Method for forming a tube and a method and a packaging machine for forming a package
11548238 · 2023-01-10
Assignee
Inventors
- Paolo Sanibondi (Reggio Emilia, IT)
- Claudio Ferrari (Albinea, IT)
- Filippo Ferrarini (Modena, IT)
- Nicola Macini (Modena, IT)
Cpc classification
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
B65B9/12
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1632
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C65/5057
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1403
PERFORMING OPERATIONS; TRANSPORTING
B29C65/5042
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/7166
PERFORMING OPERATIONS; TRANSPORTING
B29K2023/086
PERFORMING OPERATIONS; TRANSPORTING
B29C66/72321
PERFORMING OPERATIONS; TRANSPORTING
B29C65/7894
PERFORMING OPERATIONS; TRANSPORTING
B29C66/4322
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83411
PERFORMING OPERATIONS; TRANSPORTING
B65B51/26
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1658
PERFORMING OPERATIONS; TRANSPORTING
B29C66/73921
PERFORMING OPERATIONS; TRANSPORTING
B29C65/10
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1432
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C65/00
PERFORMING OPERATIONS; TRANSPORTING
B29C65/50
PERFORMING OPERATIONS; TRANSPORTING
B65B51/26
PERFORMING OPERATIONS; TRANSPORTING
B29C65/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is described a method for forming a tube (3) of a web (4, 4) of packaging material comprising the steps of advancing the web (4) of packaging material along a web advancement path (P), overlapping a first lateral edge (19) of the web (4, 4′) of packaging material with a second lateral edge (20) of the web (4, 4) of packaging material for obtaining a longitudinal seam portion of the tube (3) and fusing at least an internal outer surface (34) of the first lateral edge (19) and an external outer surface (37) of the second lateral edge (20) with one another for longitudinally sealing the seam portion of the tube (3). The step of fusing comprises at least the substeps of directly heating the external outer surface (37) of the second lateral edge (20) and heating by contact the internal outer surface (34) by establishing contact between the internal outer surface (34) and the directly heated external outer surface (37).
Claims
1. A method for forming a tube of a web of packaging material, comprising: advancing the web of packaging material along a web advancement path (P); overlapping a first lateral edge of the web of packaging material with a second lateral edge of the web of packaging material for obtaining a longitudinal seam portion of the tube; wherein the so obtained tube has an inner space; wherein the second lateral edge is arranged within the inner space after formation of the tube; wherein the first lateral edge comprises an internal outer surface facing the inner space and the second lateral edge comprises an external outer surface facing the internal outer surface of the first lateral edge, wherein during formation of the tube, the second lateral edge delimits an inner area of a partially formed tube; providing a heating device in an operative position, in which the heating device faces the external outer surface of the second lateral edge and is entirely located outside of the inner area of the partially formed tube; fusing at least the internal outer surface and the external outer surface with one another for longitudinally sealing the seam portion of the tube; and wherein fusing comprises directly heating the external outer surface of the second lateral edge through the heating device arranged in the operative position; and heating by contact the internal outer surface by establishing contact between the internal outer surface and the directly heated external outer surface.
2. Method according to claim 1, wherein the web of packaging material comprises an initial web of packaging material and a sealing strip applied onto the initial web of packaging material; the method further comprising applying the sealing strip onto the initial web of packaging material such that the second lateral edge comprises the sealing strip.
3. Method according to claim 2, wherein at least a portion of the sealing strip defines at least a portion of the external outer surface.
4. Method according to claim 2, wherein the sealing strip is applied, prior to overlapping and sealing.
5. Method according to claim 2, wherein while applying the sealing strip, the sealing strip is applied onto at least an internal surface of the initial web of packaging material, the internal surface of the initial web of packaging material facing the inner space of the tube after formation of the tube.
6. Method according to claim 2, wherein during application of the sealing strip, at least another portion of the sealing strip is applied onto an external surface of the initial web of packaging material, opposite to an internal surface; wherein the external surface of the initial web of packaging material faces the internal outer surface after the formation of the tube.
7. The method according to claim 2, wherein at least a portion of the sealing strip is directly heated during sealing.
8. Method according to claim 1, wherein during sealing, a heating unit directly heats the external outer surface of the second lateral edge.
9. Method according to claim 8, wherein the heating unit directly heats by a flow of a heated gas and/or, by a ray of laser light and/or, by a plasma and/or by electron-beam irradiation.
10. Method according to claim 1, wherein prior to heating by contact, the temperature of the internal outer surface is lower than the temperature of the external outer surface.
11. Method according to claim 1, wherein prior to heating by contact, the temperature of the internal outer surface is substantially equal to the ambient temperature.
12. Method according to claim 1, wherein the web of packaging material comprises a plurality of layers; wherein the external outer surface and the internal outer surface comprise a heat-seal plastic material.
13. A packaging machine for producing sealed packages of a pourable product from a web of packaging material advancing along a web advancement path, the packaging machine comprising: a conveying device for advancing the web of packaging material along the web advancement path at least to a tube forming station at which the web (4) of packaging material is formed, in use, into a tube; a tube forming device configured to form the tube at the tube forming station by overlapping a first lateral edge of the web of packaging material with a second lateral edge of the web of packaging material for obtaining a longitudinal seam portion of the tube; wherein the second lateral edge is arranged within an inner space of the tube after formation of the tube; wherein the first lateral edge comprises an internal outer surface facing the inner space and the second lateral edge comprises an external outer surface facing the internal outer surface, wherein during formation of the tube, the second lateral edge delimits an inner area of a partially formed tube; a sealing device configured to longitudinal seal the seam portion by fusing the internal outer surface and the external outer surface with one another; wherein the sealing device comprises a heating device configured to directly heat the external outer surface of the second lateral edge without heating the internal outer surface of the first lateral edge; and wherein the heating device faces said external outer surface of the second lateral edge and is entirely located outside of the inner area of the partially formed tube.
14. The packaging machine according to claim 13, wherein the heating unit is configured to directly heat the external outer surface by a flow of a heated gas, and/or by a ray of laser light, and/or by a plasma and/or by electron-beam irradiation.
15. A method for forming a tube of a web of packaging material, comprising: advancing the web of packaging material along a web advancement path, the web of packaging material comprising a sealing strip; overlapping a first lateral edge of the web of packaging material with a second lateral edge of the web of packaging material to form a tube comprising a longitudinal seam, the tube comprising an inner space; wherein the second lateral edge is arranged within the inner space after formation of the tube; wherein the first lateral edge comprises an internal outer surface facing the inner space and the second lateral edge comprises an external outer surface facing the internal outer surface of the first lateral edge and an inner surface facing the inner space after formation of the tube; wherein the sealing strip comprises a first portion applied to the inner surface of the second lateral edge and a second portion that protrudes away from the second lateral edge, the sealing strip comprising a first face applied to the inner surface of the second lateral edge and a second face opposite to the first face; fusing at least the internal outer surface and the external outer surface with one another to longitudinally seal the seam portion of the tube; directly heating the external outer surface of the second lateral edge; heating by contact the internal outer surface by establishing contact between the internal outer surface and the directly heated external outer surface; and wherein, during the step of directly heating, the second portion of the sealing strip is directly heated and, subsequently, fused to the internal outer surface on said first face of the sealing strip.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Two non-limiting embodiments of the present invention will be described by way of example with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
BEST MODES FOR CARRYING OUT THE INVENTION
(8) Number 1 indicates as a whole a packaging machine for producing sealed packages 2 of a pourable product, in particular a (sterilized or sterile-processed) pourable food product such as pasteurized milk, fruit juice, wine, tomato sauce, etc., from a tube 3 of a web 4 of packaging material. In particular, in use, tube 3 extends along a longitudinal axis A, preferentially having a vertical orientation.
(9) With particular reference to
(10) In more detail, web 4, in particular initial web 5, has at least a layer of fibrous material 6, in particular paper or cardboard, and at least a first layer 7 of heat-seal plastic material and a second layer of heat-seal plastic material. In particular, first layer 7 and second layer 8 interpose layer of fibrous material 6 between one another and define the outer faces of initial web 5.
(11) Preferentially but not necessarily, the heat-seal plastic material is polyethylene.
(12) In the non-limiting example embodiment of
(13) In a preferred non-limiting embodiment, web 4, in particular initial web 5, also comprises a third layer 10 of heat-seal plastic material, in particular of polyethylene, preferably third layer 10 being interposed between layer of fibrous material 6 and layer of gas—and light-barrier material 9.
(14) In a preferred non-limiting embodiment, second layer 8 forms an inner face of tube 3 and/or package 2 eventually contacting the filled in pourable food product. In other words, second layer 8 defines an internal surface of web 4 and/or initial web 5 and, in particular first layer 7 defines an outer surface of web 4, opposite to the internal surface. In use, the internal surface gets into and/or is in contact with the pourable product during filling of tube 3.
(15) In a preferred non-limiting embodiment, web 4 also comprises a sealing strip 11 of heat-seal plastic material applied and/or fused onto initial web 5. In particular, at least a portion of sealing strip 11 is applied to and/or fused onto at least a portion of the internal surface of initial web 5, even more particular onto a portion of second layer 8, preferentially in the area of one edge of initial web 5 (in particular the edge of initial web 5 which will, after formation of tube 3 (and/or packages 2) be arranged within tube 3 (and/or packages 2).
(16) In particular, web 4 comprises sealing strip 11 so as to avoid that the packaging material may absorb the pourable product during or after the filling process.
(17) Furthermore, sealing strip 11 provides for an improved strength and improved gas barrier properties of the seam portion.
(18) According to the embodiment shown in
(19) Preferably but not necessarily, sealing strip 11 applied to initial web 5 presents a C-shaped cross-sectional profile with respect to a cross-sectional plane being transversal, in particular orthogonal, to a longitudinal axis of web 4 and/or with respect to a cross-sectional plane being transversal, in particular orthogonal to longitudinal axis A.
(20) A typical package 2 obtained by packaging machine 1 comprises a longitudinal seal portion and a pair of transversal sealing bands, in particular a transversal top sealing band and a transversal bottom sealing band.
(21) With particular reference to
(22) In a preferred non-limiting embodiment, packaging machine 1 also comprises an isolation chamber 22 extending along a respective longitudinal axis, in particular being parallel to axis A, even more particular having a vertical orientation, and delimiting an inner (aseptic) environment from an outer environment. Preferentially, isolation chamber 22 houses at least some portions of tube forming device 18 and sealing device 21 so that, in use, the formation and the longitudinal sealing of tube 3 occurs within isolation chamber 22 (i.e. within the isolated inner environment).
(23) In a preferred non-limiting embodiment, packaging machine 1 also comprises: a sterilization apparatus (not shown) for sterilizing at least a portion of web 4 at a sterilization station arranged upstream of tube forming station 17 along web advancement path P, in particular by a chemical sterilization (hydrogen peroxide) and/or physical sterilization (electron beam irradiation); a filling device 23 for filling tube 3 with the pourable product; and a package forming unit 24 configured to at least form and transversally seal tube 3, preferentially to also transversally cut tube 3, for obtaining packages 2, in particular during advancement of tube 3 along tube advancement path Q.
(24) In a preferred non-limiting embodiment, packaging machine 1 also comprises a magazine unit 25 configured to host initial web 5 and/or web 4 at a host station 26.
(25) In the specific example embodiment shown in
(26) In the specific example embodiment shown, packaging machine 1 also comprises a strip application unit 27 configured to apply sealing strip 11 onto initial web 5 at an application station 28. According to this non-limiting embodiment, conveying device 16 is configured to advance initial web 5 from host station 26 to application station 28 and web 4 from application station 28 to tube forming station 17. In this non-limiting embodiment, sealing strip 11 is applied onto initial web 5 during operation of packaging machine 1.
(27) In an alternative non-limiting embodiment not shown, magazine unit 25 could be configured to host a reel of web 4 and conveying device 16 is configured to advance web 4 from host station 26 to tube forming station 17. In other words, sealing strip 11 is applied to initial web 5 prior to operation of packaging machine 1, e.g. at a web production plant.
(28) In further detail, the sterilization apparatus is arranged upstream of isolation chamber 22 along path P so that, in use, web 4 is sterilized prior to web 4 being formed into tube 3.
(29) Preferentially, the sterilization apparatus is arranged downstream of magazine unit 25 and/or strip application unit 27 along path P.
(30) In particular, package forming unit 24 is arranged downstream of isolation chamber 22, tube forming device 18 and sealing device 21 along path Q.
(31) In more detail, conveying device 16 is configured to advance tube 3 and any intermediate of tube 3 in a manner known as such along path Q, in particular from tube forming station 17 through at least a portion of isolation chamber 22, in particular towards and at least partially through package forming unit 24.
(32) In particular, with intermediates of tube 3 any configuration of web 4 is meant prior to obtaining the tube structure and after folding of web 4 by tube forming device 18 has started. In other words, the intermediates of tube 3 are a result of the gradual folding of web 4 so as to obtain tube 3, in particular by overlapping the opposite first lateral edge 19 and second lateral edge 20 with one another.
(33) With particular reference to
(34) With particular reference to
(35) Preferentially but not necessarily, second lateral edge 20 is arranged within inner space 33 after formation of tube 3 (i.e. second lateral edge 20 is arranged at and/or defines an inner portion of tube 3 after formation of tube 3). In other words, second lateral edge 20 comes into contact with the pourable product after formation and filling of tube 3. In particular, first lateral edge 19 is arranged outside inner space 33 (i.e. first lateral edge 19 is arranged at and/or defines an outer portion of tube 3).
(36) In a preferred non-limiting embodiment, second lateral edge 20 comprises sealing strip 11. In other words, second lateral edge 20 comprises the edge of initial web 5 to which sealing strip 11 is applied and/or fused and sealing strip 11. Thus, in use, sealing strip 11 avoids that the lateral border of second lateral edge 20 gets into contact with the pourable product.
(37) More specifically, first lateral edge 19 comprises a respective internal outer surface 34 facing inner space 33 and a respective external outer surface 35 opposite (and parallel) to internal outer surface 34. Preferentially, internal outer surface 34 and external outer surface 35 are defined by respective portions of respectively second layer 8 and first layer 7 in the proximity of first lateral edge 19.
(38) More specifically, second lateral edge 20 comprises a respective internal outer surface 36 facing inner space 33 and a respective external outer surface 37 opposite (and parallel) to internal outer surface 36. Preferentially but not necessarily, internal outer surface 36 is defined by at least a portion of sealing strip 11 (this latter portion being applied and/or fused to a portion of the internal surface of web 4); and, in particular external outer surface 37 is defined by at least another portion of sealing strip 11 (this latter another portion being applied and/or fused to a portion of the outer surface of web 4).
(39) In particular, external outer surface 37 faces internal outer surface 34. According to the more detailed description further below, during the formation and longitudinal sealing of tube 3 external outer surface 37 and internal outer surface 34 become contacted and fused to one another.
(40) It should be mentioned that within the context of the present invention, the term “internal” refers to these surfaces, which face inner space 33 and the term “external” refers to these surfaces, which face away from inner space 33.
(41) With particular reference to
(42) With particular reference to
(43) In more detail, sealing device 21 comprises a heating unit 39 configured to (solely) directly heat the external outer surface 37, in particular without heating internal surface 34. In other words, heating unit 39 is configured such that, in use, internal outer surface 34 is (solely) heated through establishing contact between internal outer surface 34 and the directly heated external outer surface 37 and the transfer of thermal energy (heat) from external outer surface 37 to internal outer surface 34.
(44) In other words, in use, prior to establishing contact between external outer surface 37 and internal outer surface 34, the temperature of internal outer surface 34 is lower than the temperature of external outer surface 37.
(45) In a preferred non-limiting embodiment, in use, prior to establishing contact between external outer surface 37 and internal outer surface 34, the temperature of internal outer surface 34 is substantially identical to the ambient temperature (i.e. the temperature within the inner environment of isolation chamber 22).
(46) This is advantageous as the time needed for the cooling down of the seam portion is reduced as the heat is transferred from external outer surface 37 to internal outer surface 34. Furthermore, another advantage resides in a reduced overall needed energy consumption.
(47) Preferentially but not necessarily, heating unit 39 is arranged within isolation chamber 22.
(48) In a preferred non-limiting embodiment, heating unit 39 is configured to direct a stream of hot gas, in particular hot (sterile) air, onto external outer surface 37.
(49) Alternatively, heating unit 39 could be configured to heat external outer surface 37 by any heating means, e.g. a ray of laser light, by a plasma and/or by electron-beam irradiation.
(50) In particular, heating unit 39 is configured to heat external outer surface 37 to a temperature allowing to change the physical state of external outer surface and, in particular to allow the fusion of internal outer surface 34 and external outer surface 37 with one another.
(51) In a preferred non-limiting embodiment, sealing device 21 also comprises a pressing assembly configured to exert a mechanical force onto the seam portion for promoting the longitudinal sealing. Preferably but not necessarily, at least a portion of the pressing assembly is arranged on the forming ring assembly 38 arranged downstream of the other one along path Q.
(52) In a preferred non-limiting embodiment, package forming unit 24 comprises a plurality of complementary pairs of operative units (not shown and known as such) configured to at least shape and transversally seal, in particular also to transversally cut, tube 3 for defining and/or obtaining packages 2.
(53) In use, packaging machine 1 forms packages 2 filled with the pourable product.
(54) In more detail, operation of packaging machine 1 comprises at least the following steps: advancing web 4 along advancement path P; overlapping first lateral edge 19 with second lateral edge 20 for obtaining the longitudinal seam portion; and fusing at least internal outer surface 34 and external outer surface 37 with one another for longitudinally sealing the seam portion of tube 3.
(55) In a preferred non-limiting embodiment, operation of packaging machine 1 also comprises the step of applying sealing strip 11 to initial web 5 for obtaining web 4 and, preferentially but not necessarily also the step of advancing initial web 5, in particular from host station 26, to application station 28 at which sealing strip 11 is applied and/or fused to initial web 5 during the step of application.
(56) In a preferred non-limiting embodiment, operation of packaging machine 1 also comprises the steps of: sterilizing web 4 at the sterilization station, in particular being executed prior to the step of folding and the step of longitudinally sealing; filling tube 3 with the pourable product; advancing tube 3 along path Q; and obtaining single packages 2 from tube 3 by forming tube 3, transversally sealing tube 3 between successive packages 2 and, in particular transversally cutting tube 3 between successive packages 2 for obtaining single packages 2.
(57) In more detail, during the step of advancing web 4, conveying device 16 advances web 4 along path P to tube forming station 17 and, in particular from application station 28 or host station 26.
(58) Preferentially but not necessarily, during the step of advancing web 4, conveying device 16 advances web 4 through the sterilization station.
(59) In a preferred non-limiting embodiment, during the step of sterilizing web 4, at least a portion of web 4 is sterilized by chemical sterilization (e.g. by the application of hydrogen peroxide or by advancing through an hydrogen peroxide atmosphere or by advancing through an hydrogen peroxide bath) and/or by physical sterilization (e.g. by the application of a sterilization irradiation such as electromagnetic irradiation (UV light), electron beam irradiation, x-ray irradiation, gamma-ray irradiation, beta-ray irradiation).
(60) In a preferred non-limiting embodiment, during the step of filling tube 3, filling device 23 fills tube 3 with the pourable product, in particular the pourable product flows form the product storage tank through filling tube 32 into tube 3.
(61) In a preferred non-limiting embodiment, during the step of advancing tube 3, tube 3 advances towards and through at least a portion of package forming unit 24.
(62) In more detail, conveying device 16 advances tube 3 through a portion of isolation chamber 22 and into package forming unit 24.
(63) In a preferred non-limiting embodiment, during the step of obtaining single packages 2, the complementary pairs of operative units interact with the advancing tube 3 and shape and transversally seal, in particular also transversally cut, tube 3 for defining and/or obtaining single packages 2.
(64) In more detail, during the step of overlapping, web 4 is gradually folded into tube 3 by drawing closer and finally overlapping first lateral edge 19 and second lateral edge 20 with one another. In particular, the overlapping of first lateral edge 19 and second lateral edge 20 is determined and/or controlled by tube forming device 18, in particular by at least forming ring assemblies 38.
(65) Advantageously, during the step of overlapping, internal outer surface 34 and external outer surface 37 are brought into contact with one another.
(66) In more detail, during the step of overlapping, web 4 advances along path P and interacts with tube forming device 18, in particular with at least forming ring assemblies 38.
(67) Advantageously, the step of fusing, comprises at least the sub-steps of: directly heating external outer surface 37; and (solely) heating by contact internal outer surface 34 by establishing contact between internal outer surface 34 and the directly heated external outer surface 37.
(68) In particular, internal outer surface 34 is heated by contact with external outer surface 37 due to a transfer of thermal energy (heat) from external outer surface 37 to internal outer surface 34. In particular, in this way, internal outer surface 34 is subjected to a change of its temperature and therewith to a change of the physical state and/or phase of internal outer surface 34 solely upon contact with external outer surface 37. In other words, the thermal energy (heat) for fusing external outer surface 37 and internal outer surface 34 with one another results only from the directly heated external outer surface 37.
(69) Preferentially but not necessarily, prior to the sub-step of heating by contact, the temperature of internal outer surface 34 is lower than the temperature of external outer surface 37.
(70) In a preferred non-limiting embodiment, prior to the sub-step of heating by contact, the temperature of internal outer surface 34 is substantially equal to the ambient temperature (i.e. the temperature within the inner environment of isolation chamber 22).
(71) This is advantageous, as the time needed for cooling down of the seam portion and/or internal outer surface 34 and external outer surface 37 after the step of fusing is reduced with respect to the known approaches. This again results in a reduced critical time during which a collapse of the seam portion (i.e. opening and/or losing integrity during further advancement of tube 3) may occur.
(72) In the preferred non-limiting embodiment disclosed, internal outer surface 34 and external outer surface 37 are of heat-seal plastic material, in particular polyethylene.
(73) In the specific case shown in
(74) In the specific example of
(75) In more detail, during the sub-step of directly heating, heating unit 39 directly heats external outer surface 37.
(76) In particular, heating unit 39 directs a flow of a heated gas onto external outer surface 37 or, alternatively heating unit 39 heats external outer surface 37 by a ray of laser light, by a plasma, by electron-beam irradiation or a combination thereof.
(77) Preferentially but not necessarily, operation of packaging machine 1 also comprises a step of pressing, in particular executed after and/or during the step of fusing, during which a mechanical force is exerted on the seam portion, in particular by the pressing assembly, so as to further strengthen the sealed seam portion.
(78) In more detail, during the step of applying, the sealing strip 11 is applied onto initial web 5 at application station 28.
(79) Preferentially but not necessarily, during the step of applying, at least a portion of sealing strip 11 is applied, in particular fused, onto at least the internal surface of initial web 5. In the specific example disclosed in
(80) In particular, sealing strip 11 is applied to initial web 5 at second lateral edge 20.
(81) With reference to
(82) In particular, web 4′ differs from web 4 in how sealing strip 11 is applied and/or fused onto the respective initial web 5. In particular, a portion of sealing strip 11 is applied and/or fused onto the internal surface of initial web 5 (i.e. a portion of second layer 8 in the proximity of second lateral edge 20) and another portion of sealing strip 11 is, at least until the final formation of tube 3, free (it is a free portion; i.e. it is not applied and/or fused to initial web 5). In other words, a portion of sealing strip 11 is applied and/or fused onto initial web 5 and the another portion not being applied and/or fused protrudes away from initial web 5. After formation of tube 3 (and/or packages 2), sealing strip 11 presents a substantially S-like cross-sectional profile with respect to a cross-sectional plane being transversal, in particular orthogonal to longitudinal axis A.
(83) In the specific example shown in
(84) In use, during the sub-step of directly heating, the free portion of sealing strip 11 and the portion of first layer 7 in the proximity of second lateral edge 20 is directly heated and, subsequently, fused to internal outer surface 34.
(85) Preferentially but not necessarily, during the step of applying, only a portion of sealing strip 11 is applied and/or fused onto the internal surface of initial web 5.
(86) The advantages of packaging machine 1 and the method for forming tube 3 according to the present invention will be clear from the foregoing description.
(87) In particular, by directly heating only external outer surface 37 and heating internal outer surface 34 through contact with external outer surface 37 it is achieved that the cooling time of seam portion after sealing is reduced with respect to the known methods. This again means that the risk of a collapse of the seam portion after its longitudinal sealing is reduced during further advancement of tube 3.
(88) Another advantage resides in that the overall energy consumption for obtaining the sealed seam portion is reduced as only a limited portion of web 4 is heated.
(89) A further advantage resides in that the overall heating process during the longitudinal sealing of the seam portion is further increased.
(90) An even other advantage is that only surface portions of web 4 are heated. For example, when inductively heating a web of packaging material having e.g. an aluminum layer, the heat diffuses from the inner of web 4 towards and to the outside, leading to a limited control of the overall heating process and heating also portions of web 4 (e.g. second layer 8), which are not necessary for obtaining a good sealing of the seam portion.
(91) Clearly, changes may be made to packaging machine 1 and/or the method as described herein without, however, departing from the scope of protection as defined in the accompanying claims.
(92) In an alternative embodiment not shown, web 4 does not comprise sealing strip 11. In other words, web 4 is substantially identical to initial web 5. In such an alternative embodiment, external outer surface 37 is defined by a portion of first layer 7 in the proximity of second lateral edge 20. Accordingly, in use, the above-mentioned portion of first layer 7 is directly heated for allowing the fusion of external outer surface 37 and internal outer surface 34 to one another.