Inflatable bed with mesh-shaped inclined diaphragm
12082702 ยท 2024-09-10
Assignee
Inventors
Cpc classification
A47C27/087
HUMAN NECESSITIES
International classification
Abstract
An inflatable bed with a mesh-shaped inclined diaphragm includes a side panel, the mesh-shaped inclined diaphragm and two face layers symmetrically arranged, a first end of the side panel is connected to a periphery of a first face layer of the two face layers, a second end of the side panel is connected to a periphery of a second face layer of the two face layers, a first end of the mesh-shaped inclined diaphragm is connected to the side panel, and a second end of the mesh-shaped inclined diaphragm is connected to one of the two face layers.
Claims
1. An inflatable bed with a mesh-shaped inclined diaphragm, comprising a side panel and two face layers symmetrically arranged, a first end of the side panel is connected to a periphery of a first face layer of the two face layers, a second end of the side panel is connected to a periphery of a second face layer of the two face layers, wherein the inflatable bed with a mesh-shaped inclined diaphragm further comprises the mesh-shaped inclined diaphragm, a first end of the mesh-shaped inclined diaphragm is connected to the side panel, and a second end of the mesh-shaped inclined diaphragm is connected to one of the two face layers; wherein the inflatable bed with a mesh-shaped inclined diaphragm further comprises a first reinforcing sheet, the first reinforcing sheet is connected to an inner surface of the side panel, and a first lateral edge of the mesh-shaped inclined diaphragm is arranged between the first reinforcing sheet and the inner surface of the side panel; wherein the inflatable bed with a mesh-shaped inclined diaphragm further comprises a second reinforcing sheet, the second reinforcing sheet is connected to an inner surface of a respective one of the two face layers, and a second lateral edge of the mesh-shaped inclined diaphragm is arranged between the second reinforcing sheet and the inner surface of the respective one of the two face layers.
2. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 1, wherein a quantity of the mesh-shaped inclined diaphragm is one.
3. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 1, wherein the inflatable bed with a mesh-shaped inclined diaphragm further comprises a second mesh-shaped inclined diaphragm, the second end of the mesh-shaped inclined diaphragm is connected to the first face layer, a first end of the second mesh-shaped inclined diaphragm is connected to the side panel, and a second end of the second mesh-shaped inclined diaphragm is connected to the second face layer.
4. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 1, wherein at least one of the side panel or the two face layers is provided with an inflating and deflating assembly.
5. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 1, wherein a mesh-hole density of the mesh-shaped inclined diaphragm is 10-1000 mesh-holes/dm.sup.2.
6. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 1, wherein the mesh-shaped inclined diaphragm is made by cutting a mesh woven by a modified polyester fiber.
7. The inflatable bed with a mesh-shaped inclined diaphragm according to claim 6, wherein the modified polyester fiber is made by melting and spinning modified polyester fiber masterbatch, the modified polyester fiber masterbatch is made of the following raw materials in parts by weight: 55-70 parts of a polyester masterbatch, 8-12 parts of a polyamide-6, 5-8 parts of an ethylene-methyl acrylate copolymer, 3-6 parts of a nano silica, 1-3 parts of a nano zinc oxide, and 2-3 parts of a cation dispersant.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(20) The present application is further described in detail below in combination with
(21) An inflatable bed with a mesh-shaped inclined diaphragm is disclosed.
Example 1
(22) Referring to
(23) Furthermore, the connection of the mesh-shaped inclined diaphragm 3 is as follows. The top edge of the mesh-shaped inclined diaphragm 3 is bent towards the face layer 2 at the top of the side panel 1 or at the bottom of the side panel 1, the field between the bent crease line and the top edge of the mesh-shaped inclined diaphragm 3 is the connection of the mesh-shaped inclined diaphragm 3, and the connection is parallel to the side panel 1. Similarly, the bottom edge of the mesh-shaped inclined diaphragm 3 is bent towards the center of the face layer 2 at the bottom of the side panel 1, or towards the periphery of the face layer 2 at the bottom of the side panel 1, the field between the bent crease line and the bottom edge of the mesh-shaped inclined diaphragm 3 is the connection of the bottom edge of the mesh-shaped inclined diaphragm 3, and the connection is parallel to the face layer 2.
(24) The vertical drawing strap 5 can be a sheet-shaped vertical drawing strap 5 extending along the width direction of the inflatable bed as shown in
(25) Referring to
(26) Referring to
(27) The implement principle of Example 1 is as follows: the mesh is formed by weaving elastic or inelastic fibers, then a mesh-shaped inclined diaphragm 3 is obtained by cutting according to the required breadth. The top edge of the mesh-shaped inclined diaphragm 3 is covered on and connected to the inner surface of the side panel 1 by means of the first reinforcing sheet 31, such that the top edge of the mesh-shaped inclined diaphragm 3 is fixed between the first reinforcing sheet 31 and the inner surface of the side panel 1. Similarly, the bottom edge of the mesh-shaped inclined diaphragm 3 is fixed between the second reinforcing sheet 32 and the inner surface of the face layer 2 at the bottom of the side panel 1, such that the mesh-shaped inclined diaphragm 3 is connected to the side panel 1 and the face layers 2. Then one end of each of the plurality of vertical drawing straps 5 is melted and connected to the inner surface of one face layer 2 while the other end thereof is melted and connected to the inner surface of the other face layer 2. Finally, the top edge of the side panel 1 is melted and connected to the periphery of one face layer 2, and the bottom edge of the side panel 1 is melted and connected to the periphery of the other face layer 2, thereby obtaining the inflatable bed with mesh-shaped inclined diaphragm 3 at the bottom thereof.
Example 2
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(29) Furthermore, the connection of the mesh-shaped vertical drawing strap 5 to the face layer 2 is:
(30) (1) When the mesh-shaped vertical drawing strap 5 is a sheet-shaped mesh, the top and the bottom of the mesh-shaped drawing strap 5 are both connected to the face layers 2, and the top and the bottom of the mesh-shaped vertical drawing strap 5 are both bent in the direction towards the same side (as shown in
(31) (2) When the mesh-shaped vertical drawing strap 5 is the elliptical mesh-shaped vertical drawing strap 5 formed by connecting the two ends of the strap-shaped mesh end to end, and the elliptical lateral side of the elliptical mesh-shaped vertical drawing strap 5 is parallel to the horizontal plane, the elliptical lateral sides at the top and the bottom of the mesh-shaped vertical drawing strap 5 are both bent in the direction towards the same side (as shown in
(32) (3) when the mesh-shaped vertical drawing strap 5 is the elliptical mesh-shaped vertical drawing strap 5 formed by connecting the two ends of the strap-shaped mesh end to end, and the elliptical lateral side of the elliptical mesh-shaped vertical drawing strap 5 is perpendicular to the horizontal plane, the field of the elliptical mesh-shaped vertical drawing strap 5 in the breadth direction connected to the inner surface of the face layer 2 is the connection between the mesh-shaped vertical drawing strap 5 and the third reinforcing sheet 51, which represents the form of linear connecting strip, or hollow rectangular connecting frame or solid rectangular connecting zone (as shown in
(33) In the case that the connection represents a linear connecting strip in above (3), as shown in
(34) In the case that the connection represents a hollow rectangular connecting frame in above (3), as shown in
(35) In the case that the connection represents a solid rectangular connection zone in above (3), as shown in
(36) Preferably, the mesh-hole density of the mesh-shaped vertical drawing strap 5 is 10-200 mesh-holes/dm.sup.2, and specifically, can be 10 mesh-holes/dm.sup.2, 30 mesh-holes/dm.sup.2, 50 mesh-holes/dm.sup.2, 80 mesh-holes/dm.sup.2, 100 mesh-holes/dm.sup.2, 120 mesh-holes/dm.sup.2, 150 mesh-holes/dm.sup.2, 180 mesh-holes/dm.sup.2, 200 mesh-holes/dm.sup.2, 250 mesh-holes/dm.sup.2, 300 mesh-holes/dm.sup.2, 350 mesh-holes/dm.sup.2, 400 mesh-holes/dm.sup.2, 450 mesh-holes/dm.sup.2, 500 mesh-holes/dm.sup.2, 550 mesh-holes/dm.sup.2, 600 mesh-holes/dm.sup.2, 650 mesh-holes/dm.sup.2, 700 mesh-holes/dm.sup.2, 750 mesh-holes/dm.sup.2, 800 mesh-holes/dm.sup.2, 850 mesh-holes/dm.sup.2, 900 mesh-holes/dm.sup.2, 950 mesh-holes/dm.sup.2, 1000 mesh-holes/dm.sup.2 and etc., which all fall in the scope of the present application.
(37) The mesh-shaped inclined diaphragm 3 is illustrated by taking a sheet-shaped mesh as an example for the mesh-shaped vertical drawing strap 5 of the present example, however the inflatable bed with mesh-shaped inclined diaphragm 3 at the bottom in the present example is provided with such mesh-shaped vertical drawing strap, that includes but is not limited to mesh-shaped vertical drawing straps 5 extending along the width direction of the inflatable bed, mesh-shaped vertical drawing straps 5 extending along the length direction of the inflatable bed, lateral-connected strap-shaped vertical drawing straps 5 extending along the width direction of the inflatable bed, lateral-connected strap-shaped vertical drawing straps 5 extending along the length direction of the inflatable bed, breadth-connected strap-shaped vertical drawing straps 5 extending along the breadth direction of the inflatable bed, breadth-connected strap-shaped vertical drawing straps 5 extending along the length direction of the inflatable bed.
(38) The implement principle of example 2 differs from that of example 1 in that when the mesh-shaped inclined diaphragm 3 is connected to the side panel 1 and the face layers 2, the connection of one side of the mesh-shaped vertical drawing strap 5 is covered on and connected to the inner surface of one face layer 2 by means of the third reinforcing sheet 51, the connection of the one side of the mesh-shaped vertical drawing strap 5 is fixed between the third reinforcing sheet 51 and the inner surface of the face layer 2. Similarly, the connection of the other side of the mesh-shaped vertical drawing strap 5 is fixed between another third reinforcing sheet 51 and the inner surface of the other face layer 2, and the connection between the mesh-shaped vertical drawing strap 5 and two face layers 2 is achieved.
Example 3
(39) Referring to
(40) The implement principle of example 3 is different from that of example 1 in that the top edge of the mesh-shaped inclined diaphragm 3 is covered on and connected to the inner surface of the face layer 2 by means of the second reinforcing sheet 32, such that the top edge of the mesh-shaped inclined diaphragm 3 is fixed between the second reinforcing sheet 32 and the inner surface of the face layer 2 at the top of the side panel 1. Similarly, the bottom edge of the mesh-shaped inclined diaphragm 3 is fixed between the first reinforcing sheet 31 and the inner surface of the side panel 1. The connection between the mesh-shaped inclined diaphragm 3 and the side panel 1 and the face layer 2 are completed, thereby obtaining the inflatable bed with mesh-shaped inclined diaphragm 3 at the top thereof.
Example 4
(41) Referring to
(42) The implement principle of example 4 is different from that of example 3 in that the connection of one side of the mesh-shaped vertical drawing strap 5 is covered on and connected to the inner surface of one face layer 2 through the third reinforcing sheet 51 while connecting the mesh-shaped inclined diaphragm 3 to the side panel 1 and the face layer 2, such that the connection of the one side of the mesh-shaped vertical drawing strap 5 is fixed between the third reinforcing sheet 51 and the inner surface of the face layer 2; similarly, the connection of the other side of the mesh-shaped vertical drawing strap 5 is fixed between the other third reinforcing sheet 51 and the inner surface of the other face layer 2, thereby completing the connection between the mesh-shaped vertical drawing strap 5 and two face layers 2.
Example 5
(43) Referring to
(44) The implement principle of example 5 is different from example 1 in that the top edge of the other mesh-shaped inclined diaphragm 3 is covered on and connected to the inner surface of the face layer 2 by the second reinforcing sheet 32 while connecting one mesh-shaped inclined diaphragm 3 to the side panel 1 and the face layer 2 at the top of the side panel 1, such that the top edge of the mesh-shaped inclined diaphragm 3 is fixed between the second reinforcing sheet 32 and the inner surface of the face layer 2 at the top of the side panel 1; similarly, the bottom edge of the mesh-shaped inclined diaphragm 3 is fixed between the first reinforcing sheet 31 and the inner surface of the side panel 1, thereby completing the connection of the mesh-shaped inclined diaphragm 3 to the side panel 1 and the face layer 2, and obtaining the inflatable bed with mesh-shaped inclined diaphragm 3 with mesh-shaped inclined diaphragms 3 both at the top and at the bottom thereof.
Example 6
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(46) The implement principle of example 6 is different from that of example 5 in that the connection of one side of the mesh-shaped vertical drawing strap 5 is covered on and connected to the inner surface of one face layer 2 by the third reinforcing sheet 51 while connecting the mesh-shaped inclined diaphragm 3 to the side panel 1 and the face layer 2, such that the connection of the one side of the mesh-shaped vertical drawing strap 5 is fixed between the third reinforcing sheet 51 and the inner surface of the face layer 2; similarly, the connection of the other side of the mesh-shaped vertical drawing strap 5 is fixed between the other third reinforcing sheet 51 and the inner surface of the other face layer 2, thereby completing the connection of the mesh-shaped vertical drawing strap 5 to the two face layers 2.
Example 7
(47) This example differs from Example 6 in that the above mesh-shaped vertical drawing strap 5 and mesh-shaped inclined diaphragm 3 were both made by cutting the mesh woven by modified polyester fiber, the modified polyester fiber was prepared by melting and spinning the modified polyester fiber masterbatch, and furthermore, the modified polyester fiber masterbatch was prepared by the following steps: 0.3 kg of nano silica, 0.3 kg of nano zinc oxide were mixed uniformly, and were treated by microwave for 15 minutes at a power of 300 W; then 0.2 kg of cation dispersant (0.15 kg of Brominated 1-methyl-3-octylimidazolium salt, 0.05 kg of Dodecylpyridine hydrochloride) was added under stirring homogeneously, and then a treatment by microwave at a power of 300 W is continued for 8 minutes, so a dispersed material was prepared; 5.5 kg of polyester masterbatch, 1.0 kg of polyamide-6, 0.5 kg of ethylene-methyl acrylate copolymer were mixed, and heated to 150? C. under stirring, above dispersed material was added under stirring, and extruding and granulating were performed to obtain a modified polyester fiber masterbatch. In particular, the temperature of the extruding zone during extruding and granulating were as follows: the first zone was 155? C., the second zone was 170? C., the third zone was 185? C., the fourth zone was 200? C., and the fifth zone was 190? C.
(48) In particular, the particle size of the nano silica was 20-30 nm, the BET specific surface area of the nano silica was 100-120 m.sup.2/g; the size of the nano zinc oxide was 30-40 nm, the BET surface area of the nano zinc oxide was 50-80 m.sup.2/g.
(49) The modified polyester fiber was prepared by spinning of the modified polyester fiber masterbatch, and the spinning parameters were as follows:
(50) The spinning temperature was 295? C., the spinning speed was 2000 m/min, the drawing speed was 650 m/min, the spin-stretch ratio was 3, the side-blowing temperature was 22? C., the relative humidity of the supply air was 55%, the air speed was 0.3 m/s, and the stretching temperature was 65? C.
(51) In the present example, the source of the polyester masterbatch, the polyamide-6, the ethylene-methyl acrylate copolymer are shown in table 1:
(52) TABLE-US-00001 TABLE 1 source of the raw materials Name of the material Manufacturer Model/brand Polyester master batch Shanghai Huzheng PK20-PET Industrial Co., Ltd Polyamide-6 Dutch DSM K224-PG8 Ethylene-methyl acrylate American DuPont 1209 AC copolymer
(53) The raw materials in the above table were all specifically selected for the examples and comparative examples. However, in the actual production of the modified polyester fiber, the sources of the raw materials are not limited to the above models.
Examples 8-9
(54) These examples differed from example 7 in that: the usage amount of the raw materials and the process parameters were different, specifically shown in table 2:
(55) TABLE-US-00002 TABLE 2 raw materials, the usage amount and the process parameters of the modified polyester fiber masterbatch in Examples 7-9. Items Example 7 Example 8 Example 9 Nano silica (kg) 0.3 0.5 0.6 Nano zinc oxide (kg) 0.3 0.2 0.1 Power of the first treatment 300 350 400 by microwave/W Time of the first treatment by 15 12 10 microwave/min Cation Dispersant 0.15 kg of 0.18 kg of 0.2 kg of Brominated Brominated Brominated 1-methyl-3- 1-methyl-3- 1-methyl-3- octylimidazolium octylimidazolium octylimidazolium salt, 0.05 kg of salt, 0.07 kg of salt, 0.1 kg of Dodecylpyridine Dodecylpyridine Dodecylpyridine hydrochloride hydrochloride hydrochloride Power of the first treatment 300 350 400 by microwave/W Time of the first treatment by 8 5 3 microwave/min Polyester masterbatch (kg) 5.5 6.2 7.0 Polyamide-6 (kg) 1.0 1.2 0.8 Ethylene-methyl acrylate 0.5 0.8 0.6 copolymer (kg) Heating temperature under 150 150 155 stirring/? C. Temperature first zone/? C. 155 160 165 of extrusion second zone/? C. 170 175 180 granulation third zone/? C. 185 190 195 fourth zone/? C. 200 205 210 fifth zone/? C. 190 195 200
Example 10
(56) This example differed from above example 7 in that the preparation steps of the modified polyester fiber masterbatch are different, the specific steps are as follow: 0.3 kg of nano silica, 0.3 kg of nano zinc oxide and 0.2 kg of cation dispersant (0.15 kg of Brominated 1-methyl-3-octylimidazolium salt, 0.05 kg of Dodecylpyridine hydrochloride) were mixed uniformly to obtain a mixture; and 5.5 kg of polyester masterbatch, 1.0 kg of polyamide-6, 0.5 kg of ethylene-methyl acrylate copolymer were mixed, and heated to 150? C. under stirring, above mixture was added under stirring, and extruding and granulating were performed to obtain a modified polyester fiber masterbatch. In particular, the temperature of the extruding zone during extruding and granulating were as follows: the first zone: 155? C., the second zone: 170? C., the third zone: 185? C., the fourth zone: 200? C., and the fifth zone: 190? C.
Comparative Example 1
(57) The comparative example 1 differed from the above example 7 in that the polyamide-6 is replaced with the same usage amount of polyamide-66.
Comparative Example 2
(58) This Comparative example 2 differed from above example 7 in that the usage amount of polyamide-6 was 0.3 kg, and the usage amount of polyester masterbatch was 6.2 kg.
Comparative Example 3
(59) This Comparative example 3 differed from above example 7 in that the usage amount of polyamide-6 was 2.5 kg, and the usage amount of polyester masterbatch was 4 kg.
Comparative Example 4
(60) This comparative example 4 differed from above example 7 in that Nano silica is replaced with the same usage amount of Nano-TiO.sub.2.
Comparative Example 5
(61) This comparative example 5 differed from above example 7 in that the Cation Dispersant includes 0.15 kg of Brominated 1-methyl-3-octylimidazolium salt, 0.05 kg of Brominated 1-methyl-3-octylpyridinium salt.
(62) The raw materials and usage amount thereof in above Comparative examples 1-5 were shown in table 4:
(63) TABLE-US-00003 TABLE 4 raw materials and usage amount in Example 7 and Comparative examples 1-5 Compar- Compar- Compar- Compar- ative ative ative ative Example example example example example Comparative Items 7 1 2 3 4 example 5 Nano silica ( kg ) 0.3 0.3 0.3 0.3 / 0.3 Nano zinc oxide 0.3 0.3 0.3 0.3 0.3 0.3 ( kg ) Nano titanium / / / / 0.3 / dioxide ( kg ) Cation Dispersant 0.15 kg of Brominated 1-methyl- 0.15 kg of 3-octylimidazolium salt, 0.05 kg of Brominated Dodecylpyridine hydrochloride 1-methyl-3- octylimidazolium salt, 0.05 kg of Brominated 1-methyl-3- octylpyridinium salt Polyester 5.5 5.5 6.2 4 5.5 5.5 masterbatch (kg) Polyamide-6 (kg) 1.0 / 0.3 2.5 1.0 1.0 polyamide-66 (kg) / 1.0 / / / / Ethylene-methyl 0.5 0.5 0.5 0.5 0.5 0.5 acrylate copolymer (kg)
(64) The modified polyester fiber prepared in above Examples 7-10 and Comparative examples 1-5 were tested for the tensile strength, the elongation at fracture, the bending property. The mesh was further woven by the modified polyester fiber of corresponding examples and comparative examples (all were woven to be a mesh with a mesh-hole density of 200 mesh-holes/dm.sup.2), and the tensile strength of the corresponding mesh was tested. The test method and the test data were shown as follows:
(65) I. Test method
(66) (1) Tests of the tensile strength and elongation at fracture were tested according to GB/T14344-2008 testing method for tensile of man-made filament yarns. In particular, the gripper was moved at a speed of 250 mm/min; (2) Bending test: a modified polyester fiber was folded in half and compacted under a pressure of 3 atmospheres for 1 hour, to observe whether there was a crease at the folded portion of the modified polyester fiber; (3) Tests of the tensile strength of mesh: a mesh sample with a length of 50 cm and a width of 5 cm was cut, and tested for the tensile strength at a tensile speed of 50 mm/min.
II. Test results
(67) TABLE-US-00004 TABLE 5 performance of the modified polyester fiber and the mesh in Examples 7-10 and Comparative examples 1-5 Tensile strength of the Tensile fiber Tensile strength Elongation after strength of the at fracture Bending bending/ of the fiber/ of the situation (N/mm)/ mesh/ Items (N/mm) fiber/% of the fiber (N/mm) (N/mm) Example 7 6.9 45.32 No crease at the 6.6 28.23 folded portion Example 8 7.2 45.93 No crease at the 6.9 28.95 folded portion Example 9 7.3 46.04 No crease at the 7.1 29.25 folded portion Example 10 5.8 42.93 No crease at the 5 25.58 folded portion Comparative 6.4 44.98 There was a 5.5 25.96 example 1 crease at the folded portion, and an included angle was defined. Comparative 7.1 45.89 No crease at the 6.4 28.84 example 2 folded portion Comparative 6.3 44.68 There was a 5.6 26.83 example 3 crease at the folded portion, and an included angle was defined. Comparative 6.5 44.77 No crease at the 5.9 27.31 example 4 folded portion Comparative 6.4 45.07 There was a 5.9 27.75 example 5 crease at the folded portion, and an included angle was defined.
(68) According to above data, the modified polyester fiber prepared in the present application has a good flexibility and a good bending resistance, and is not easy to deform and can maintain a good tensile strength after bending. The mesh woven by the modified polyester fiber can be applied to be a mesh-shaped vertical drawing strap 5 and a mesh-shaped inclined diaphragm 3, such that a good connection and a good drawing stability of the inflatable bed can still be maintained after being deflated and folded for many times.
(69) Polyamide-6 is replaced with the same usage amount of Polyamide-66 in the comparative example 1, the tensile strength and the elongation at fracture of the modified polyester fiber prepared are both reduced, there is obvious crease at the folded portion after bending, and the tensile strength after bending is reduced. It can be seen that polyamide-6 is added into polyester masterbatch in the present application for modification, which can improve the tensile strength and flexibility of the modified polyester fiber, such that the modified polyester fiber has excellent flexibility, resistant bending and crease resistance.
(70) The usage amount of the polyamide-6 in Comparative example 2 was relatively low, the tensile strength and the elongation at fracture of the modified polyester fiber were increased a little, however, there was an obvious crease at the folded portion of the fiber, and the tensile strength of the modified polyester fiber after bending was decreased significantly. The usage amount of the polyamide-6 in Comparative example 3 was excessive, the tensile strength and the elongation at facture of the prepared modified polyester fiber were decreased compared with that of Example 7, probably because the polyamide-6 itself has a flexibility and an elasticity, which reduces the tensile strength of the polyester fiber when the usage amount thereof in the modified polyester fiber is excessive. This shows that through controlling of the usage amount of polyamide-6 and the polyester masterbatch the modified polyester fiber can possess a good tensile strength, a good flexibility, and a good crease resistance. When the modified polyester fiber is applied to the mesh-shaped vertical drawing strap and the mesh-shaped inclined diaphragm of the inflatable bed, the inflatable bed can maintain a good connection and drawing function after being deflated, folded and inflated for many times.
(71) Nano silica is replaces with the same usage amount of Nano-TiO.sub.2 in the comparative example, the tensile strength and the elongation at fracture of the modified polyester fiber prepared were both decreased, and the tensile strength of the mesh woven was decreased, either, which indicated that Nano-SiO.sub.2 and Nano-ZnO were added to the polyester masterbatch and the polyamide-6 in the present application, which can effectively improve the tensile strength and the flexibility of the polyester fiber, and further improve the tensile strength of the mesh woven.
(72) Two Bromonium Salts with Octyl Groups were added as dispersant in the Comparative example 5, the tensile strength and the elongation at fracture of the modified polyester fiber prepared were both decreased, and the tensile strength of the mesh woven was decreased, probably because Bromonium Salts with Octyl Groups was combined with Long chain alkane pyridine hydrochloride, to act as dispersant, in particular, the Bromonium Salts with Octyl Groups can be combined with negative charge of the Nanofillers, which improves the dispersity, however the long chain of the long chain alkane pyridine hydrochloride is similar to polymer, which further improves the dispersity and compatibility of the Nanofillers in the polymer, so that the prepared modified polyester fibers have excellent and uniform tensile strength and flexibility.
(73) The above are the preferred embodiments of the present application, which are not intended to limit the protection scope of the present application. Therefore, all equivalent changes made according to the structure, shape and principle of the present application should be covered within the protection scope of the present application.
LISTING OF REFERENCE SIGNS
(74) 1 side panel 2 face layer 3 mesh-shaped inclined diaphragm 31 first reinforcing sheet 32 second reinforcing sheet 41 inflating and deflating mouth 42 micropump for inflation and deflation 5 vertical drawing strap 51 third reinforcing sheet