EXPANDABLE SELF-WATERING PLANTER
20210059137 ยท 2021-03-04
Assignee
Inventors
Cpc classification
A01G27/06
HUMAN NECESSITIES
A01G27/02
HUMAN NECESSITIES
International classification
A01G27/06
HUMAN NECESSITIES
Abstract
An improved insulating performance fabric has a double-knit body, formed with traditional, relatively smooth, outer surfaces, and an inner surface with the form of multiple fabric bubbles separated, e.g., by a grid pattern of intersecting grooves. An insulating, double-knit performance fabric of this disclosure may also be found in the form of a garment comprising the insulating, double knit performance fabric, or in the form of fabric article comprising the insulating, double knit performance fabric, etc.
Claims
1. A planter comprising: an upper compartment for holding growth medium, the upper compartment comprising one or more side walls and a floor; a lower compartment located under the upper compartment for holding water, the lower compartment comprising one or more side walls, a floor and optionally a ceiling; a wicking member extending within the upper compartment and within the lower compartment; and two or more dividers, which are removably held within the upper compartment to separate the upper compartment into three or more zones.
2. The planter according to claim 1, wherein the dividers are substantially parallel to each other and substantially facing each other.
3. The planter according to claim 2, wherein two dividers defining an innermost zone comprise on facing major surfaces thereof channels, protrusions and/or ridges to receive two secondary dividers to define a smaller central zone within the upper compartment.
4. The planter according to claim 1, wherein the floor of the upper compartment and the ceiling of the lower compartment is a single layer barrier between the upper and lower compartments.
5. The planter according to claim 1, wherein an opening is present in the floor of the upper compartment, an opening is present in the ceiling of the lower compartment; and the wicking member passes through both openings.
6. The planter according to claim 5, wherein the wicking member substantially fills the opening.
7. The planter according to claim 5, wherein a sealing material is present with the wicking member in the opening of the upper compartment to substantially fill the opening.
8. The planter according to claim 1, which comprises a plurality of wicking members.
9. The planter according to claim 8, wherein each zone within the upper compartment defined by the two or more dividers comprises one or more wicking members.
10. The planter according to claim 1, wherein the one or more side walls of the upper compartment comprise channels, ridges or protrusions to removably accommodate one of the two or more dividers.
11. The planter according to claim 10, wherein the floor of the upper compartment comprises one or more channels, ridges or protrusions that align with the channels, ridges or protrusions in the one or more side walls to removably accommodate a bottom edge of one of the two or more dividers.
12. The planter according to claim 1, further comprising an aerator operatively connected to the lower compartment to inject a gas into the lower compartment.
13. The planter according to claim 12, wherein the lower compartment comprises an opening or pressure release valve to maintain atmospheric pressure within the lower compartment when the aerator is functioning.
14. The planter according to claim 1, wherein the lower compartment comprises a port for adding water thereto.
15. The planter according to claim 1, wherein the lower compartment comprises a water gauge to visually indicate the water level therein.
16. A commercial package for a planter, comprising: a first container for holding growth medium, a second container for holding water, and two or more dividers; and wherein the first container has a floor and one or more side-walls, the second container has a floor, one or more side-walls and optionally a ceiling, and wherein the first and second containers i) are arranged such that the first container is above the second container, or ii) are adapted to permit the first container to durably rest above the lower container; wherein the two or more dividers are sized to fit in the first container to create three or more zones therein; and wherein a) an opening is present in the floor of the first container and/or in the optional ceiling of the second container to accommodate a wicking member, orb) a scored portion is defined in the floor of the first container and/or in the optional ceiling of the second container, which scored portion may be removed to form an opening to accommodate a wicking member.
17. The commercial package for a planter according to claim 16, wherein the first and second containers form a unitary structure.
18. The commercial package for a planter according to claim 16, which further comprises three or more wicking members.
Description
DESCRIPTION OF DRAWINGS
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[0024] Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION
[0025] The invention of the present disclosure, shown, e.g., in
[0026] In response, this application introduces POLARTEC Power Air synthetic fabric material 100 (see, e.g.
[0027] In addition, the fabric platform of the POLARTEC Power Air fabric product creates entirely new categories of performance knits. These performance knits are designed to provide a wearer with relatively more warmth, and less shedding of microfibers, thereby giving any outerwear application of the POLARTEC Power Air fabric products even wider design versatility, and with a negative impact (i.e. undesirable shedding of microfibers) that has been reduced more than ever before. POLARTEC Power Air fabric products thus hold more than just heat.
[0028] In one embodiment, the opposite exterior surfaces 110, 112 of the POLARTEC Power Air fabric 100 are smooth and soft, while the respective opposed surfaces 114, 116 of the interior construction have the form of a symmetrical grid pattern of air pockets 106, which are found to provide enhanced encapsulation of fibers and microfibers. In certain embodiments, the grid pattern of air pockets may include spaces between the air pockets 106. The POLARTEC Power Air fabric 100 is thus recognized as holding more than just heat, and provides a number of particular features and advantages. These include, for example, high warmth-to-weight ratio. They also include shedding of 5 times (i.e., 5) less microfibers, e.g., as compared to fleece fabrics of similar utility and/or insulation performance. The POLARTEC Power Air fabric is also versatile in a range of design applications, including with smooth (outer) faces 110, 112 for easy layering. The disclosed fabrics, in preferred embodiments, also exhibit, e.g., lasting durability, resistance to pilling, and/or high breathability.
[0029] Also, by engineering a way to markedly enhance encapsulation of synthetic lofted microfibers 118, POLARTEC Power Air fabrics are changing how insulating fabrics will perform over their lifetimes or how the insulating fabrics will retain their performance and thereby increase their longevity. This new fabric construction thus encases lofted fibers 118 within self-contained air pockets 106. In certain implementations, the lofted fibers 118 are positioned in the air pocket randomly and/or are floating within the air pocket. The air pockets 106 capture and release warm air, while gaining added strength and support from the surrounding knit structure. The structure 106 also serves as a barrier, which prevents loose microfibers from shedding into the environment. The two distinctly contrasting surfaces 106 and 112 of the POLARTEC Power Air fabric 100 provide markedly wider design versatility, e.g., as compared to most other insulation fabrics. Finally, the symmetrical grid interior 114, 116 holds warmth, while the opposite smooth surfaces 110, 112 reduce surface drag, thereby to reduce or prevent pilling, and to allow easy layering with other materials.
[0030] The components 100 and 102 are stitched together in accordance with particular implementations. The components 100 and 102 are stitched together in a manner that reduces and/or avoids stitching within the inlay (i.e. the air pockets 106 containing the lofted fibers 118) to prevent the lofted fibers 118 from being trapped or causing them to protrude through the exterior surfaces 110, 112. In certain implementations, the air pockets 106 along the edge of the fabric or adjacent to stitching are provided with less lofted fibers 118 than other air pockets away from an edge or not adjacent to stitching securing the components 100 and 102 together to reduce and/or eliminate trapping of lofted fibers and thereby prevent and/or reduce lofted fibers from protruding through the exterior surfaces 110, 112.
[0031] For example, referring again to
[0032] In use, a representative POLARTEC Power Air fabric product is well suited for use in cold weather conditions and activities, such as outdoor training, mountain trekking, in urban environments, and is base installations, etc. In can also reduce, or even make unnecessary, the putting on and removing of layers, i.e., as often necessary for maintaining comfort, e.g. in changing conditions and/or during varying degrees of exertion. The improved, POLARTEC Power Air insulating fabric 10 has a double-knit body 12, formed with a first, traditional, relatively smooth outside surface 14 and relatively high loft, grid (or gridded) inside surface 16. POLARTEC Power Air insulating fabric 10 is a double (weft) knit fabric designed in such a way as to create a composite, three-layer construction, including, but not limited to, relatively flat, smooth outer face surfaces 14, an outer backside surface 16 with generally hemispherical or somewhat irregular geometric-like raised areas 17 (
[0033] The double-knit bubbles 18 and air spaces 20 of the inside surface 16 of the POLARTEC Power Air fabric 10 provide an insulating air space equivalent to traditional brushed grid fabric. However, the POLARTEC Power Air insulating, double-knit fabric is manufactured without a brushing step, which can at least diminish the breaking of fibers, to eliminate (or at least reduce) microfiber pollution, and also to reduce fiber loss in washing, with resultant corresponding reduction in insulation performance. The result is reduction, or elimination, of fiber pollution in wastewater from washing. Additionally, there is a significant reduction in the production of waste fibers during manufacturing with the elimination of mechanical lifting via brushing or knapping.
[0034] The design and construction of the improved POLARTEC Power Air double-knit fabric 10 of the disclosure replaces the middle layer of a brushed grid fabric.
[0035] The POLARTEC Power Air fabric, provided in different gradients, in order to encourage advantageous movement of moisture through the body of the fabric, or the insulating fabric, may be formed of polypropylene yams (recognized as a good water carrier, i.e., polypropylene does not hold moisture), or yarns of these or other materials, alone or in blend(s), may also be employed.
[0036] In some embodiments, the outer surface of at least some yarns forming the fabric POLARTEC Power Air insulating, double-knit fabric may define channels, e.g. the yarn has a star-shape outer surface contour 24 (see
[0037] The POLARTEC Power Air insulating, double-knit fabric may be used, e.g., in insulating outdoor performance apparel to provide a significantly reduced propensity to shed microfibers during the life of the garment, while providing optimum comfort for the wearer. The processing of this fabric excludes the use of mechanical brushing or napping devices to increase insulation value of the material for use in outdoor apparel. Referring to
[0038] Other performance features incorporated into the POLARTEC Power Air insulating double-knit fabric include: thermal insulating properties (measured as Clo value) achieved by using fibers types and cross-sections that optimize thermal insulation efficiency with minimal added fabric weight. Also, moisture migration properties and fabric moisture retention are managed in a manner to maximize comfort by utilization of fibers with cross-sections that promote accelerated dry times and moisture vapor transport rate. In particular embodiment, the lofted fibers can be formed (e.g. geometrically or materially) to have a particular gradient (e.g., denier) that causes moisture to flow in a particular direction. In addition, pockets of air that add insulation value and air movement (measured as air permeability) for moisture management are created through the integration of alternating raised surfaces 17 (
[0039] Martindale abrasion/pilling rating). Finally, fiber treatments comprised of silicon emulsions are incorporated to modify fiber orientation within the raised fabric structure and increase air volume, in certain implementations.
[0040] The POLARTEC Power Air fabrics thus provide multiple desired qualities that may be described and summarized, for example, as one or more of: Warm more. Shed Less; Air Powered Design; Holds More Than Heat; It's Time to Get Knit-Picky; Want to catch more than just Air?; Harness Your Heat; Put Some Power in Your Insulation; Regulate Heat. Reduce Impact; The Power of Air, etc.
[0041] As shown in the examples of
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[0044] The solid knit layers 1201 and 1202 form a denier gradient, in particular implementations. In certain implementations the knit layers 1201 and 1202 have a finer denier than the lofted fibers 1203, which assist with moving the water from one layer 1202, which may be adjacent to a user's skin, to the lofted fibers 1203 and then to the knit layer 1201 without retaining the water or moister in the encapsulated lofted fibers 1203. Alternatively or additionally, the knit layers 1201 and 1202 may have a different denier with respect to one another. In certain implementations, the regions of lofted fibers 1203 are configured in a grid array where spaces separate each region from each other region. As demonstrated in
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[0046] While various embodiments show the air/lofted microfiber encapsulation pockets in a rectangular or square grid, various embodiments can include other geometries, which can include constant or varying pocket sizes. For example, the air/fiber encapsulation pockets of lofted fibers may be larger and/or thicker in a certain region of the fabric than in another region.
[0047] A number of embodiments of the invention are described above. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the invention. For example, synthetic materials described above may be employed in industrial products, such as rubber tires, plastics, etc. Accordingly, other embodiments are within the scope of the following claims.