Thermoplastic-based building panel comprising a balancing layer
11725398 · 2023-08-15
Assignee
Inventors
Cpc classification
E04F2201/042
FIXED CONSTRUCTIONS
B32B27/304
PERFORMING OPERATIONS; TRANSPORTING
B32B27/302
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
E04F2203/04
FIXED CONSTRUCTIONS
B32B2250/246
PERFORMING OPERATIONS; TRANSPORTING
B32B2264/104
PERFORMING OPERATIONS; TRANSPORTING
B32B3/06
PERFORMING OPERATIONS; TRANSPORTING
B32B3/263
PERFORMING OPERATIONS; TRANSPORTING
E04F2201/0547
FIXED CONSTRUCTIONS
E04F2203/08
FIXED CONSTRUCTIONS
B32B9/02
PERFORMING OPERATIONS; TRANSPORTING
E04F15/02038
FIXED CONSTRUCTIONS
E04F2201/0153
FIXED CONSTRUCTIONS
B32B21/14
PERFORMING OPERATIONS; TRANSPORTING
E04F15/107
FIXED CONSTRUCTIONS
B32B7/02
PERFORMING OPERATIONS; TRANSPORTING
B32B27/308
PERFORMING OPERATIONS; TRANSPORTING
E04F15/105
FIXED CONSTRUCTIONS
B32B2307/4026
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
B32B27/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
E04B2/00
FIXED CONSTRUCTIONS
B32B27/20
PERFORMING OPERATIONS; TRANSPORTING
B32B27/30
PERFORMING OPERATIONS; TRANSPORTING
B32B3/06
PERFORMING OPERATIONS; TRANSPORTING
E04F15/02
FIXED CONSTRUCTIONS
Abstract
A thermoplastic-based building panel, such as a floor panel. The building panel includes an upper layer arrangement, a lower layer arrangement, and a balancing layer provided between the lower and the upper layer arrangement. The building panel further includes a groove arrangement including grooves. A thermoplastic-based building panel including an upper layer arrangement and a balancing layer which is a bottom layer of the building panel. The building panel includes a groove arrangement, wherein a major portion of the grooves therein is provided in the balancing layer only. A thermoplastic-based building panel including a mechanical locking system for horizontally and/or vertically locking the building panel to an adjacent building panel. The mechanical locking system includes a cooperating surface which is situated in a balancing layer and is configured to cooperate with a cooperating surface of an adjacent building panel.
Claims
1. A thermoplastic-based building panel having a reduced weight and/or a reduced material content, comprising: an upper layer arrangement comprising thermoplastic polymer and, optionally, a filler, the upper layer arrangement comprising at least one upper layer, a lower layer arrangement comprising thermoplastic polymer and, optionally, a filler, the lower layer arrangement comprising at least one lower layer, and a balancing layer comprising thermoplastic polymer and, optionally, a filler, the balancing layer being provided between said lower layer arrangement and said upper layer arrangement, wherein the building panel further comprises a groove arrangement comprising at least one groove, a groove depth of the at least one groove being larger than 20% of a thickness of the building panel, wherein the groove arrangement is provided in the lower layer arrangement, wherein at least one of the at least one groove is provided entirely below the balancing layer, and wherein the groove arrangement is post-formed after forming the panel per se by removing material from a bottom layer of the building panel.
2. The building panel according to claim 1, wherein the at least one groove is provided in a rear side of the lower layer arrangement.
3. The building panel according to claim 1, wherein a groove depth of the at least one groove is larger than 20% of a thickness of the lower layer arrangement.
4. The building panel according to claim 1, wherein a groove depth of the at least one groove is larger than 30% of a thickness of the building panel.
5. The building panel according to claim 1, wherein a major portion of said at least one groove are provided entirely below the balancing layer.
6. The building panel according to claim 1, wherein the at least one groove comprises a plurality of grooves in the lower layer arrangement, wherein an innermost portion of at least one groove is separated from the balancing layer by a distance in the vertical direction of the building panel.
7. The building panel according to claim 1, wherein a thickness of the balancing layer is at least 10% of a thickness of the building panel.
8. The building panel according to claim 1, wherein a thickness of the balancing layer is larger than a thickness of an upper layer of the upper layer arrangement.
9. The building panel according to claim 1, wherein the balancing layer is a continuous layer.
10. The building panel according to claim 1, wherein an amount of thermoplastic polymer in the balancing layer is higher than an amount of thermoplastic polymer in the upper and/or lower layer arrangement.
11. The building panel according to claim 1, wherein each of said at least one upper layer comprises thermoplastic polymer and, optionally, a filler and/or wherein each of said at least one lower layer comprises thermoplastic polymer and, optionally, a filler.
12. The building panel according to claim 1, wherein the at least one groove includes at least one opening at a bottom-facing surface of the building panel.
13. The building panel according to claim 1, wherein the at least one groove is bounded by a panel portion located below the at least one groove.
14. The building panel according to claim 1, wherein the balancing layer at least partially extends through a locking element provided on a strip and/or through a locking groove, the locking element being configured to engage with the locking groove of said adjacent building panel for horizontal locking.
15. The building panel according to claim 14, wherein the first cooperating surface is situated on the locking element and/or in the locking groove.
16. The building panel according to claim 1, wherein the balancing layer at least partially extends along a strip, and wherein an uppermost surface of the strip comprises a portion of the balancing layer.
17. The building panel according to claim 1, wherein the balancing layer at least partially extends through a tongue portion, the tongue portion being configured to engage with a tongue groove of the adjacent building panel for vertical locking.
18. The building panel according to claim 17, wherein the first cooperating surface is situated on the tongue portion.
19. The building panel according to claim 1, wherein the first cooperating surface is a locking surface configured to engage with a locking surface of the adjacent building panel in a locked state of the building panel and the adjacent building panel.
20. The building panel according to claim 1, wherein the first cooperating surface is a guiding surface configured to guide the adjacent building panel during locking of the building panel to the adjacent building panel.
21. The building panel according to claim 1, wherein an entirety of the groove arrangement is provided only in the lower layer arrangement.
22. The building panel according to claim 1, wherein the balancing layer is thinner than the upper layer arrangement.
23. The building panel according to claim 1, wherein the balancing layer is thinner than the lower layer arrangement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure will in the following be described in connection to exemplary embodiments and in greater detail with reference to the appended exemplary drawings, wherein:
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DETAILED DESCRIPTION
(17) The various aspects of the disclosure will hereinafter be described with respect to a thermoplastic-based floor panel, but an ordinarily skilled artisan will appreciate that, within the scope of the present disclosure, they are applicable for a general building panel, such as a wall panel, a ceiling panel or a furniture panel. Therefore, in the following, reference will often be made simply to a panel.
(18)
(19) The upper layer arrangement 2 may comprise a wear layer and/or a print layer. The wear layer may be the uppermost layer 2a.
(20) In some embodiments, the upper 2 and/or the lower 3 layer arrangement may be laminated to the balancing layer 4. In turn, at least some upper layers and/or lower layers may be laminated to each other. For example, the upper layer(s), the lower layer(s), and the balancing layer may be provided as sheets or may be provided on rolls and may be laminated to each other under heat and pressure. The sheets may be stacked on top of each other and, for example, may be laminated to each other in a hot press or a multi-daylight static press. The layers provided on rolls may be laminated to each other in a continuous process. In some embodiments, the balancing layer may be (co-)extruded with at least one upper and/or lower layer, such as with all upper and lower layers except for the wear layer and/or the print layer.
(21) As shown in, e.g., the embodiments in
(22) However, as shown in the embodiment in
(23) The balancing layer 4 may be at least partly provided above the groove arrangement 10. Thereby, the balancing layer may be continuous. This is illustrated, e.g., in the embodiments in
(24) It is also conceivable that all grooves 11 entirely penetrate the balancing layer as shown in the embodiment in
(25) As shown, e.g., in the embodiments in
(26) It is also conceivable that the balancing layer 4 may have a varying thickness T4 along a first X and/or a second Y horizontal direction of the panel. For example, as shown in, e.g.,
(27) The major portion may be at least 50% of the number of grooves and/or at least 50% of the total volume TV of the grooves. The total volume TV of the grooves 11 provided in the rear side 5 may be a volume occupied by the grooves within the panel, e.g., defined by internal walls 11b of the grooves, and being limited by a horizontal plane HP provided along the rear side, see, e.g.,
(28) Generally, a groove depth GD of the grooves 11 may be larger than 20%, such as larger than 30% or even larger than 40%, of a thickness T3 of the lower layer arrangement 3. In some embodiments, the groove depth GD may be larger than 20%, such as larger than 30% or larger than 40%, of a thickness T1 of the panel.
(29) As shown in the embodiments in
(30) As illustrated in, e.g.,
(31) Generally for the first aspect, the thickness T4 of the balancing layer 4 may be at least 5%, such as at least 10% or at least 20%, of the thickness T1 of the panel. Alternatively, or additionally, a combined thickness TL of the lower layer arrangement 3 and the balancing layer 4, may be at least 20%, such as at least 35% or at least 50%, of a thickness T1 of the panel.
(32) Moreover, the thickness T4 of the balancing layer may be larger than a thickness TU of an upper layer. For example, said upper layer may be an uppermost layer 2a, such as the wear layer. This is illustrated in, e.g.,
(33)
(34)
(35) A major portion of the grooves are provided in the balancing layer 4 only. At least 50% of a total volume TV of the grooves may be provided in the balancing layer only. Such a scenario is shown in the non-limiting embodiment in
(36) Embodiments of the upper layer arrangement 2 of the second aspect may be the same as for the first aspect, whereby reference is made to those parts of the disclosure.
(37) In some embodiments, the upper layer arrangement 2 may be laminated to the balancing layer 4. In turn, at least some upper layers may be laminated to each other. For example, the upper layer(s) and the balancing layer may be provided as sheets or may be provided on rolls and may be laminated to each other under heat and pressure. The sheets may be stacked on top of each other and, for example, may be laminated to each other in a hot press or a multi-daylight static press. The layers provided on rolls may be laminated to each other in a continuous process. In some embodiments, the balancing layer may be coextruded with at least one upper layer, such as with all upper layers except for the wear layer and/or the print layer.
(38) As shown in the embodiments in
(39) For example, the grooves may be post-formed or pre-formed as described in relation to the first aspect. As shown in
(40) All of the grooves 11 may be provided in the balancing layer 4 only as shown, e.g., in the embodiments in
(41) Generally herein for the first, second and third aspects, the grooves 11 may be provided inside all of the edge portions 1a-1d of the panel along a first X and a second Y horizontal direction, see, e.g.,
(42) The balancing layer 4 may have a varying thickness T4 along a first X and/or a second Y horizontal direction of the panel, for example by having grooves 11 provided at least partly in the balancing layer. The embodiments in, e.g.,
(43) As shown in, e.g.,
(44) In some embodiments, and as shown in
(45) Generally for the second aspect, the thickness T4 of the balancing layer 4 may be at least 20%, such as at least 35% or at least 50%, of a thickness T1 of the panel.
(46) A groove depth GD of the grooves 11 may be larger than 20%, such as larger than 30% or even larger than 40%, of a thickness T4 of the balancing layer 4. In some embodiments, the groove depth GD may be larger than 20%, such as larger than 30% or larger than 40%, of a thickness T1 of the panel.
(47) The embodiments in, e.g.,
(48) In some embodiments of the first and second aspects, the groove depth GD of the grooves 11 are essentially the same, see, e.g.,
(49) As illustrated in, e.g.,
(50) Optionally, and as illustrated in
(51) The upper layer arrangement 2 in any of the embodiments of the first and second aspects, for example any of those in
(52) Furthermore, the balancing layer 4 in any of the embodiments of the first and second aspects, for example any of those in
(53) The panel 1 in any of the embodiments in
(54)
(55) Any of the panels disclosed herein, such as those in any of
(56) The panel 1 may be configured to be locked to the adjacent similar panel 1′ on the edge portions, such as the long 1a, 1b and short 1c, 1d edge portions, by angling A and/or by a vertical displacement V with respect to each other.
(57) Generally, the mechanical locking system 20 of each of the panels 1, 1′ may comprise at least one cooperating surface 21, preferably at least one locking surface 22, 23 and/or at least one guiding surface 24, 25. The at least one cooperating surface 21 may be provided in an edge portion or in opposite edge portions, such as a short 1c, 1d and/or a long 1a, 1b edge portion. An ordinarily skilled artisan will appreciate that, within the scope of the present disclosure, the cooperating surface 21 may be a first cooperating surface provided in a first edge portion, such as a long 1a, 1b or a short 1c, 1d edge portion, and that the mechanical locking system may further comprise a second cooperating surface 21 provided in a second opposite edge portion, such as a short 1c, 1d or a long 1a, 1b edge portion. The second cooperating surface 21 may be at least partially situated in the balancing layer 4.
(58) In some embodiments, the panels 1, 1′ may be formed by providing the upper layer(s) 2a, 2b, 2c, 2d and the balancing layer 4 as sheets or on rolls which then are laminated to each other under heat and pressure. Where applicable, such as in the first aspect, also the lower layer(s) 3a, 3b may optionally be provided as sheets or on rolls and may be laminated to each other and the other layers of the panel under heat and pressure. Alternatively to the above, the balancing layer may be coextruded with at least one upper and/or lower layer. In any of these scenarios, before forming the mechanical locking system in the panels 1, 1′, the balancing layer 4 may extend into the edge portion(s) 1a-1d of the panels, see e.g.
(59) The embodiments in, e.g.,
(60) The embodiments in, e.g.,
(61) As shown in e.g.
(62) The balancing layer 4 may at least partially extend along the strip 6, 6′, such as along an upper portion of the strip. For example, the balancing layer 4 may extend along a part of, or the entire, upward facing surface(s) of the strip 6, 6′. As shown in, e.g.,
(63) As shown in, e.g.,
(64) Furthermore, the mechanical locking system 20 of the panel 1, such as on the long 1a, 1b and/or short 1c, 1d edge portions, may comprise a tongue portion 9, 9′ configured to engage with a tongue groove 7, 7′ of the adjacent panel 1′ for vertical locking. The balancing layer 4 may at least partially extend through the tongue portion 9, such as through a lower portion of the tongue portion. As illustrated in, e.g.,
(65) As shown in, e.g.,
(66) The cooperating surface 21, such as a locking surface and/or guiding surface, of the adjacent panel 1′ may be a general cooperating surface provided at the edge portion. Optionally, however, it may be at least partially situated in the balancing layer 4 of the adjacent panel 1′. In a first example, and as shown in, e.g.,
(67) It is emphasized that the roles of the panel 1 and the adjacent panel 1′ described herein may be interchanged.
(68) In a first example, and as illustrated in, e.g.,
(69) In a second example, and as illustrated in, e.g.,
(70) An ordinarily skilled artisan will appreciate that, within the scope of the present disclosure, in some embodiments, the mechanical locking system 20 comprises a cooperating surface 21 at least partially situated in the balancing layer 4 and, in addition, comprises a cooperating surface 21 only provided in the upper 2 and/or lower 3 layer arrangement.
(71) It is yet again stressed that the groove arrangement 10 is optional with respect to the third aspect. Indeed, the embodiments in, e.g.,
(72) In some embodiments, and as illustrated in
(73) TABLE-US-00001 TABLE 1 Embodiments of layer combinations in the first aspect A1 A2 A3 A4 A5 Upper layer L1 U1 L1 U1 L1 Balancing layer L3 L3 L3 U2 U2 Lower layer L1 U1 E1 U1 E1
(74) TABLE-US-00002 TABLE 2 Embodiments of layer combinations in the first aspect B1 B2 B3 B4 B5 First upper layer L2 U2 L2 L2 U2 Second upper layer L1 U1 U1 L1 U1 Balancing layer L3 U2 L3 L3 U2 Lower layer L1 U1 U1 E1 E1
(75) TABLE-US-00003 TABLE 3 Embodiments of layer combinations in the second aspect C1 C2 C3 C4 Upper layer L1 U1 L1 U1 Balancing layer L3 L3 U2 U2
(76) TABLE-US-00004 TABLE 4 Embodiments of layer combinations in the second aspect D1 D2 D3 D4 D5 D6 First upper layer L2 L1 L1 L1 U1 U2 Second upper layer L1 E1 U1 E1 E1 U1 Balancing layer L3 L3 L3 U2 U2 U2
(77) TABLE-US-00005 TABLE 5 Examples of material compositions in the first and second aspects PVC CaCO.sub.3 Plasticizer Additives Foaming agent (wt %) (wt %) (wt %) (wt %) (wt %) L1 10-35 60-90 2-20 0.5-10.0 0-3 L2 20-50 40-80 2-20 0.5-10.0 0-3 L3 30-70 20-70 2-20 0.5-10.0 0-3 U1 10-40 60-85 0-5 0.5-10.0 0-3 U2 20-50 40-70 0-5 0.5-10.0 0-3 E1 30-60 40-60 0-5 0.5-10.0 0.1-5.0
(78) Tables 1 and 2 illustrate non-limiting embodiments, respectively, of layer combinations A1, . . . , A5 and B1, . . . , B5 of the first aspect that are conceivable for any of the panels in, e.g.,
(79) Non-limiting examples of material compositions L1-L3, U1, U2 and E1 of upper layers, lower layers and the balancing layer—specified in weight percentages (wt %)—are shown in Table 5. These material compositions may be applied to any of the layer combinations in Tables 1-4.
(80) In some embodiments, the upper layer(s) and the balancing layer may comprise different material compositions, cf. A1-A5, B1, B3-B4, C1-C4 and D1-D5. Moreover, in some embodiments, an upper layer and the balancing layer may comprise a substantially similar material composition, cf. B2, B5 and D6. In some embodiments of the first aspect, the upper layer(s) and the lower layer, may comprise different material compositions, cf. A3, A5 and B4-B5. In some embodiments, however, an upper layer and a lower layer may comprise a substantially similar material composition, cf. A1, A2, A4 and B1-B3. In any of these embodiments, the thicknesses of the layers having a substantially similar material composition may be different.
(81) In accordance with a fourth aspect of the disclosure, a panel assembly comprises a building panel and an adjacent building panel, wherein the building panel and/or the adjacent building panel may be embodied as the building panel according to any of the embodiments and examples of the first, second and third aspects. Examples of a panel assembly according to the fourth aspect are shown being assembled in
(82) Aspects of the disclosure have mainly been described above with reference to a few embodiments. However, as would be readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the disclosure, as defined by the appended patent claims and items in an embodiment section below. For instance, in any embodiment herein, and as schematically illustrated in
Examples
(83) The following examples further describe and demonstrate embodiments within the scope of the present disclosure. The examples are given solely for the purpose of illustration and are not to be construed as limitations of the present disclosure, as many variations thereof are possible without departing from the spirit and scope of the disclosure.
(84) To test the curling effect of the panels in accordance with the first aspect, the following measurements were conducted utilizing an Indicator Method on each of a set of samples S1, S2 and S3, each sample having horizontal dimensions 160×160 mm. These samples are represented in
(85) The compositions COM1, COM2 and WL0 were used in the samples. Specified in weight percentages, COM1 comprised 16.92% PVC (Norvinyl™ S5745), 76.14% CaCO.sub.3 (Greenafiller™ 0-100), 0.34% stabilizer (Baerostab™ CT 1228 R), 0.08% lubricant (Baerolub™ PA Special), 6.43% plasticizer (Eastman™ 168) and 0.08% black pigments. Moreover, COM2 comprised 37.04% PVC (Norvinyl™ S5745), 50.00% CaCO.sub.3 (Greenafiller™ 0-100), 0.74% stabilizer (Baerostab™ CT 1228 R), 0.19% lubricant (Baerolub™ PA Special), 11.85% plasticizer (Eastman™ 168) and 0.19% red pigments. WL0 comprised additives and a plasticizer and 75 wt % of PVC. The thicknesses of the layers of the samples, the total thickness of the samples and the groove depths GD are specified in millimetres in Table 6 and the material compositions of the layered structures are specified in Table 7. Each of the samples S1, S2 and S3 comprised a wear layer comprising additives and a plasticizer and 75 wt % of PVC and, additionally, a print layer comprising a PVC and white pigments and having a thickness of 0.04 mm.
(86) TABLE-US-00006 TABLE 6 Sample data Wear Upper Balancing Lower Total Groove Layer Layer Layer Layer Thickness Depths Sample (mm) (mm) (mm) (mm) (mm) (mm) S1 0.54 3.60 0.93 — 5.1 1.90-2.01 S2 0.56 1.92 0.92 1.99 5.4 1.95-2.02 S3 0.54 1.93 0.99 1.89 5.4 1.91-1.98 S4 0.56 3.73 1.31 — 5.66 2.03 S5 0.57 1.85 1.20 2.01 5.69 1.99 S6 0.52 4.00 0.98 — 5.56 1.71-1.78 S7 0.52 3.01 2.00 — 5.66 1.74-1.75 S8 0.55 1.94 3.38 — 5.93 1.76-1.82
(87) Measurements were conducted for each of the samples S1, S2 and S3 by using an indicator device 30 schematically illustrated in a side view in
(88)
(89) TABLE-US-00007 TABLE 7 Material compositions and test results of the samples Upper Balancing Lower Δz.sub.12(X) Δz.sub.12(Y) Sample Layer Layer Layer (mm) (mm) S1 COM1 COM2 — −0.40 −0.42 S2 COM1 COM2 COM1 −0.24 −0.09 S3 COM1 WL0 COM1 −0.14 −0.02
(90) More specifically, the abutment portions 31 abutted the sample along the centre line CX at a distance of 5 mm from the edges of the sample and the displaceable indicator 34 engaged with a centre point C0 of the sample, see
(91) The sample was then heated to a temperature of 80° C. and was maintained at that temperature for six hours. Thereafter, the sample was acclimatized to a temperature of 22° C. for 24 hours. After acclimatization of the sample the vertical deviations Δz(X) and Δz(Y) were remeasured using the same approach as described above for obtaining the values Δz.sub.2(X) and Δz.sub.2(Y). The measured differences Δz.sub.12(X)=Δz.sub.1(X)−Δz.sub.2(X) and Δz.sub.12(Y)=Δz.sub.1(Y)−Δz.sub.2(Y) are summarized in Table 7. It may be seen that, as compared to the sample S1, the curling effect significantly decreased along the first X and second Y horizontal directions for S2 and S3 as a result of displacing the balancing layer in accordance with the first aspect.
(92) The curling effect was also tested on a sample S5 in accordance with the first aspect and samples S7 and S8 in accordance with the second aspect.
(93) The curling effect was tested using the standard ISO 23999:2018, with the modification that each sample S4-S8 had a size of 160×160 mm (instead of 229×229 mm). The compositions COM1 (specified above), COM3 and COM4 were used in the samples. Specified in weight percentages, COM3 comprised 56.34% PVC (Norvinyl™ S5745), 28.17% CaCO.sub.3 (Greenafiller™ 0-100), 1.13% stabilizer (Baerostab™ CT 1228 R), 0.28% lubricant (Baerolub™ PA Special) and 14.08% plasticizer (Eastman™ 168) and COM4 comprised 37.11% PVC (Norvinyl™ S5745), 50.09% CaCO.sub.3 (Greenafiller™ 0-100), 0.74% stabilizer (Baerostab™ CT 1228 R), 0.19% lubricant (Baerolub™ PA Special) and 11.87% plasticizer (Eastman™ 168).
(94) The thicknesses and the groove depths GD of S4-S8 specified in mm are summarized in Table 6 and the material compositions are specified in Table 8. Each of the samples S4-S8 comprised a PVC wear layer and a print film comprising PVC having a thickness of about 0.60 mm and 0.06 mm, respectively. The measured differences Δz.sub.12(X) and Δz.sub.12(Y) using the Indicator Method as well as the mean value for curling using ISO 23999:2018 are summarized in Table 8 in mm. It may be seen that, as compared to the sample S4, the curling effect of S5 (first aspect) decreased using both tests. In particular, Δz.sub.12(Y) significantly decreased. Moreover, as compared to the sample S6, the curling effect of S7 and S8 (second aspect) decreased significantly using both tests.
(95) TABLE-US-00008 TABLE 8 Material compositions and test results of the samples Upper Balancing Lower Δz.sub.12(X) Δz.sub.12(Y) ISO 23999 Sample Layer Layer Layer (mm) (mm) (mm) S4 COM1 COM3 — 0.26 0.70 1.11 S5 COM1 COM3 COM1 0.25 0.13 0.44 S6 COM1 COM4 — 0.47 0.72 0.99 S7 COM1 COM4 — 0.29 0.46 0.46 S8 COM1 COM4 — 0.14 0.13 0.049
(96) TABLE-US-00009 TABLE 9 Material compositions and sample data GD Sample UL1 UL2 BL LL (mm) Q1 COM4; 1.0 COM6; 3.0 COM4; 1.0 — 1.7 Q2 COM4; 1.0 COM6; 1.0 COM4; 1.0 COM6; 2.0 1.6 Q3 COM5; 1.0 COM6; 3.0 COM5; 1.0 — 2.0 Q4 COM5; 1.0 COM6; 1.0 COM5; 1.0 COM6; 2.0 2.0
(97) A pair of samples Q2 and Q4 in accordance with the first aspect were tested with respect to residual indentation by means of the standard ASTM F1914-18 (product specification ASTM F1700). The resilient sample Q2 and the rigid sample Q4 were compared to reference samples Q1 and Q3, respectively, which had a similar layer composition, but were not provided with a lower layer LL present in Q2 and Q4. Each sample Q1-Q4 had two upper layers UL1, UL2, a balancing layer BL and horizontal dimensions 50×50 mm. The grooves in Q2 and Q4 were provided in the lower layer only and the grooves in Q1 and Q3 were fully penetrating the balancing layer BL provided as a bottom layer. An IXPE foam having a thickness of 1.5 mm was used as an underlay, thereby covering the grooves.
(98) The compositions COM4 (specified above), COM5 and COM6 were used in the samples. Specified in weight percentages, COM5 comprised 37.59% PVC (Norvinyl™ S6261), 56.38% CaCO.sub.3 (Greenafiller™ 0-100), 0.21% pigments (Printex™ Carbon Black), 3.76% stabilizer (Baerostab™ CT 1229 P), 0.28% processing aid and lubricant (Baerocid™ SMS 1A), 0.28% lubricant (Baerolub™ PA 200), 1.13% impact modifier (Addstrength™ CPE-3516) and 0.38% impact modifier (Kane Ace™ B580) and COM6 comprised 27.32% PVC (Norvinyl™ S6261), 68.30% CaCO.sub.3 (Greenafiller™ 0-100), 0.15% pigments (Printex™ Carbon Black), 2.73% stabilizer (Baerostab™ CT 1229 P), 0.20% processing aid and lubricant (Baerocid™ SMS 1A), 0.20% lubricant (Baerolub™ PA 200), 0.82% impact modifier (Addstrength™ CPE-3516) and 0.27% impact modifier (Kane Ace™ B580).
(99) The material compositions, the layer thicknesses (in mm) and the groove depths GD (in mm) of Q1-Q4 are specified in Table 9. Both of the samples Q1 and Q3 were broken in the test, while the samples Q2 and Q4 resulted in a residual indentation of 2.896% and 1.390%, respectively. Hence, it may be concluded that the sample properties concerning residual indentation was significantly improved when the balancing layer was sandwiched between the upper and lower layer arrangements.
(100) It is noted that similar results may be deduced for the second aspect. Indeed, by analogy, an ordinarily skilled artisan would expect a more intact bottom layer (lower layer or balancing layer) comprising grooves to perform better with regards to residual indentation.
Illustrative Embodiments
(101) Further aspects of the disclosure are provided below. Embodiments, examples etc. of these aspects are largely analogous to the embodiments, examples, etc. as described above, whereby reference is made to the above for a detailed description.
(102) Item 1. A thermoplastic-based building panel (1), such as a floor panel, comprising: an upper layer arrangement (2) comprising at least one upper layer (2a, 2b, 2c), a lower layer arrangement (3) comprising at least one lower layer (3a, 3b), and a balancing layer (4) being provided between said lower layer arrangement and said upper layer arrangement,
wherein the building panel further comprises a groove arrangement (10) comprising at least one groove (11), preferably a plurality of grooves.
(103) Item 2. The building panel according to item 1, wherein the groove arrangement is provided in the lower layer arrangement (3).
(104) Item 3. The building panel according to item 1 or 2, wherein the at least one groove (11) is provided in a rear side (5) of the lower layer arrangement (3), preferably in a bottom layer (5′) thereof.
(105) Item 4. The building panel according to any of the preceding items, wherein a groove depth (GD), preferably a maximal groove depth, of the at least one groove is larger than 20%, such as larger than 30% or larger than 40%, of a thickness (T3) of the lower layer arrangement (3) and/or of a thickness (T1) of the building panel.
(106) Item 5. The building panel according to any of the preceding items, wherein a major portion of said grooves are provided entirely below the balancing layer.
(107) Item 6. The building panel according to any of the preceding items, comprising a plurality of grooves in the lower layer arrangement, wherein an innermost portion (11a) of at least one groove is separated from the balancing layer (4) by a distance (Sa) in the vertical direction of the building panel.
(108) Item 7. The building panel according to any of the preceding items, wherein a combined thickness (TL), such as a maximal combined thickness, of the lower layer arrangement (3) and the balancing layer (4), is at least 20%, such as at least 35% or at least 50%, of a thickness (T1) of the building panel.
(109) Item 8. The building panel according to any of the preceding items, wherein a thickness (T4), such as a maximal thickness, of the balancing layer (4) is at least 5%, such as at least 10% or at least 20%, of a thickness (T1) of the building panel.
(110) Item 9. The building panel according to any of the preceding items, wherein a thickness (T4), such as a maximal thickness, of the balancing layer (4) is larger than a thickness (TU) of an upper layer of the upper layer arrangement, said upper layer preferably being an uppermost layer (2a) of the upper layer arrangement.
(111) Item 10. A thermoplastic-based building panel (1), such as a floor panel, comprising: an upper layer arrangement (2) comprising at least one upper layer (2a, 2b, 2c), and a balancing layer (4) being a bottom layer (5′) of the building panel,
wherein the building panel further comprises a groove arrangement (10) comprising a plurality of grooves (11), a major portion of said grooves being provided in the balancing layer only.
(112) Item 11. The building panel according to item 10, wherein all of said grooves are provided in the balancing layer only.
(113) Item 12. The building panel according to item 10 or 11, wherein said grooves are provided in a rear side (4a) of the balancing layer.
(114) Item 13. The building panel according to any of the preceding items 10-12, wherein said major portion comprises a major portion of a total volume (TV) of the grooves and/or a major portion of a total number of grooves.
(115) Item 14. The building panel according to any of the preceding items 10-13, wherein a thickness (T4), such as a maximal thickness, of the balancing layer is larger than a thickness (TU) of an upper layer of the upper layer arrangement, said upper layer preferably being an uppermost layer (2a) of the upper layer arrangement.
(116) Item 15. The building panel according to any of the preceding items 10-14, wherein a thickness (T4), such as a maximal thickness, of the balancing layer (4) is at least 20%, such as at least 35% or at least 50%, of a thickness (T1) of the building panel.
(117) Item 16. The building panel according to any of the preceding items 10-15, comprising a plurality of grooves in the balancing layer, wherein an innermost portion (11a) of at least one groove is separated from the upper layer arrangement by a distance (Sb) in the vertical direction of the building panel.
(118) Item 17. The building panel according to any of the preceding items 10-16, wherein a groove depth (GD) of the groove(s) is larger than 20%, such as larger than 30% or larger than 40%, of a thickness (T4) of the balancing layer and/or of a thickness (T1) of the building panel, such as floor panel.
(119) Item 18. The building panel according to any of the preceding items 1-17, comprising a plurality of grooves, wherein a groove depth (GD), preferably a maximal groove depth, of at least two grooves are different.
(120) Item 19. The building panel according to any of the preceding items 1-18, wherein the balancing layer is a continuous layer.
(121) Item 20. The building panel according to any of the preceding items 1-19, comprising at least one reinforcement element, such as a glass-fibre layer.
(122) Item 21. The building panel according to any of the preceding items 1-20, further comprising a mechanical locking system (20) in an edge portion (1a, 1b; 1c, 1d) for horizontally and/or vertically locking the building panel to an adjacent building panel.
(123) Item 22. The building panel according to any of the preceding items 1-21, further comprising a mechanical locking system (20) according to item 23 or any of the items 26-38.
(124) Item 23. A thermoplastic-based building panel (1; 1′), such as a floor panel, comprising: an upper layer arrangement (2) and/or a lower layer arrangement (3), a balancing layer (4) comprising a thermoplastic polymer, and a mechanical locking system (20) for horizontally and/or vertically locking the building panel (1; 1′) to an adjacent building panel (1′; 1), the mechanical locking system comprising a cooperating surface (21) provided in an edge portion (1a, 1b; 1c, 1d) of the building panel (1; 1′) and being configured to cooperate with a cooperating surface (21) of the adjacent building panel (1′; 1),
wherein the cooperating surface (21) of the mechanical locking system (20) is at least partially situated in the balancing layer.
(125) Item 24. The building panel according to item 23, wherein the balancing layer is provided between said lower layer arrangement (3) and said upper layer arrangement (2).
(126) Item 25. The building panel according to item 23, wherein the balancing layer is a bottom layer (5′) of the building panel.
(127) Item 26. The building panel according to any of the preceding items 23-25, wherein the balancing layer at least partially extends through a locking element (8; 8′) provided on a strip (6; 6′) and/or through a locking groove (14; 14′) the locking element being configured to engage with the locking groove of said adjacent building panel (1′) for horizontal locking.
(128) Item 27. The building panel according to item 26, wherein the cooperating surface is situated on the locking element (8; 8′) and/or in the locking groove (14; 14′).
(129) Item 28. The building panel according to item 26 or 27, wherein an uppermost surface (8a; 8a′) of the locking element comprises a portion of the balancing layer, said cooperating surface preferably being provided in the uppermost surface.
(130) Item 29. The building panel according to any of the preceding items 23-28, wherein the balancing layer at least partially extends along a strip (6; 6′), such as along an upper portion of the strip.
(131) Item 30. The building panel according to item 29, wherein an uppermost surface (6a; 6a′) of the strip comprises a portion of the balancing layer, said cooperating surface (21) preferably being provided in the uppermost surface (6a; 6a′).
(132) Item 31. The building panel according to any of the preceding items 23-30, wherein the balancing layer at least partially extends through a tongue portion (9; 9′), such as through a lower portion of the tongue portion, the tongue portion being configured to engage with a tongue groove (7; 7′) of the adjacent building panel for vertical locking.
(133) Item 32. The building panel according to item 31, wherein the cooperating surface is situated on the tongue portion (9; 9′).
(134) Item 33. The building panel according to item 31 or 32, wherein a lowermost surface (9a; 9a′) of the tongue portion comprises a portion of the balancing layer, said cooperating surface preferably being provided in the lowermost surface.
(135) Item 34. The building panel according to any of the preceding items 23-33, wherein the cooperating surface (21) is a first cooperating surface provided in a first edge portion (1a, 1b; 1c, 1d) of the building panel and wherein the mechanical locking system further comprises a second cooperating surface provided in a second edge portion (1c, 1d; 1a, 1b) of the building panel, the first and second edge portions preferably being oppositely arranged on the building panel, wherein the second cooperating surface is at least partially situated in the balancing layer (4).
(136) Item 35. The building panel according to any of the preceding items 23-34, wherein the cooperating surface (21) is a locking surface (22; 23) configured to engage with a locking surface (23; 22) of the adjacent building panel in a locked state of the building panel and the adjacent building panel.
(137) Item 36. The building panel according to any of the preceding items 23-35, wherein the cooperating surface (21) is a guiding surface (24; 25) configured to guide the adjacent building panel during locking of the building panel to the adjacent building panel, such as by cooperating or engaging with a cooperating surface (21), such as a guiding surface (25; 24), of the adjacent building panel during locking.
(138) Item 37. The building panel according to any of the preceding items 23-36, wherein the building panel further comprises a groove arrangement (10) comprising at least one groove (11), preferably a plurality of grooves.
(139) Item 38. The building panel according to any of the preceding items 23-37, wherein the building panel and the adjacent building panel are configured to be locked to each other by angling and/or a relative vertical displacement of the building panels towards each other.
(140) Item 39. The building panel according to any of the preceding items 1-38, wherein the upper layer arrangement (2), such as each of said at least one upper layer, comprises a thermoplastic polymer and, optionally, a filler.
(141) Item 40. The building panel according to any of the preceding items 1-39, wherein the upper layer arrangement comprises a wear layer (2a) and/or a print layer (2b), such as a print film.
(142) Item 41. The building panel according to any of the preceding items 1-40, wherein the balancing layer (4) comprises a thermoplastic polymer and, optionally, a filler.
(143) Item 42. The building panel according to any of the preceding items 1-41, wherein the lower layer arrangement (3), such as each of said at least one lower layer, comprises a thermoplastic polymer and, optionally, a filler.
(144) Item 43. The building panel according to any of the preceding items 1-42, wherein an amount of a thermoplastic polymer in the balancing layer is higher than an amount of a thermoplastic polymer in the upper and/or lower layer arrangement.
(145) Item 44. The building panel according to any of the preceding items 1-43, wherein at least one upper and/or lower layer of said building panel is extruded, such as coextruded.
(146) Item 45. The building panel according to any of the preceding items 1-22 or 37-44, wherein the groove arrangement (10) is post-formed after forming the panel (1) per se, preferably by removing material from a bottom layer (5′) of the panel.
(147) Item 46. The building panel according to any of the preceding items 1-9 or 37-45, wherein an average groove depth (GA) of a plurality of grooves (11) is smaller than a thickness (T3) of the lower layer arrangement.
(148) Item 47. The building panel according to any of the preceding items 10-22 or 37-45, wherein an average groove depth (GA) of a plurality of grooves (11) is smaller than a thickness (T4) of the balancing layer.
(149) Item 48. The building panel according to any of the preceding claims, comprising a groove arrangement (10) comprising at least one groove (11), wherein the at least one groove (11) includes at least one opening at a bottom-facing surface of the building panel (1).
(150) Item 49. The building panel according to any of the preceding claims, comprising a groove arrangement (10) comprising at least one groove (11), wherein the at least one groove (11) is bounded by a panel portion located below the at least one groove (11).
(151) Item 50. The building panel according to item 35, wherein the locking surface (22) includes an upward-facing horizontal recessed portion of the cooperating surface (21).
(152) Item 51. The building panel according to item 50, wherein the upward-facing horizontal recessed portion is a surface of the balancing layer (4).
(153) Item 52. Panel assembly comprising a building panel (1) and an adjacent building panel (1′), wherein the building panel and/or the adjacent building panel is embodied as the building panel according to any of the preceding items 1-51.