the circumferential direction) (Sample 2) Inner layer: Anisotropic (tensile modulus in the first direction > tensile modulus in the circumferential direction) Outer layer: No anisotropy (Sample 3) Inner layer: No anisotropy Outer layer: Anisotropic (tensile modulus in the first direction > tensile modulus in the circumferential direction) (Sample 4) Inner layer: No anisotropy Outer layer: No anisotropy
[0070] Durability tests were conducted using the four types of samples described above. These tubes were applied to a Watson-Marlowe 520 peristaltic pump (using a 520REM head) pumping at a speed of 160 rpm, and water at 25°C was transported. The number of roller rotations required for the flow rate to decrease to less than 90% of the initial value was measured. Sample 1 took approximately 2.5 million rotations, Sample 2 approximately 4 million rotations, Sample 3 approximately 1 million rotations, and Sample 4 approximately 1 million rotations. All samples were confirmed to have high durability, but in particular, Samples 1 and 2, which have an inner layer elastic modulus ratio R1 greater than 1, i.e., the inner layer exhibits anisotropy where the tensile modulus in the first direction is greater than the tensile modulus in the circumferential direction, showed a lifespan more than twice as long as the other tubes, confirming their extremely high durability. Furthermore, we confirmed that the tube in Sample 2, in which the modulus ratio R2 of the outer layer was smaller than the modulus ratio R1 of the inner layer, exhibited particularly high durability. [Explanation of Symbols]
[0071] 20 Tube, BD main body, BL1 inner layer (first layer), BL2 outer layer (second layer), CH channel, CG center, 20a inner surface, 20b outer surface, CB case, HD head, PMB1 first substrate layer, IMR1 first resin layer, FB fibrous material
Claims
1. A tube used in a pump that transports fluid by peristalsis, The tube comprises a flow path that serves as a transport route for the fluid and extends in a first direction, and a main body formed around the flow path. The main body includes a first layer formed on the flow path and a second layer formed on the first layer having different characteristics from the first layer. A tube in which the modulus ratio R1 of the first layer is greater than 1, where R1 is defined as the tensile modulus of the first layer in the first direction / the tensile modulus of the first layer in the circumferential direction.
2. The tube according to claim 1, wherein the elastic modulus ratio R1 is greater than 1.
2.
3. The tube according to claim 1 or 2, wherein the elastic modulus ratio R1 is greater than 2.
4. The tube according to claim 1 or 2, wherein when the modulus ratio R2 of the second layer is defined as the tensile modulus of the second layer in the first direction / the tensile modulus of the second layer in the circumferential direction, the modulus ratio R2 is smaller than the modulus ratio R1 of the first layer.
5. The tube according to claim 4, wherein the elastic modulus ratio R2 of the second layer is less than 1.
6. The tube according to claim 5, wherein the elastic modulus ratio R2 of the second layer is less than 0.
9.
7. The first layer comprises a first porous substrate having a plurality of micropores and a first resin that has penetrated into the plurality of micropores of the first porous substrate. The first layer includes a laminated structure in which a plurality of the first porous substrates are stacked, The tube according to claim 1 or 2, wherein the plurality of first porous substrates extend in the circumferential direction of the main body in a cross section perpendicular to the first direction.
8. The second layer comprises a second porous substrate having a plurality of micropores and a second resin that has penetrated into the plurality of micropores of the second porous substrate. The second layer includes a laminated structure in which a plurality of the second porous substrates are stacked, The tube according to claim 1 or 2, wherein the plurality of second porous substrates extend in the circumferential direction of the main body in a cross section perpendicular to the first direction.
9. The tube according to claim 1 or 2, wherein the first layer comprises a first resin, and the first resin is a thermosetting resin.
10. The tube according to claim 1 or 2, wherein the radial flexural modulus of the second layer is smaller than the radial flexural modulus of the first layer.
11. The first layer comprises a first porous substrate having a plurality of micropores and a first resin that has penetrated into the plurality of micropores of the first porous substrate. The second layer comprises a second porous substrate having a plurality of micropores and a second resin that has penetrated into the plurality of micropores of the second porous substrate. The tube according to claim 1 or 2, wherein the region comprising the first porous substrate and the first resin is radially smaller than the region comprising the second porous substrate and the second resin.
12. The tube according to claim 11, wherein the average distance between substrates in the region consisting of the second porous substrate and the second resin is greater than the average distance between substrates in the region consisting of the first porous substrate and the first resin.
13. A tube used in a pump that transports fluid by peristalsis, The tube comprises a flow path that serves as a transport route for the fluid and extends in a first direction, and a main body formed around the flow path. The main body includes a first layer formed on the flow path and a second layer formed on the first layer having different characteristics from the first layer. The first layer comprises a plurality of thread-like fibrous materials, and the plurality of thread-like fibrous materials of the first layer are preferentially oriented in the direction along the first direction compared to the direction along the circumferential direction of the first layer.
14. A peristaltic pump comprising a tube according to claim 1 or 2, and a head and case capable of closing the internal space of the tube by crushing it.
15. The tube according to claim 1, wherein the first layer is configured as a laminate comprising a plurality of first base material layers and a plurality of first resin layers, and the first base material layer is made of a base material having a greater modulus of elasticity than the first resin constituting the first resin layer.
16. In the tube according to claim 1, The first layer includes at least a first substrate layer, A tube in which, with respect to the first substrate layer, a straight line LN1 is defined connecting the center of the tube's flow path to the starting point of the first substrate layer, and a straight line LN2 is defined connecting the center to the ending point, and the angle between the straight line LN1 and the straight line LN2 located opposite the overlapping region is defined as the narrow angle θ, and the narrow angle θ is 270 degrees or less.
17. A tube according to claim 16, wherein the angle θ is 60 degrees or less.
18. A tube according to claim 17, wherein the angle θ is 30 degrees or less.
19. When the modulus ratio R1 is defined as the tensile modulus in the first direction / the tensile modulus in the second direction perpendicular to the first direction and the main surface, a sheet-like substrate is prepared in which the modulus ratio R1 is greater than 1. A tubular first layer is formed by winding the sheet-like substrate onto a mandrel. A second layer having different properties from the first layer is formed on the tubular first layer. Includes removing the mandrel, A method for manufacturing a tube used in a pump that transports fluid by peristalsis, A method for manufacturing a tube, comprising winding the sheet-like substrate onto a mandrel such that the first direction of the sheet-like substrate is parallel to the axial direction of the mandrel.
20. A method for manufacturing a tube according to claim 19, characterized in that the thickness of the resin layer forming substrate is 10 μm to 2 mm.
21. A method for manufacturing a tube according to claim 20, characterized in that the thickness of the resin layer forming substrate is 25 μm to 1 mm.
22. A method for manufacturing a tube according to claim 21, characterized in that the thickness of the resin layer forming substrate is 50 μm to 0.5 mm.
23. The formation of the second layer includes preparing a second sheet-like substrate, The method for manufacturing a tube according to claim 19, wherein the formation of the second layer includes winding the second sheet-like substrate onto the tubular first layer.
24. The method for manufacturing a tube according to claim 19, wherein the sheet-like substrate includes a plurality of thread-like fibrous materials, and the plurality of thread-like fibrous materials are preferentially oriented in the direction along the first direction compared to the direction along the second direction.
25. The method for manufacturing a tube according to claim 23, wherein the second sheet-like substrate includes a plurality of thread-like fibrous materials.
Citation Information
Patent Citations
Flex-resistant composite elastomer composition
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