Method for manufacturing a flexible composite belt or cable
10183839 · 2019-01-22
Assignee
Inventors
Cpc classification
B29C48/154
PERFORMING OPERATIONS; TRANSPORTING
D07B2801/10
TEXTILES; PAPER
B29K2995/0077
PERFORMING OPERATIONS; TRANSPORTING
B29C70/525
PERFORMING OPERATIONS; TRANSPORTING
D07B1/02
TEXTILES; PAPER
D07B5/006
TEXTILES; PAPER
D07B1/22
TEXTILES; PAPER
D07B1/145
TEXTILES; PAPER
D07B2801/10
TEXTILES; PAPER
B29L2011/0075
PERFORMING OPERATIONS; TRANSPORTING
D07B1/16
TEXTILES; PAPER
B29K2105/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B7/06
PERFORMING OPERATIONS; TRANSPORTING
B29C70/86
PERFORMING OPERATIONS; TRANSPORTING
B29C70/52
PERFORMING OPERATIONS; TRANSPORTING
D07B7/14
TEXTILES; PAPER
D07B1/16
TEXTILES; PAPER
Abstract
A method for manufacturing a flexible composite belt or cable, in the method, one or more parallel reinforced plastic profiles (11) are manufactured by pultrusion, continuous lamination or other continuous method. After surface treatment, the reinforced plastic profiles (11) are guided at a short distance from one another to coating treatment, which is carried out by extrusion or lamination or pultrusion. In the coating treatment, the reinforced plastic profiles are enveloped with a coating material (12) improving wear resistance which joins the reinforced plastic profiles (11) together and forms the coating of a finished belt or cable (10). Finally, the finished belt or cable (10) is wound on a reel.
Claims
1. A method for manufacturing a flexible composite belt or rope, the method comprising the stages of: manufacturing two or more parallel reinforced plastic profiles by pultrusion performing surface treatment on the reinforced plastic profiles by a plasma treatment, which facilitates adhesion between the reinforced plastic and a coating material guiding the two or more reinforced plastic profiles to a desired distance from one another joining the two or more reinforced plastic profiles together by enveloping them with the coating material in a coating treatment carried out by extrusion or pultrusion thereby forming the flexible composite belt or rope and winding the flexible composite belt or rope on a first reel.
2. The method as claimed in claim 1 wherein the method comprises winding and temporarily storing the two or more parallel reinforced plastic profiles on at least one second reel.
3. The method as claimed in claim 1, wherein the plasma treatment is atmospheric plasma treatment.
4. The method as claimed in claim 1, wherein thermoplastic mass or elastomeric or rubber material is used as the coating material, and the method comprises embedding a reinforcement in the coating material during the coating treatment by means of which the properties of the coating material are improved.
5. The method as claimed in claim 1, wherein the method comprises embedding a cable, an optical fibre or an electroconductive material layer, in the coating material.
6. The method as claimed in claim 1, wherein the coating treatment comprises forming a pattern on the surface of the coating, the pattern being configured to improve mechanical grip or ability to monitor visual condition of the flexible composite belt or rope.
7. The method as claimed in claim 1, wherein the method comprises performing the coating treatment by forming several layers wherein the layers are of different materials and/or of different hardnesses of the same material (co-extrusion).
8. The method as claimed in claim 1, wherein the coating treatment comprises pretreating the reinforced plastic profiles before the surface treatment thereby further improving adhesion between the reinforced plastic and the coating.
9. The method as claimed in claim 1, wherein the coating treatment comprises coating the reinforced plastic profiles with flexible elastomeric.
10. The method as claimed in claim 1, wherein the coating treatment comprises guiding the reinforced plastic profiles into a thermoplastic coating adjusting the positions of the reinforced plastic profiles in order to achieve a desired product geometry of the flexible composite belt or rope.
11. The method as claimed in claim 1, wherein the flexible composite belt or rope is a carrier cable for an elevator.
12. The method as claimed in claim 5, wherein the method comprises monitoring condition, wearing or aging of the flexible composite belt or rope by using the cable, optical fibre or electroconductive material layer embedded to the coating material.
13. The method as claimed in claim 9, wherein the enveloping of the two or more reinforced plastic profiles with the coating material comprises forming a coating that has desired transverse flexibility for facilitating a change of cross-sectional profile of the flexible composite belt or rope during use.
14. The method as claimed in claim 13, wherein the flexible composite belt or rope has a foldable cross-sectional profile.
Description
(1) The method according to the invention is illustrated in the following, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10) In the embodiment of
(11) The reinforced plastic profiles are polymer composite profiles reinforced with continuous fibres. The amount of fibre in a composite is approximately 40-80%. Carbon and/or glass fibres are the fibres typically used. As a polymer may be, for example, polyurethane, epoxy, vinyl ester or polyester. In reinforced plastic profiles, thermosetting plastic or thermoplastic can be used as a matrix. The shape of the reinforced plastic profiles may be a flat bar, bar, pipe, plate, or the like.
(12) At the coating stage 4, the reinforced plastic profiles 11 are guided at a short distance from one another to coating treatment which is carried out by extrusion or lamination or pultrusion.
(13) At the coating stage, the product is given its final shape and, if necessary, the coating keeps the composite parts together and thus the coating material is selected according to the application. The coating also makes possible transverse flexibility of the product since the composite reinforcements consist of several separate profiles between which there is a flexible coating. This can be used to facilitate the product to remain, for example, in a wedge groove;
(14) Layers acting as wear indicators may be added to the product also during coating. An additional layer may be a second coating layer or a reinforcement, such as a reinforced mat or fabric.
(15) When choosing the coating material, it should be taken into account that the coating material 12 also joins the reinforced plastic profiles 11 together, whereby a finished belt or cable 10 with a coating is formed. At the coating/lamination stage 4 are used guides 13 (
(16) Finally, the finished belt or cable 10 is wound on a reel at stage 5. The final flat bar type profile can be further processed further by using individual coated profiles as strands which form a wire or cable.
(17) The offline production shown in
(18) In the embodiments of
(19) The invention may be applied as follows.
(20) During the coating treatment 4, a reinforcement is added for improving the properties of the coating material. During the coating treatment 4 is added a cable, an optical fibre or an electroconductive material layer, which add the possibilities for making measurements, for monitoring and analysing the condition, wearing and aging of the composite belt. After the coating treatment 4, the combination can be subjected to surface treatment.
(21) Several composite belts may be gathered together to form a solid multi-strand wire. In connection with the coating treatment, a pattern can be made on the surface, which provides the cable with a mechanical grip on the driving wheels and/or improves visual condition monitoring.
(22) The coating treatment can be made in several layers. The layers may be of different materials or of different hardnesses of the same material (co-extrusion). If so desired, the reinforced plastic profiles may be pretreated, which improves adhesion between the reinforced plastic and the coating.
(23) The reinforced plastic profile is preferably coated with a flexible elastomere, which facilitates transverse flexibility and makes it possible to change the cross-sectional geometry of the product to match the application. Due to the elastic body, the profile may be an opening one or one which folds into shape. The reinforced plastic profiles are guided precisely into the thermoplastic coating, whereby their position in the final product geometry may be adjusted as desired. The method is used to manufacture a carrier cable for an elevator.
(24) A composite profile may be designed in the desired manner and the coating may be applied to only a part of the reinforced profile. Different reinforced profiles may be guided into the coating and they can be positioned as desired in the lateral and perpendicular directions. At the coating stage, a tooth-like wedge surface can be made in the product, which helps the product to stay in the wedge groove.
(25) Pultrusion uses parallel straight reinforced fibres and in the process other reinforcing materials may also be added on the surface of the product.