Handrail and method for manufacturing handrail
The multi-layer handrail design with a top and adhesive layer, manufactured via co-extrusion, addresses assembly challenges of existing materials by enabling machine assembly and solvent-free production, enhancing safety and efficiency.
Patent Information
- Application Number
- JP2023578731
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-21
- Filing Date
- 2022-06-21
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2042-06-21
AI Technical Summary
Existing handrails for moving walkways and escalators made of materials like SBR, CSM, EPDM, and CPE are bulky, difficult to assemble, require manual assembly with solvents or adhesives, leading to high costs, inefficiency, and safety hazards, as well as potential adhesion issues.
A handrail design with a multi-layer structure comprising a top layer and adhesive layer made of different materials, allowing machine-manufacturable assembly without solvents, using co-extrusion to bond the layers and attach to a substructure, ensuring high resistance and efficient production.
Facilitates machine assembly, reduces manufacturing time and costs, enhances safety by eliminating solvent use, and improves adhesion, resulting in a durable and efficient handrail with reduced environmental exposure.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a handrail for a moving walkway, escalator, etc., and a method for manufacturing the same. [Background technology]
[0002] Handrails made of SBR (styrene butadiene rubber), CSM (chlorosulfonated polyethylene, e.g., Hypalon), EPDM (ethylene propylene diene rubber), EPM (ethylene propylene rubber), and CPE (chlorinated polyethylene) are known in the prior art. These materials meet the requirements for handrail ceiling structures due to their required resistance. However, these materials are very bulky and difficult to assemble. Therefore, handrails must be assembled and attached manually using solvents and / or adhesives. In other words, such handrails must be assembled piece by piece by hand. Therefore, the manufacturing costs are very high, and the increased manufacturing time negatively impacts manufacturing efficiency. Furthermore, these materials have poor adhesion and must be applied to the substructure using solvents or adhesives. The use of solvents poses additional problems in terms of occupational health and safety and structural measures, such as the need for ventilation and protective masks. Furthermore, manual assembly carries the risk of contamination and the resulting loss of adhesion between the ceiling structure and the substructure. Furthermore, the high level of manual labor makes it prone to errors. Summary of the Invention [Problem to be solved by the invention]
[0003] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a handrail that is machine-manufacturable, highly resistant and can be machine-manufactured without the use of solvents. [Means for solving the problem]
[0004] This object is solved by a handrail for a moving walkway, escalator or the like that can be attached to a guide element, having the features of claim 1, and by a method for manufacturing a handrail, having the features of claim 15. Preferred embodiments are the subject of the dependent claims.
[0005] According to one aspect of the present invention, there is provided a handrail for a moving walkway, escalator or the like that can be attached to a guide element, the handrail having a substantially constant cross section along its outer contour. Preferably, the handrail includes a substructure that is placed or can be placed on the guide element. Preferably, the handrail includes a ceiling structure having at least one adhesive layer and a top layer, the top layer and the adhesive layer being preferably made of different materials. In particular, the ceiling structure can be attached to the substructure by the adhesive layer.
[0006] In contrast to known prior art, the ceiling structure in this embodiment can be made of at least two different materials. The top layer of the ceiling structure, which is exposed to the environment, can be formed from a highly resistant material to provide the handrail with high resistance to environmental influences. Meanwhile, an adhesive layer can be used to bond the top layer (or ceiling structure) to the substructure. That is, since the top layer is difficult to bond to other materials in the substructure and often requires adhesion promoters (e.g., solvents and / or adhesives) and a lot of manual labor, the present invention provides an adhesive layer that can bond the top layer to the substructure without adhesion promoters and without excessive manual labor. The top layer and the adhesive layer can be connected to each other by a material bond during the manufacturing process of the ceiling structure (e.g., a co-extrusion process). This can significantly improve the efficiency of the handrail manufacturing process. Therefore, the ceiling structure can be a multi-layer ceiling structure.
[0007] The top layer and adhesive layer can be connected to each other by a material bond, for example, through a manufacturing process (e.g., extrusion, pressing, vulcanization, calendaring, etc.), while the adhesive layer can be bonded / connected to the substructure by another method. In other words, the top layer can be a two-layer element. Furthermore, the top layer can be connected to the adhesive layer by a material bond with the reinforcing / coated fabric. The adhesive layer can have a material that matches the substructure to facilitate connection. To this end, the adhesive layer and the substructure can be made of materials that are inert to each other, i.e., do not chemically interact with each other. This can be achieved, in particular, by the substructure and adhesive layer being made of the same material, or materials that are compatible or compatible with each other. As a result, an advantageous connection can be provided between the ceiling structure and the substructure. Therefore, assembly of the ceiling structure and the substructure can be achieved by machine, increasing manufacturing efficiency. Furthermore, the absence of the need for adhesion promoters reduces the burden on workers. The ceiling structure can be a semi-finished product manufactured separately and, after completion, can be attached to the substructure, which is also manufactured as a semi-finished product. In other words, the ceiling structure is attached or attachable to the substructure. This increases the versatility in the manufacture of handrails, as the substructure and ceiling structure can be manufactured independently of each other (e.g., at different locations). The individual layers described herein (e.g., top layer, body laminate, substructure) can form a body laminate, i.e., a layer that extends in all three spatial directions. The ceiling structure can be a separately manufactured element. Once the ceiling structure is provided, it can be connected to the substructure. The presence of an adhesive layer in the ceiling structure also makes subsequent bonding of the ceiling structure to the substructure easy and efficient. In particular, this allows for machine assembly.
[0008] The ceiling structure is preferably placed on the substructure and connected to it so that it does not move relative to the substructure. Furthermore, the ceiling structure (particularly the top layer) can at least partially surround or cover the substructure and be exposed to the environment, thereby protecting the substructure from environmental influences. For example, the ceiling structure may be composed of only two layers: an adhesive layer and a top layer. The adhesive layer may be sticky or adhesive so as to be easily attached to the substructure. The two different materials of the ceiling structure allow for increased versatility in the manufacture and planning of handrails. For example, the top layer may be selected based on environmental parameters such as the location where the handrail will be used and the environmental influences it must withstand, i.e., flame retardancy, efflorescence-free composition, ozone resistance, UV resistance, and / or temperature resistance. In contrast, the adhesive layer may be selected to secure the ceiling structure to the appropriate substructure with sufficient adhesive strength without the use of solvents.
[0009] The guide element to which the handrail is attached or to which it can be attached may, for example, be a guide rail or a guide rail system, which guide rail or guide rail system at least partially encompasses the handrail. The handrail can move in a contoured direction relative to the guide element. The escalator or moving walk on which the handrail is provided may have a drive that is able to move the handrail in a contoured direction relative to the guide element. For this purpose, the escalator or moving walk may have deflection rollers and / or drive rollers that bias the handrail in a certain direction and / or shape. It may therefore be advantageous for the handrail to have a ceiling structure and a substructure that are sufficiently rigidly connected to each other so that they do not come apart when the handrail is in operation.
[0010] In this case, a substantially constant cross-section (especially in the contour direction) may mean that the dimensions of a cross-section remain substantially the same compared to another cross-section. Variations in dimensions may occur within manufacturing tolerances to provide a substantially constant cross-section. In other words, the dimensional change from one cross-section to the next is at most 5%.
[0011] The substructure may be an element designed to slide over the guide elements and / or hold the handrail on the guide elements. Furthermore, the substructure may provide the handrail with stability against unintended deformation. For this purpose, the substructure may be designed as a framework, which may have at least one reinforcing element. For example, the substructure may have a fabric structure, fibers, and / or tension elements running transversely and / or longitudinally relative to the contour direction. Preferably, the substructure consists of at least one substructure layer (e.g., a laminate). The substructure layer may constitute at least one of the reinforcing elements. For example, tension elements may be arranged (e.g., embedded) in the substructure layer. The substructure may consist of two to four layers. This ensures that the substructure is sufficiently lightweight on the one hand and sufficiently strong on the other hand. The substructure may be provided in its raw state. Alternatively, the substructure may be provided in a vulcanized state. Once the substructure is provided, a ceiling structure may be placed on top of it. Furthermore, the substructure may have a sliding layer designed to come into contact with the guide elements.
[0012] This means that the substructure does not have to meet the same high environmental resistance standards as the top layer and can be made from cheaper materials. The overall manufacturing costs of the handrail can therefore be reduced. Furthermore, the top layer can have a constant material thickness (i.e. the thickness in the direction perpendicular to the contour and in cross section). By varying the material thickness of the adhesive layer, the desired structural thickness can be provided. On the one hand, this simplifies the manufacture of the top layer (since now only a constant thickness needs to be manufactured) and, on the other hand, further cost savings are achieved.
[0013] Preferably, the top layer is made of CSM (chlorosulfonated polyethylene) and the adhesive layer is made of SBR (styrene butadiene rubber). In this case, the advantages of both materials are optimally complemented, providing a highly efficient ceiling structure. Specifically, CSM is sufficiently resistant to environmental impacts, and SBR is a cost-effective material, thereby reducing the material costs of the ceiling structure. Furthermore, the adhesive layer using SBR can be easily applied to the substructure without the use of an adhesion promoter, further simplifying manufacturing. The top layer and adhesive layer can be bonded by material adhesion.
[0014] Preferably, the top layer is made of EPDM (ethylene propylene diene rubber), TPE (thermoplastic elastomer), EPM (ethylene propylene rubber), CPE (chlorinated polyethylene), CSM (chlorosulfonated polyethylene), Hypalon, PU (polyurethane), SBR (styrene butadiene rubber), NBR (acrylonitrile butadiene rubber), and / or NR (natural rubber). These materials can be used as base polymers that can be expanded with additional additives. In this way, different properties, such as different elasticity and / or resistance, can be created. For example, carbon black can be used as an additive. In this way, the required properties of the top layer in terms of ozone resistance, UV resistance, and / or heat resistance can be achieved, while simultaneously achieving a flame-retardant top layer. Due to the presence of an adhesive layer, attention does not need to be paid to incompatibility between the underlying structure and the material of the top layer. This allows for greater flexibility in the planning and construction of the top layer.
[0015] Preferably, the adhesive layer is made of EPDM (ethylene propylene diene rubber), TPE (thermoplastic elastomer), EPM (ethylene propylene rubber), CPE (chlorinated polyethylene), CSM (chlorosulfonated polyethylene), Hypalon, PU (polyurethane), SBR (styrene butadiene rubber), NBR (acrylonitrile butadiene rubber), NR (natural rubber), or CR (chloroprene rubber). These materials can serve as a guide for base polymers that can be expanded with further additives. In particular, SBR and / or CR are relatively inexpensive materials (compared to the material of the top layer) and possess adhesive or bonding properties that allow the adhesive layer to be easily fixed to the substructure (e.g., framework). This means that no adhesion promoters, especially solvents, are required to attach the ceiling structure with the adhesive layer to the substructure. This facilitates processing of the two semi-finished products. Furthermore, the adhesive layer can be applied to compensate for irregularities in the substructure, ensuring a flat surface for the handrail (i.e., a consistent material thickness for the top layer). For example, the substructure may be constructed with tension elements made of steel strips, which are provided only in the central region (as will be described in more detail below), so that the substructure has a variable material thickness in cross section, which can be compensated for by, for example, an adhesive layer. This allows the top layer, particularly in the vulcanized state, to have a flat surface that is advantageously grippable by the user, so that the handrail can provide a good grip for the user. Preferably, the adhesive layer is the only layer used to compensate for irregularities.
[0016] Preferably, the handrail has, in a cross section perpendicular to the profile direction, two, in particular, curved end regions and a central region connecting the end regions. The central region can be flat. In other words, the central region can have no curvature. This makes the central region easier to manufacture. Furthermore, the central region can be designed so that the top layer, adhesive layer, and substructure of the central region have a constant material thickness. In contrast, the material thickness, in particular the thickness of the substructure, can be reduced in the two end regions. Preferably, the material thickness of at least one layer in each end region decreases in the first third of the overall extension of each end region, starting from the connection point between the central region and the end region. It has thus been found that the bending force required to guide the handrail on the guide elements and / or guide rollers is reduced. Therefore, the energy required to drive the handrail can be reduced. Reducing the material thickness allows for more efficient use of material while achieving high handrail resistance. Furthermore, the handrail can be driven with low energy, since it maintains flexibility. Preferably, the end regions are symmetrical with respect to an axis passing through the center of gravity of the handrail profile. Furthermore, the end region can have a curved shape in cross section transverse to the contour direction. More specifically, the end region can be designed to partially wrap around the guide element in order to hold the handrail on the guide element. In addition to the possibility of attaching a handrail with a curved end to the guide element, the curved end can prevent a user from pinching their fingers between the guide element and the handrail, thus avoiding user injuries. In particular, the end can be curved so that the handrail has an essentially C-shaped cross section.
[0017] Preferably, the adhesive layer has a constant material thickness, in other words the thickness of the adhesive layer can be constant across the end regions and the central region, which can facilitate the manufacture of the adhesive layer and therefore simplify the manufacture of the handrail as a whole.
[0018] Preferably, the adhesive layer has a greater material thickness in the central region than in the end regions. This means that the required thickness of the handrail can be achieved cost-effectively, since the adhesive layer can be made of cheaper material compared to the material of the top layer and / or the substructure. Furthermore, the adhesive layer can have a lower bending resistance compared to the top layer. This prevents the flexural properties of the entire handrail from being significantly adversely affected by an adhesive layer with a large material thickness. In the end regions, the adhesive layer can have a reduced material thickness sufficient to secure the ceiling structure to the substructure. It is advantageous to keep the material thickness of the adhesive layer low in the region of the end regions, since the curved shape of the end regions increases the resistance to flexure of the handrail. Preferably, the substructure has a greater material thickness in the central region than in the end regions.
[0019] Preferably, the top layer has an essentially constant material thickness in the central and end regions. Essentially means that the material thickness can be constant within the manufacturing tolerance range. In other words, a deviation of up to 11% is still within the manufacturing tolerance range. Therefore, the top layer is particularly easy to manufacture, since only a constant volume of layer needs to be manufactured. For example, coextrusion is a suitable manufacturing method. The top layer can be extruded three or more times to form a semi-finished product. Preferably, the adhesive layer is manufactured in one step with the top layer during the coextrusion process. This allows for a material bond to be formed between the top layer and the adhesive layer. The top layer provides the desired resistance to environmental influences and can be thin enough to cover the adhesive layer. This minimizes the handrail's bending resistance and allows for efficient operation of the handrail. Furthermore, coextrusion of the ceiling structure can improve the lip rigidity of the entire handrail. The high lip rigidity of the handrail ensures good retention of the handrail on the guide elements. In other words, a handrail with a stiffer lip requires a greater force to pull the handrail perpendicular to the contour away from the guide element.
[0020] Preferably, the ratio of the material thickness of the ceiling structure in the central region to the width of the handrail perpendicular to the outer contour of the handrail is in the range of 0.0012 to 0.08, preferably 0.01 to 0.065. It has been found that within these ranges, a particularly low resistance to flexing of the handrail is achieved, which can improve the energy efficiency of its operation. More specifically, since the handrail is bent several times during operation, for example to follow the shape of an escalator, a lower resistance to flexing can achieve a more efficient operation (i.e., driving the handrail). At the same time, however, the handrail remains sufficiently stable so as not to come off the guide element, even when a force acts transversely to the outer contour. In particular, if a highly rigid material is used for the top layer, the bending resistance of the handrail increases, which risks reducing the energy efficiency of the handrail during use and its service life. It has been found that within the above-defined range, both the energy efficiency of the handrail during use and its resistance to environmental influences are advantageously improved.
[0021] Preferably, the ratio of the material thickness of the substructure to the material thickness of the top layer in the central region is in the range of 1.25 to 50, preferably in the range of 2.5 to 16. The range of 1.25 to 50 is based on the recognition that the substructure is primarily responsible for ensuring the structural stability of the entire handrail, especially its tensile stability. In particular, the top layer is intended primarily as a resistance layer against environmental stresses (ozone, UV rays, temperature, etc.) and can also provide a flame-retardant barrier. A ratio in the range of 1.25 to 50 provides a handrail that offers an optimal balance between reduced resistance to flexure and sufficient stability. This ensures, on the one hand, efficient operation of the handrail and, on the other hand, reliable guidance of the handrail by the guide elements. Furthermore, the handrail can be more resistant to external environmental influences. In contrast, a ratio in the range of 2.5 to 16 has the advantage of minimizing the ductility of the handrail and avoiding plastic elongation of the handrail. Elongation of the handrail leads to inaccurate guidance of the handrail on the guide elements and to drive forces not being optimally transmitted to the handrail. Avoiding or reducing elongation of the handrail makes it possible to provide a particularly durable handrail.
[0022] Preferably, the adhesive layer has a strength of at least 3 N / mm 2 , preferably at least 6 N / mm 2 The adhesive layer and the substructure are designed to connect the ceiling structure and the substructure so as to provide an adhesive strength of at least 3 N / mm 2 , preferably at least 6 N / mm 2The adhesive layer has an adhesive force (adhesion or adhesive strength) of 3 N / mm. Adhesion can be defined as peel adhesion or peel force, and refers to the force required to peel one layer of material from another layer of material, whether flexible, smooth, or rigid. This peel force is always measured only across the width of the adhesive surface, so a higher peel force is required. Preferably, the peel force can be determined in accordance with DIN EN ISO 22970:2021-04. In particular, the adhesive layer can have adhesive properties (e.g., chemical bonding properties) that allow for the adhesive force to be achieved. Furthermore, the adhesive layer and / or the side of the substructure in contact with the adhesive layer can be structured so that mechanical adhesion (increased surface roughness) is achieved in addition to chemical adhesion (adhesion). 2 An adhesive strength of at least 6N / mm is particularly desirable for relatively flat handrails such as moving walkways, where little difference in height can be overcome. For escalators that overcome large differences in height, an adhesive strength of at least 6N / mm is desirable. 2 The adhesive strength of the handrail is advantageous, which requires it to bend several times during one revolution. The durability of the handrail (connection between the ceiling structure and the substructure) can only be ensured by a correspondingly high adhesive strength.
[0023] Preferably, the ceiling structure is a coextruded product. Therefore, the ceiling structure can be coextruded as a semi-finished product, separate from the substructure. The top layer and adhesive layer adhere to each other during the coextrusion process due to their flowable aggregate state. This means that the materials of the top layer and adhesive layer can also adhere together, which would otherwise require the use of solvents or other adhesion promoters. Therefore, an advantage of the present invention is that adhesion between the top layer and adhesive layer does not require an adhesion promoter. As a result, assembly of the ceiling structure can be performed by machine, increasing assembly precision. Furthermore, machine assembly prevents impurities, dirt, and grime from being introduced into the ceiling structure. This results in increased stability of the handrail. Another advantage of coextrusion is that the materials are particularly homogeneously distributed, which ensures high durability of the ceiling structure. Furthermore, the ceiling structure can be extruded in two, three, or even more stages, as long as the material bond between the adhesive layer and the top layer is achieved. This means that more complex ceiling structures can be manufactured by machine without the use of adhesion promoters.
[0024] Preferably, the ceiling structure has at least one additional layer, which preferably consists of the same material as the substructure. This allows the top layer to be adapted to the additional requirements of the handrail. For example, the damping properties of the handrail can be provided by the additional layer. The additional layer can be extruded onto the already fabricated ceiling structure, for example, using an additional extrusion layer. Furthermore, the additional layer can be extruded simultaneously with the top layer and the adhesive layer in a co-extrusion process. Since the additional layer preferably consists of the same material as the substructure, it can also be easily attached to the substructure. This ensures optimal adhesion between the ceiling structure and the substructure. Alternatively, the additional layer or layers can be applied to the ceiling structure by a calendering process. In this way, for example, the desired material thickness and / or other properties of the handrail can be efficiently and easily implemented on the handrail production line. Furthermore, since the ceiling structure can be provided with additional layers to achieve the desired properties, there is no need to adapt the substructure during production. Therefore, adapting the ceiling structure is sufficient, not the substructure. This simplifies the manufacturing process of the handrail.
[0025] Preferably, the substructure has a tension element extending along the contour direction of the handrail. Preferably, the substructure is responsible for ensuring the structural stability of the handrail. In particular, the substructure is responsible for providing the tensile strength of the handrail. For this purpose, the substructure can consist of at least one tension element, for example a steel cable, a fabric layer, a cord band, etc. extending along the contour direction. In other words, the tension element can extend along the direction of movement of the handrail. Preferably, the tension element is arranged only in the central region, so that the substructure has a greater material thickness in the central region than in the end regions. The tension element can be designed to absorb tensile forces. The tension element can therefore be responsible for ensuring that any changes in the length of the handrail remain within narrow limits. As a result, reliable operation of the handrail can be ensured over the long term.
[0026] According to a further aspect of the present invention, there is provided a method for manufacturing a handrail that can be attached to a guide element for a moving walkway, escalator, or the like, the method comprising the steps of co-extruding a ceiling structure consisting of at least an adhesive layer and a top layer, the top layer and the adhesive layer being made of different materials, and attaching the ceiling structure with the adhesive layer to a substructure. In other words, the ceiling structure consisting of the top layer and the adhesive layer and the substructure are provided as two semi-finished products that are manufactured separately and then joined together. This means that the adhesive layer can be adapted to the substructure, and the ceiling structure with the adhesive layer can be easily attached to the substructure without the need for an adhesion promoter (e.g., a solvent). This simplifies the manufacture of the handrail, which can be done, for example, by machine.
[0027] Preferably, the method further comprises the subsequent step of applying a first further layer to the ceiling structure, in particular by calendering, the at least one further layer preferably being of the same material as the substructure.
[0028] Preferably, multiple ceiling structures can be extruded separately and joined after extrusion, which allows for ceiling structures with desired properties and specific dimensions to be achieved without changing the manufacturing process, simply by adding more layers.
[0029] Preferably, the method further comprises the step of vulcanizing the substructure or vulcanizing the substructure with the ceiling structure attached. In other words, the handrail consisting of the ceiling structure and the substructure can be vulcanized as a whole, thereby achieving a strong bond between the ceiling structure and the substructure. Alternatively, the substructure can be vulcanized before the ceiling structure is attached, in which case energy can be saved during vulcanization because the vulcanization mold does not need to accommodate the ceiling structure. This provides a particularly energy-efficient manufacturing process.
[0030] Advantages and features stated in relation to the device equally apply to the method and vice versa. Individual features and associated advantages can be combined with one another to form new embodiments.
[0031] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the drawings. [Brief explanation of the drawings]
[0032] [Figure 1] 1 is a cross section through a handrail known from the prior art; [Figure 2] 1 is a schematic cross-sectional view of a ceiling structure according to one embodiment of the present invention. [Figure 3] FIG. 1 is a cross-sectional view through a handrail according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0033] FIG. 1 is a schematic diagram of a cross section of a handrail 10 known from the prior art. Only one side of the handrail 10 is shown in FIG. 1. The non-illustrated side of the handrail 10 is symmetrical to the portion of the handrail 10 shown about the illustrated axis of symmetry. The handrail 10 consists of a top layer 20 and a substructure 30. The top layer 20 is integrally formed from a material having desired properties depending on the intended use of the handrail 10. The substructure 30 ensures the structural strength of the handrail 10. The top layer 20 is attached to the substructure 30 by manual assembly, in which layers of the top layer 20 are stacked onto the substructure 30 using an adhesion promoter.
[0034] Therefore, the use of solvents has the disadvantage of exposing manual assembly personnel to elevated levels of contaminants. Additionally, manual assembly is inefficient and introduces the risk of contamination, which can result in poor adhesion of the top layer 20 to the substructure 30.
[0035] Taking this into consideration, the present invention proposes a ceiling structure 5 comprising at least one top layer 2 and an adhesive layer 3. Figure 2 is a schematic diagram of a ceiling structure 5 according to one embodiment of the present invention. Only a portion of the ceiling structure 5 is shown in Figure 2. The adhesive layer 3 and the top layer 2 are made of different materials. In this embodiment, the top layer 2 has a constant material thickness. In contrast, the adhesive layer 3 has a variable material thickness. This means that the adhesive layer 3 can be used to level out irregularities (e.g., due to an uneven substructure) at low cost. This saves material for the top layer 2, making the ceiling structure 5 as a whole more cost-effective to produce.
[0036] FIG. 3 is a schematic cross-sectional view of a handrail 1 according to one embodiment of the present invention. The handrail 1 in FIG. 3 is shown in a cross section perpendicular to the contour direction in the cross section. The contour direction is on the sheet surface in FIG. 3. More precisely, only one side of the axisymmetric handrail 1 is shown. However, the side not shown is symmetrical to the side of the handrail 1 shown. The handrail 1 includes a ceiling structure 5, as shown in FIG. 2, with a top layer 2 and an adhesive layer 3. The ceiling structure 5 is attached to a substructure 4 by the adhesive layer 3. The material of the adhesive layer 3 is selected to provide sufficient adhesion so that the ceiling structure 5 can be advantageously attached to the substructure 4 without the use of an adhesion promoter. In this embodiment, the adhesive layer is made of chloroprene rubber (CR), so that the adhesive layer adheres well to the substructure 4. Furthermore, in this embodiment, the top layer is made of chlorosulfonated polyethylene (CSM), and the ceiling structure 5 is manufactured by coextrusion. Therefore, the top layer 2 adheres to the adhesive layer 3 by material bonding. The substructure 4 also includes tension elements 8 made of steel strips running along the contour. The tension elements 8 are able to absorb tensile forces and ensure a constant length over the service life of the handrail 1.
[0037] In a further embodiment, the top layer of the above-mentioned ceiling structure 5 is made of ethylene propylene diene rubber (EPDM) or polyurethane (PU). An extrusion process can also be used to combine the material of the top layer with an adhesive layer 3. The adhesive layer 3 serves to attach the ceiling structure 5 to the substructure 4. In other words, the attachment of the ceiling structure 5 to the substructure 4 is independent of the material used for the top layer 2.
[0038] In this embodiment, the top layer has a thickness of 0.1 mm to 4 mm, because this region provides sufficient protection against external influences such as ozone, UV, and temperature stress. In this embodiment, the thickness of the substructure 4 is approximately 5 mm. The adhesive layer has a material thickness of 10 mm, which is the material thickness of the substructure 4 minus the material thickness of the top layer. In other words, the adhesive layer 3 compensates for variations in the material thickness of the other layers. Preferably, the top layer 2 has a constant material thickness, so that the adhesive layer 3 simply compensates for variations in the thickness of the substructure 4.
[0039] In this embodiment, the cross section of the handrail is divided into a central region 6 and two end regions 7, and the thickness of the handrail is greater in the central region 6 than in the end regions 7. Furthermore, the end regions 7 are curved such that the cross section of the end regions 7 forms a C-shape.
[0040] The adhesive layer forms an adhesive bond with the substructure 4, and the adhesive strength is 3 to 10 N / mm 2 This ensures sufficient stability of the handrail 1. All layers referred to in this invention are laminated bodies that stretch in all spatial directions. [Explanation of symbols]
[0041] 1 handrail 2. Top floor 3 Adhesive layer 4 Substructure 5 Ceiling structure 6 Central area 7 End area 8 Tension Elements 10 Handrails 20 top layer 30 Lower structure
Claims
1. A handrail (1) that can be attached to a guide element of a moving walkway or escalator, a substructure (4) that is or can be placed on said guide element; a ceiling structure (5) having at least one adhesive layer (3) and one top layer (2); Two end regions (7) that are curved in a cross section perpendicular to the outer shape of the handrail (1); a central region (6) connecting said end regions (7), The handrail (1) has a substantially constant cross section along the contour direction, the materials of the top layer (2) and the adhesive layer (3) are different; The ceiling structure (5) with the adhesive layer (3) is attached to the substructure (4), and The substructure (4) includes a tension element (8) extending along the outer diameter of the handrail (1), The tension elements (8) are arranged only in the central region (6), and the substructure (4) has a greater material thickness in the central region (6) than in the end regions (7).
2. 2. A handrail (1) according to claim 1, wherein the top layer (2) comprises EPDM, TPE, EPM, CPE, CSM, PU, SBR, NBR and / or NR.
3. 3. A handrail (1) according to claim 1 or 2, wherein the adhesive layer (3) comprises SBR, EPDM, TPE, EPM, CPE, CSM, PU, NBR, NR and / or CR.
4. 2. A handrail (1) according to claim 1, wherein the adhesive layer has a constant material thickness.
5. 2. A handrail (1) according to claim 1, wherein the adhesive layer (3) has a greater material thickness in the central region (6) than in the end regions (7).
6. A handrail (1) according to claim 1 or 5, wherein the substructure (4) has a greater material thickness in the central region (6) than in the end regions (7).
7. A handrail (1) according to claim 1, wherein the top layer (2) has a substantially constant material thickness in the central region (6) and in the end regions (7).
8. 2. The handrail (1) according to claim 1, wherein the ratio between the material thickness of the ceiling structure (5) in the central region (6) and the lateral width of the handrail (1) is in the range of 0.0012 to 0.
08.
9. A handrail (1) according to claim 1, wherein the ratio of the material thickness of the substructure (4) to the material thickness of the top layer (2) in the central region is in the range of 1.25 to 50.
10. The adhesive layer (3) has a resistance of at least 3 N / mm 2 2. A handrail (1) according to claim 1, designed to connect the ceiling structure (5) to the substructure (4) so that an adhesive force of
11. A handrail (1) as described in claim 1, wherein the top layer (2) and the adhesive layer (3) are made of different materials and the ceiling structure (5) is a co-extruded product.
12. A handrail (1) according to claim 1, wherein the ceiling structure (5) comprises at least one further layer, which is made of the same material as the substructure (4).
13. A method for manufacturing a handrail according to claim 1, comprising: co-extruding the ceiling structure (5) comprising at least the adhesive layer (3) and the top layer (2), the top layer (2) and the adhesive layer (3) being made of different materials; and attaching the ceiling structure (5) having the adhesive layer (3) to the substructure (4), wherein the substructure (4) includes the tension element (8) extending along the outer shape of the handrail (1).
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