MEASUREMENT METHOD FOR RESIN STATE OF PREPREG SURFACE AND MEASUREMENT DEVICE THEREFOR
20210003387 ยท 2021-01-07
Inventors
- Naofumi Hosokawa (Nagoya-shi, JP)
- Masaaki Yamasaki (Nagoya-shi, JP)
- Yusuke Tsumura (Nagoya-shi, JP)
- Tsuyoshi Saotome (Nagoya-shi, JP)
Cpc classification
C08J5/04
CHEMISTRY; METALLURGY
G01B9/00
PHYSICS
International classification
C08J5/04
CHEMISTRY; METALLURGY
Abstract
To measure a thickness or a coverage of a resin present at a surface layer of a prepreg in a non-contact manner using a simple technique, a measurement method for a resin state which is a method for measuring a state of a resin present at a surface layer of a prepreg impregnated with the resin in an unidirectional reinforced fiber base material includes: irradiating the surface layer of the prepreg with light from an irradiation source; receiving reflected light from the surface layer of the prepreg by a sensor; and calculating at least one of a thickness or a coated state of the resin present at the surface layer of the prepreg from intensity of the reflected light.
Claims
1-14. (canceled)
15. A measurement method for a resin state, which is a method of measuring a state of a resin present at a surface layer of a prepreg impregnated with the resin in an unidirectional reinforced fiber base material, the method comprising: irradiating the surface layer of the prepreg with light from an irradiation source; receiving reflected light from the surface layer of the prepreg by a sensor; and calculating at least one of a thickness or a coated state of the resin present at the surface layer of the prepreg from intensity of the reflected light.
16. A measurement method for a resin state, which is a method of measuring a state of a resin present at a surface layer of a prepreg impregnated with the resin in an unidirectional reinforced fiber base material, the method comprising: irradiating the surface layer of the prepreg with light from an irradiation source; receiving reflected light from the surface layer of the prepreg by a sensor; and calculating a thickness and a coated state of the resin present at the surface layer of the prepreg from intensity of the reflected light.
17. The measurement method for a resin state according to claim 15, wherein the irradiation source is arranged in a direction perpendicular to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material, while a light receiving surface of the sensor is arranged substantially parallel to the plane of the unidirectional reinforced fiber base material.
18. The measurement method for a resin state according to claim 15, wherein the irradiation source is arranged in a direction parallel to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material, while a light receiving surface of the sensor is arranged perpendicular to reflected light that appears from the plane of the unidirectional reinforced fiber base material in an acute angle direction.
19. The measurement method according to claim 15, wherein the acute angle formed by the irradiation source and the plane of the unidirectional reinforced fiber base material is 5 to 60.
20. A method of producing a fiber-reinforced resin molded body, wherein, in obtaining a fiber-reinforced resin molded body from a prepreg, a resin state of the prepreg is measured by the method according to claim 15, and the measurement result is reflected in a placement device for the prepreg to control a placement position of the prepreg.
21. The method according to claim 20, wherein a placement state of the prepreg is measured in addition to the resin state and is reflected in control.
22. A measurement device for a resin state, which is a device that measures a state of a resin present at a surface layer of a prepreg impregnated with the resin in an unidirectional reinforced fiber base material, the device comprising: an irradiation source that irradiates the prepreg with irradiation light; a sensor that receives reflected light from the irradiation light; and a calculation unit that calculates at least one of a thickness or a coated state of the resin present at the surface layer of the prepreg from intensity of the reflected light.
23. A measurement device for a resin state, which is a device that measures a state of a resin present at a surface layer of a prepreg impregnated with the resin in an unidirectional reinforced fiber base material, the device comprising: an irradiation source that irradiates the prepreg with irradiation light; a sensor that receives reflected light from the irradiation light; and a calculation unit that calculates a thickness and a coated state of the resin present at the surface layer of the prepreg from intensity of the reflected light.
24. The measurement device according to claim 22, wherein the irradiation source irradiates irradiation light in a direction perpendicular to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material, while a light receiving surface of the sensor is arranged substantially parallel to the plane of the unidirectional reinforced fiber base material.
25. The measurement device according to claim 22, wherein the irradiation source irradiates irradiation light in a direction parallel to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material at the surface layer, while a light receiving surface of the sensor is arranged perpendicular to light that appears from the plane of the unidirectional reinforced fiber base material in an acute angle direction.
26. The measurement device according to claim 22, wherein two irradiation sources are provided, and the irradiation sources are arranged at positions that are line-symmetric with respect to an orientation of reinforced fibers of the prepreg.
27. A production device for a fiber-reinforced resin molded body, the production device comprising: the measurement device according to claim 22; and a placement device for a prepreg, wherein a measurement result by the measurement device is reflected in the placement device to control placement of the prepreg.
28. The production device according to claim 27, further comprising a device that measures a placement state of the prepreg, wherein a placement result of the prepreg is reflected in control.
29. The measurement method for a resin state according to claim 16, wherein the irradiation source is arranged in a direction perpendicular to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material, while a light receiving surface of the sensor is arranged substantially parallel to the plane of the unidirectional reinforced fiber base material.
30. The measurement device according to claim 23, wherein the irradiation source irradiates irradiation light in a direction parallel to an orientation direction of continuous fibers constituting the unidirectional reinforced fiber base material and have an acute angle with respect to a plane of the unidirectional reinforced fiber base material at the surface layer, while a light receiving surface of the sensor is arranged perpendicular to light that appears from the plane of the unidirectional reinforced fiber base material in an acute angle direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DESCRIPTION OF REFERENCE SIGNS
[0035] 1: Prepreg
[0036] 2: Surface resin measurement device
[0037] 3: Orientation direction of continuous fiber
[0038] 11: Fiber exposed portion
[0039] 12: Resin-coated portion
[0040] 13: Resin-coated thick portion
[0041] 14: Irradiation light
[0042] 15: Reflected light
[0043] 16: Reinforced fiber
[0044] 17: Thin resin
[0045] 18: Thick resin
[0046] 21: Sensor
[0047] 22: Irradiation source
[0048] 221: Angle of irradiation source and prepreg
[0049] 23: Rotation mechanism
[0050] 24: Holding mechanism
[0051] 41: Light source
[0052] 42: Diffusion prevention mechanism
[0053] 50: Automatic fiber placement device
[0054] 51: Traveling direction of automatic fiber placement device
[0055] 52: Pressure load roll
[0056] 53: Heating mechanism
[0057] 54: Placement state measurement mechanism
[0058] 55: Wound body of prepreg
DETAILED DESCRIPTION
[0059] This disclosure relates to a method and a device for measuring a state of a resin present at a surface layer of a prepreg, and preferred examples will be described below with reference to the drawings. However, the following examples are merely preferred examples, and this disclosure is not limited to the examples.
[0060] A prepreg has a configuration in which a matrix resin is impregnated into a unidirectional reinforced fiber base material. As the reinforced fibers, it is preferable to use, for example, carbon fibers, glass fibers, aramid fibers, Kevlar fibers and the like. As the matrix resin, any of a thermosetting resin and a thermoplastic resin can be used. The width of the prepreg is not particularly limited, but 1.5 inch (about 38.1 mm) width, inch(about 12.7 mm) width, inch(about 6.4 mm) width, or inch (about 3.2 mm) width can be used.
[0061] A prepreg as a measurement target is not one in which a matrix resin is uniformly impregnated. As shown in
[0062] Next, the principle of measurement of the surface resin state of the prepreg 1, that is, the thickness and coated state of the resin present at the surface layer of the prepreg will be described. The surface resin state indicates a state that can be quantified from surface observation. Specifically, although not particularly limited, there are given, for example, the thickness of the surface resin and resin coated states (resin coverage, the shapes of the fiber exposed portions 11, the maximum value, the average value, the minimum value of the areas of the fiber exposed portions 11, the number of the fiber exposed portions 11 per unit area and the like). For example, both the thickness and the coated state of the resin may be measured, or only one of them may be measured. Still another value may be calculated. The thickness of the surface resin refers to the thickness of the resin present at the surface layer of the prepreg, that is, the thickness of the resin from the outermost surface of the prepreg 1 to the first contact with the reinforced fibers in the thickness direction.
[0063] Light is irradiated from an irradiation source to the surface layer of the prepreg, the reflected light from the surface layer of the prepreg is received by a sensor, and the state of the resin (thickness, coated state and the like) present at the prepreg surface layer is calculated from the intensity of the reflected light.
[0064] As shown in
[0065] Further, as shown in
[0066] As described above, the angle of the reflected light 15 from which the irradiation light 14 is specularly reflected changes depending on the relationship between the angle of the irradiation light and the orientation direction of the reinforced fibers included in the unidirectional reinforced fiber base material constituting the prepreg 1. Therefore, by arranging the sensor 21 at an appropriate position according to the irradiation source and the orientation direction of the reinforced fibers, it is possible to reliably receive the specularly reflected light 15.
[0067] Whether to adopt the configuration as shown in
[0068] The acute angle arranged with respect to the plane of the unidirectional reinforced fiber base material at the surface layer (that is, the acute angle formed by the plane of the unidirectional reinforced fiber base material and the irradiation light) is 5 to 60. More preferably, it is 5 to 45, and still more preferably 10 to 30.
[0069] The irradiation light 14 is not particularly limited in form, but it is more preferable that the irradiation light 14 is parallel light such as laser in which light from the irradiation source does not diffuse or converge.
[0070] The sensor 21 is not limited in mechanism and form as long as the sensor 21 can measure the intensity of the reflected light from the prepreg 1. For example, an area camera or a line camera can be adopted for image acquisition.
[0071] Next, a method of measuring the surface resin state (thickness and coated state) of the prepreg 1 by the measurement method described above will be described.
[0072]
[0073] As shown in
[0074] Since the presence or absence and thickness of the resin are reflected in the intensity of the reflected light as described above, the presence or absence of the resin and the thickness of the resin present on the surface of the unidirectional reinforced fiber base material can be measured from the intensity of the reflected light 15 detected by the sensor 21. That is, since the intensity of the reflected light appears in one measurement image, the thickness and the coated state of the resin can be calculated based on the intensity.
[0075] In
[0076] The intensity of the reflected light intensity detected by the sensor 21 is represented by an image, for example, as shown in
[0077] The sensitivity setting at the time of photographing is preferably set appropriately so that the range of the reflection intensity of the fiber exposed portions 11 and the resin-coated thick portion 13 can be expressed. Further, when binarization is performed as shown in
[0078] Next,
[0079] The surface resin measurement device 2 includes a rotation mechanism 23 that enables the irradiation source 22 to rotate, and a holding mechanism 24 that holds the sensor 21 and the irradiation source 22. The prepreg 1 that is a measurement target may be manually placed on the surface resin measurement device 2 or may be mechanically placed in combination with an automatic fiber placement device (placement device for a prepreg) (not shown). Further, the surface resin measurement device 2 includes a calculation unit (not shown) that calculates the thickness and the coated state of the resin present at the surface layer of the prepreg 1 from the intensity of the reflected light 15 obtained by the sensor 21.
[0080] The sensor 21 is not limited in mechanism and form as long as the sensor 21 can measure the intensity of the reflected light 15 from the reinforced fibers in the prepreg. For example, an area camera or a line camera can be adopted for image acquisition. By performing an operation for binarizing the acquired image and recognizing the boundary by a calculation unit (not shown), the areas, the peripheral lengths and the like of the fiber exposed portions 11 can be calculated. In addition, the thickness of the coated resin and the like can be calculated by performing an operation for quantifying the acquired image and recognizing the boundary and the like.
[0081] The irradiation source 22 is not particularly limited in mechanism and form, but is more preferable that the irradiation source 22 is a parallel light source such as laser in which light from the irradiation source does not diffuse or converge. Further, as shown in
[0082] The surface resin measurement device described above can be used in combination with an automatic fiber placement device (not shown). The automatic fiber placement device is not limited in mechanism and form as long as the prepreg 1 can be placed automatically. A suitable prepreg heating device, prepreg pressurizing device, prepreg cutting device, functional particle imparting device and the like can be provided. In particular, the calculation results of the thickness and the coated state of the surface resin can be reflected in the placement control of a new reinforced fiber base material.
[0083] A procedure for measuring the thickness and coated state of the surface resin of the prepreg when the measurement device shown in
[0084] First, the prepreg 1 is prepared within the measurement range of the surface resin measurement device 2. It is preferable to place the prepreg 1 directly below the sensor 21. When measurement is performed as shown in
[0085] Next, the height of the sensor 21 is adjusted to focus the continuous fibers on which irradiation light is to be reflected. The height can be adjusted by the holding mechanism 24 shown in
[0086] Subsequently, as shown in
[0087] After the surface resin measurement device 2 is set in this way, the irradiation light 14 is irradiated. Since the irradiation light 14 is reflected by the prepreg 1, the reflected light 15 from the prepreg 1 is measured by the sensor 21. At this time, the portion where the continuous fibers 16 present in the perpendicular direction to the irradiation light 14 are exposed reflects strongly, and the portion coated with the resin reflects weakly so that a high contrast image is obtained in the sensor 21.
[0088] At this time, it is preferable that the entire surface resin measurement device 2 is installed in a dark room so that only the reflected light 15 from the irradiation source 22 is introduced into the sensor 21 of the surface resin measurement device 2. It is also preferable to use irradiation light 14 having a wavelength different from that of the general illumination light, or to use a filter that blocks wavelengths other than the irradiation light 14.
[0089] Then, by performing the processing as described above on the obtained image by a calculation unit (not shown), the fiber exposed portions 11 can be easily recognized, and the ratio, the areas, the peripheral lengths and the like of the fiber exposed portions 11 can be calculated. Further, the thickness of the coated resin can be calculated by comparison with a reference obtained using a sample whose resin thickness is known in advance.
[0090] In producing a fiber-reinforced resin molded body, the surface resin measurement device 2 is provided to an automatic fiber placement device 50 as shown in
[0091] The automatic fiber placement device 50 basically only needs to be able to place a prepreg, and its mechanism and driving unit are not limited. For example, a multi-joint robot mechanism or a portal-type three-axis control mechanism can be exemplified.
[0092] As shown in
[0093] Also, as shown in
[0094] The placement state measurement mechanism 54 only needs to be able to determine the state of the placed prepreg (peeling, floating, overlap and the like). Although the mechanism is not limited, for example, a mechanism that measures the height using a laser-type or ultrasonic-type distance meter or a mechanism that determines the degree of sticking from an image can be exemplified.
[0095] The result of the measurement by the placement state measurement mechanism 54 is integrated with the result of the measurement by the surface resin measurement device 2, and the heating temperature and energy of the heating mechanism 53 of the automatic fiber placement device 50, the pressure of the pressure load roll 52 of the automatic fiber placement device 50, or the stacking speed of the automatic fiber placement device 50 can be controlled.
[0096] The placement state measurement mechanism 54 is installed on the side opposite to a traveling direction 51 of the automatic fiber placement device with reference to the pressure load roll 52 of the automatic fiber placement device 50. On the other hand, the surface resin measurement device 2 is installed in front of the automatic fiber placement device 50 with respect to the traveling direction 51 of the automatic fiber placement device 50.
[0097] In the device configuration shown in
[0098] The surface resin state of the prepreg is measured as described above, and the measurement result is reflected in the automatic fiber placement device to control the placement position of the prepreg. Then, a stacked body of the prepreg stacked by the automatic fiber placement device can be molded by an appropriate unit such as an autoclave or a furnace to obtain a molded body. Such a molded body is then subjected to a trimming process or the like as necessary, and can be applied as a part or a product of an aircraft, a spacecraft, an automobile or the like.
INDUSTRIAL APPLICABILITY
[0099] The measurement method and measurement device can be applied to automated fiber placement (AFP) technology and automated tape layup (ATL) technology used in the aircraft industry and the automobile industry.