WO1984004227A1 - Root control bag - Google Patents

Root control bag Download PDF

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Publication number
WO1984004227A1
WO1984004227A1 PCT/US1984/000600 US8400600W WO8404227A1 WO 1984004227 A1 WO1984004227 A1 WO 1984004227A1 US 8400600 W US8400600 W US 8400600W WO 8404227 A1 WO8404227 A1 WO 8404227A1
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WO
WIPO (PCT)
Prior art keywords
fabric
root
plant
bag
container
Prior art date
Application number
PCT/US1984/000600
Other languages
French (fr)
Inventor
Ralph E Reiger
Carl E Whitcomb
Original Assignee
Ralph E Reiger
Carl E Whitcomb
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ralph E Reiger, Carl E Whitcomb filed Critical Ralph E Reiger
Publication of WO1984004227A1 publication Critical patent/WO1984004227A1/en

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Classifications

    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G23/00Forestry
    • A01G23/02Transplanting, uprooting, felling or delimbing trees
    • A01G23/04Transplanting trees; Devices for grasping the root ball, e.g. stump forceps; Wrappings or packages for transporting trees
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G9/00Cultivation in receptacles, forcing-frames or greenhouses; Edging for beds, lawn or the like
    • A01G9/02Receptacles, e.g. flower-pots or boxes; Glasses for cultivating flowers
    • A01G9/029Receptacles for seedlings
    • A01G9/0291Planting receptacles specially adapted for remaining in the soil after planting

Definitions

  • This invention relates to a method of controlling plant root growth. More specifically, the invention relates to a method of growing plants in the field wherein the root growth is controlled by the presence of a porous plastic bag.
  • Page 8, line 25 has been amended to acknowledge that the plastic fabric bag liner of the present invention is commonly referred to as a poly bag.
  • the term poly bag is a coined expression descriptive of this product and as such, is felt not to represent new matter.
  • Page 8, line 33 has been amended to acknowledge that when using a plastic film barrier on the bottom side of the plant preferably the plastic barrier can literally be made a part of the fabric bag liner. Basis for this amendment is felt to be present on the preceding sentence on page 8 and as such, it is felt that the amendment does not represent new matter.
  • New Claim 13 is added as a dependent claim directed to this specific embodiment.
  • a nursery stock plant is placed (transplanted in the field) into a growing media confined by a polyolefin fabric bag.
  • the polyolefin fabric is a fiber bonded polypropylene fabric such as the product produced and sold by the Phillips Petroleum Company under the trade names Petromat and Supac Filter Fabric.
  • the present invention provides in a method for the growing of nursery stock intended for transplanting wherein the roots of the plant are confined to a container partially filled with growing media, the specific improvement comprising; making the container from a non-woven porous polyolefin fabric wherein the fabric is operatively capable of pruning said roots and inducing root branching when said roots penetrate said fabric.
  • this barrier be a fabric that can be made into a bag or other root restrictive liner such that the container confines more of the roots to the interior of the bag and simultaneously functions in a manrfer analogous to the traditional ball and burlap technique of transplanting trees or the like.
  • FIGURE 1 illustrates a root ball of a tree grown in a root control bag according to the present invention.
  • FIGURE 2 illustrates the root structure of a plant after growth in the root control bag according to the present invention.
  • FIGURE 3 illustrates the circumferential constricted root growth that occurred as the root penetrates the fabric bag and as was severed by removal of the fabric along with the resulting root branching induced by the root control bag according to the present invention.
  • the method according to the present invention involves the use of a porous plastic bag, whether above grade or below, to confine plant root propagation to essentially the interior of the bag.
  • the bag is made from a polyolefin or equivalent synthetic, decay resistant fabric having sufficient structural strength that it will serve as the equivalent to the burlap wrapping during subsequent transplanting of the plant to its final location.
  • the method according to the present invention is envisioned as being effective during intermediate stages of the development, handling, shipping and storage of the plant.
  • the bag or more specifically, the fabric employed to make the bag should have sufficient structural integrity and/or be sufficiently impervious to root penetration such that the root growth will only partially penetrate the fabric. Because of the partial penetration of the bag, the root growth at the surface of the fabric will be severely constricted, thus promoting root branching as well as accumulation of carbohydrates within the bag which in turn supports rapid root growth following removal of the bag.
  • One particularly preferred type of fabric is a nonwoven polyolefin fiber mat wherein the individual intersections of fibers are either adhesively or thermally bonded to each other under compression resulting in a strong, porous matlike cloth.
  • a polypropylene fabric of this nature manufactured by Phillips Petroleuir.
  • the root after penetrating the fabric is unable to increase in diameter within the fabric leading to a girdling effect at the bag.
  • a nodule or enlargement of the root will occur on either side of the fabric barrier with a fine root thread through the fabric connecting the two sides.
  • This restriction at the fabric severely retards root growth outside the bag and so represents a naturally weak structural point for root breakage when removing the bag during subsequent transplanting.
  • a more important feature of this type of root growth, or perhaps, more accurately the lack of root growth is the tendency for it to induce root branching on the inside of the bag in a manner analogous to what occurs when air-root pruning, or, in fact, other plant pruning takes place.
  • the root branching is induced within the confines of the bag and the plant with the bag is removed as a single unit for purposes of transplanting, the number of root ends available as well as the relative percentage of the total root structure available for re-establishing the plant after transplanting is maximized. Consequently, the odds of survival after transplanting even under adverse conditions is enhanced. Also, the resistance to or the ability to survive transplantation during hot summer months is also enhanced. For all practical purposes, trees grown according to the method of the present invention can be transplanted successfully throughout the hot summer months, even in the southern states (as exemplified later). Thus, the method according to the present invention extends the season for transplanting well beyond that which is ordinarily employed in the industry.
  • the very fibrous root ball structure within the bag also allows the use of sandy loam soils or other relatively loose growing media which were not particularly compatible with the prior art ball and burlap technique. Also, the inherent girdling effect along with cessation of external root propagation tends to allow for easy removal of the plant, root ball and fabric bag as a single unit, making the overall transplanting operation extremely easy and highly successful.
  • the present invention preserves essentially all of the advantages associated with planting in the field (i.e., root protection from temperature extremes and prevention of trees and the like from being blown over), yet supplements these advantages with several highly desirable additional features.
  • the use of the plast fabric bag liner a so-called poly bag according to the present invention is straightforward. If the plant is to be grown below grade, an appropriate hole is excavated or dug in the field and the bag is inserted as a liner, otherwise, the bag can be placed at an appropriate location above grade.
  • a plastic film barrier can be placed in the bottom of the hole (or on the ground for above grade use) before inserting the bag liner.
  • the poly bag or liner is made with nonwoven porous fiber bonded polypropylene fabric sidewalls and the bottom is made of a nonporous polyolefin film. Any appropriate growing media can then be placed within the poly bag. The plant is then placed in the growing media and allowed to grow.
  • the plant can be at essentially any early stage of development, including planting the seed or seedling directly in the field.
  • the preferred commercial utilization of the invention will involve the transplanting of one to five gallon container grown nursery stock into the buried liner bag (or tightly packed above grade bags) when the plants can no longer be optimally sustained in the container. Because of the possibility of close spacing and the presence of the fabric bag with associated root growth confinement, proper water management during this stage of plant development is critical.
  • the bag liner itself can be manufactured in essentially any appropriate size or shape. Preferably, it will be sewn or glued along seams producing a root confining structure that will serve as the soil releasing unit during final transplanting of the plant. This bag is physically removed from the root ball as the last step before replanting.
  • the soil of the entire field had been fertilized previously to provide about 75 pounds per acre of P 2 O 5 and 300 pounds per acre of K 2 O. Nitrogen was broadcast over the entire field at about 200 pounds per acre using urea. During the following months, the trees were drip irrigated to stimulate growth and prevent moisture stress. Weed control was accomplished with Ronstar pre-mergent herbicide at about 2 pounds active ingredient per acre along with spot spraying with Roundup contact herbicide as needed. After twenty-one months in the field, loblolly pine has reached 8 feet tall with 2 1/2 inch stem calliper and river birch were 10 feet tall with 2 1/2inch calliper.
  • the roots of the green ash tree tended to break at the girdle corresponding to passing through the bag, thus exposing a highly branched, fibrous root structure which had developed within the bag.
  • This is considered novel and unexpected in that the green ash tree is known to be difficult to transplant because of the lack of a fibrous root structure.
  • a selected surface count of root branches extrapolated to the size of the root ball resulted in an estimated 5,037 total roots being present.
  • 150 roots would be an extraordinary value for a green ash.
  • the typical root of the loblolly pine as it approached the fabric bag from the inside of the bag was about one-half inch diameter, but reduced to less than one-eighth inch diameter on the outside of the bag and tended to severe at the girdle when the bag was removed, thus exposing a blunt root nodule.
  • This restriction in lateral root development also stimulated secondary branching behind the root tip nodule within the bag similar to the branching accomplished by airroot pruning.
  • the enlarged root nodule 26 (see Figure 2) is felt to represent a natural carbohydrate reservoir or storage (i.e., phloem carbohydrates 28 from leaves and H 2 O/nutrient xylem 30) which enhances subsequent root growth and reestablishment of the plant after transplanting.
  • the present invention extends the digging and transplanting season well beyond that of the previously known conventional ball and burlap technique. This is accomplished in part because the balls can be smaller and lighter while still containing (because of branching) a higher proportion of roots than the conventional ball and burlap. Success in transplanting is also due in part to availability of accumulated hydrocarbons which nourish subsequent root growth. Because of the compactness of the root ball, sandy loams unsuitable for the ball and burlap technique can now be used in the present system, while a much higher proportion of the roots are retained in the ball.
  • the trees of the present invention can be held easier and longer on retail lots without rewrapping with burlap. And, less time and effort is required in digging and transplanting the tree grown in the fabric bag of the present invention.
  • trees grown in the root control bags according to the present invention have been successfully transplanted without digging by merely lifting the tree, root ball and bag directly out of the ground.
  • many of the advantages of thermal insulation and protection from the wind can be achieved by close packing of the root bags with plants while all of the other inherent advantages of the root control bag are preserved.

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  • Life Sciences & Earth Sciences (AREA)
  • Environmental Sciences (AREA)
  • Biodiversity & Conservation Biology (AREA)
  • Ecology (AREA)
  • Forests & Forestry (AREA)
  • Cultivation Receptacles Or Flower-Pots, Or Pots For Seedlings (AREA)
  • Cultivation Of Plants (AREA)

Abstract

A process for growing nursery stock (e.g. trees, shrubs, etc.) involving the specific improvement of confining root propagation to a nonwoven porous polypropylene fabric bag (12) such that growth through the bag (12) is severely constricted at the fabric (16), producing a girdling effect (22) and root branching (24) within the bag. Such a process leads to a tightly packed, highly root branched soil ball even in loose sandy loam that is easily removed from the field, readily transported and effective in re-establishing the tree (10) upon transplanting even during the hot summer months.

Description

ROOT CONTROL BAG
BACKGROUND OF THE INVENTION
1. Field of the Invention: This invention relates to a method of controlling plant root growth. More specifically, the invention relates to a method of growing plants in the field wherein the root growth is controlled by the presence of a porous plastic bag.
2. Description of the Prior Art:
The basic concept of growing nursery stock, such as trees and the like, in containers is a well known commercial activity. However, the growing of trees in a container is efficient and economical only during the early period of the plant's development and is pragmatically restricted to containers no larger than about five gallons in size. Goodale, Toby W. and Whitcomb, Carl E. in a pair of articles entitled "Producing Woody Ornamental Shrubs in Containers, Costs of Production and Projected Profits", Ornamentals South, Vol. 2 (4); pages 20 through 25 (1980) and "Producing Woody Ornamental Shrubs in Containers. Influence of Fertility Level and Container Size", Ibid, Vol. 2 (3); pages 10 through 13 (1980), found that for most plants there is an optimum container size for growth of the particular plant with maximum economic return. Generally, it was found that to grow trees in containers more than two years was not economically feasible.
Contemporary improvements in the fundamental understanding of the nutrition of tree seedlings (and plants in general; for example, see U. S. Patent 4,328,025) both in the propagation container and subsequent larger container have led to improved growth rates. Furthermore, recent developments in various aspects of air-root pruning of the tree seedling to destroy the tap root and stimulate a much more fibrous root system (such as described in co-pending U. S. application Ser. No. 309,085) further complicates the commercial economics of growing trees in containers in that the tree outgrows the container before the commercial The substituted new pages of specification are intended to conform the original specification to the new drawings. As such, page 5 is literally a description of the new Figures 1 through 3 and the major portion of the amendments to pages 8 through 16 represent changes necessary to conform the text of the specification to the new figures. Again, it is felt a basis for these amendments can be found in the specification and drawings as originally submitted and as such, do not represent new matter.
Page 8, line 25 has been amended to acknowledge that the plastic fabric bag liner of the present invention is commonly referred to as a poly bag. The term poly bag is a coined expression descriptive of this product and as such, is felt not to represent new matter. Page 8, line 33 has been amended to acknowledge that when using a plastic film barrier on the bottom side of the plant preferably the plastic barrier can literally be made a part of the fabric bag liner. Basis for this amendment is felt to be present on the preceding sentence on page 8 and as such, it is felt that the amendment does not represent new matter. New Claim 13 is added as a dependent claim directed to this specific embodiment.
Also included is a formal appointment of agent or common representative signed by both inventors establishing power of attorney, again as requested in the Invitation to Correct Defects. SUMMARY OF THE INVENTION
In view of the prior art, we have discovered an in the field method of controlling the root growth of nursery stock intended for transplanting comprising the steps of: (a) excavating a hole in the earth;
(b) inserting within the hole a porous plastic liner;
(c) filling the liner with growing media; and
(d) planting and growing a plant within the liner in the earth such that the porous plastic liner (i.e., root enclosure bag) and the growing plant can later be removed from the earth as a single unit for transporting and transplanting. Thus, according to one embodiment of the present invention, a nursery stock plant is placed (transplanted in the field) into a growing media confined by a polyolefin fabric bag. Preferably, the polyolefin fabric is a fiber bonded polypropylene fabric such as the product produced and sold by the Phillips Petroleum Company under the trade names Petromat and Supac Filter Fabric. In other words, the present invention provides in a method for the growing of nursery stock intended for transplanting wherein the roots of the plant are confined to a container partially filled with growing media, the specific improvement comprising; making the container from a non-woven porous polyolefin fabric wherein the fabric is operatively capable of pruning said roots and inducing root branching when said roots penetrate said fabric.
It is an object of the present invention to provide a barrier or container to be used either below or above grade that partially confines plant root propagation, restricts lateral root extension, controls root swirl and partially root prunes at the surface of the container; thus stimulating and accelerating root branching within the container. It is an ancillary object that this barrier be a fabric that can be made into a bag or other root restrictive liner such that the container confines more of the roots to the interior of the bag and simultaneously functions in a manrfer analogous to the traditional ball and burlap technique of transplanting trees or the like. The fulfillment of these objects and the presence and fulfillment of additional objects will be apparent upon complete reading of the specification and claims taken in conjunction with the attached drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
FIGURE 1 illustrates a root ball of a tree grown in a root control bag according to the present invention.
FIGURE 2 illustrates the root structure of a plant after growth in the root control bag according to the present invention.
FIGURE 3 illustrates the circumferential constricted root growth that occurred as the root penetrates the fabric bag and as was severed by removal of the fabric along with the resulting root branching induced by the root control bag according to the present invention.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
The method according to the present invention, in the broadest sense, involves the use of a porous plastic bag, whether above grade or below, to confine plant root propagation to essentially the interior of the bag. Preferably, the bag is made from a polyolefin or equivalent synthetic, decay resistant fabric having sufficient structural strength that it will serve as the equivalent to the burlap wrapping during subsequent transplanting of the plant to its final location. Thus, the method according to the present invention is envisioned as being effective during intermediate stages of the development, handling, shipping and storage of the plant.
Preferably, the bag or more specifically, the fabric employed to make the bag, should have sufficient structural integrity and/or be sufficiently impervious to root penetration such that the root growth will only partially penetrate the fabric. Because of the partial penetration of the bag, the root growth at the surface of the fabric will be severely constricted, thus promoting root branching as well as accumulation of carbohydrates within the bag which in turn supports rapid root growth following removal of the bag. One particularly preferred type of fabric is a nonwoven polyolefin fiber mat wherein the individual intersections of fibers are either adhesively or thermally bonded to each other under compression resulting in a strong, porous matlike cloth. In particular, a polypropylene fabric of this nature manufactured by Phillips Petroleuir. Company and sold under trade names Petromat or Supac Filter Fabric are particularly useful in conjunction with the present invention. However, other plastics and other liner materials are envisioned as being equivalent for purposes of this invention, provided the requisite porosity and structural strength as well as resistance to degradation when buried in the earth and ultra-violet stability when used above grade are achieved. Thus, many of the vinyl compositions or vinyl coated fabrics are to be considered equivalent for purposes of this invention. One particular attribute of the nonwoven polypropylene fabric bag that makes it particularly useful in the present invention is the observed tendency for roots to go through the fabric, but further development of the root is restricted. This cessation of root growth is apparently caused by severe restriction, or more specifically, circumferential constriction applied by the fabric to the root. Consequently, the root after penetrating the fabric is unable to increase in diameter within the fabric leading to a girdling effect at the bag. Literally, a nodule or enlargement of the root will occur on either side of the fabric barrier with a fine root thread through the fabric connecting the two sides. This restriction at the fabric severely retards root growth outside the bag and so represents a naturally weak structural point for root breakage when removing the bag during subsequent transplanting. However, a more important feature of this type of root growth, or perhaps, more accurately the lack of root growth (i.e., physical root pruning) is the tendency for it to induce root branching on the inside of the bag in a manner analogous to what occurs when air-root pruning, or, in fact, other plant pruning takes place. Because of the root pruning effect of the fabric bag and the associated secondary branching behind the root tip, a very fibrous compact root system will develop within the confines of the bag. Furthermore, the restriction at the fabric promotes the root storage of carbohydrates within the bag. These features of the present invention are felt to be novel and extremely useful, leading to a series of unexpected results and advantages (e.g.; the observation of twenty inches of additional root growth within seven weeks of transplantaing a river birch and a count of over 5,000 root branches on a green ash, as exemplified later).
Since the root branching is induced within the confines of the bag and the plant with the bag is removed as a single unit for purposes of transplanting, the number of root ends available as well as the relative percentage of the total root structure available for re-establishing the plant after transplanting is maximized. Consequently, the odds of survival after transplanting even under adverse conditions is enhanced. Also, the resistance to or the ability to survive transplantation during hot summer months is also enhanced. For all practical purposes, trees grown according to the method of the present invention can be transplanted successfully throughout the hot summer months, even in the southern states (as exemplified later). Thus, the method according to the present invention extends the season for transplanting well beyond that which is ordinarily employed in the industry.
The very fibrous root ball structure within the bag also allows the use of sandy loam soils or other relatively loose growing media which were not particularly compatible with the prior art ball and burlap technique. Also, the inherent girdling effect along with cessation of external root propagation tends to allow for easy removal of the plant, root ball and fabric bag as a single unit, making the overall transplanting operation extremely easy and highly successful. Thus, the present invention preserves essentially all of the advantages associated with planting in the field (i.e., root protection from temperature extremes and prevention of trees and the like from being blown over), yet supplements these advantages with several highly desirable additional features.
The use of the plast fabric bag liner a so-called poly bag according to the present invention is straightforward. If the plant is to be grown below grade, an appropriate hole is excavated or dug in the field and the bag is inserted as a liner, otherwise, the bag can be placed at an appropriate location above grade. Optionally, a plastic film barrier can be placed in the bottom of the hole (or on the ground for above grade use) before inserting the bag liner. Preferably when employing the plastic film barrier, the poly bag or liner is made with nonwoven porous fiber bonded polypropylene fabric sidewalls and the bottom is made of a nonporous polyolefin film. Any appropriate growing media can then be placed within the poly bag. The plant is then placed in the growing media and allowed to grow. In principle, the plant can be at essentially any early stage of development, including planting the seed or seedling directly in the field. For all practical purposes, it is envisioned that the preferred commercial utilization of the invention will involve the transplanting of one to five gallon container grown nursery stock into the buried liner bag (or tightly packed above grade bags) when the plants can no longer be optimally sustained in the container. Because of the possibility of close spacing and the presence of the fabric bag with associated root growth confinement, proper water management during this stage of plant development is critical.
The bag liner itself can be manufactured in essentially any appropriate size or shape. Preferably, it will be sewn or glued along seams producing a root confining structure that will serve as the soil releasing unit during final transplanting of the plant. This bag is physically removed from the root ball as the last step before replanting.
The following example is presented to illustrate one preferred embodiment of the overall process according to the present invention. E X AM P L E
Using a 6 ounce Supac Filter Fabric manufactured by Phillips Petroleum Company, a series of bags were sewn together. Each bag was approximately 20 to 24 inches in diameter and about 12 to 14 inches deep. Holes 24 inches in diameter were prepared by an auger in a sandy loam soil. A single disc of 6 mil polyethylene film of 24 inch diameter was placed at the bottom of each hole. The bags were then placed in the hole and filled with loose soil removed by the auger. Loblolly pine, river birch and green ash tree seedling that had been air-root pruned in bottomless containers for about three months and then grown in two gallon poly bags for the remainder of the growing season were transplanted in December into the bags. The soil of the entire field had been fertilized previously to provide about 75 pounds per acre of P2O5 and 300 pounds per acre of K2O. Nitrogen was broadcast over the entire field at about 200 pounds per acre using urea. During the following months, the trees were drip irrigated to stimulate growth and prevent moisture stress. Weed control was accomplished with Ronstar pre-mergent herbicide at about 2 pounds active ingredient per acre along with spot spraying with Roundup contact herbicide as needed. After twenty-one months in the field, loblolly pine has reached 8 feet tall with 2 1/2 inch stem calliper and river birch were 10 feet tall with 2 1/2inch calliper. In late August of the third growing season, three trees of each species were dug by inserting a sharp square pointed flat blade shovel around the fabric bag to the depth of the polyethylene sheet and the trees were lifted from the soil by hand. The trees with bagged root balls intact were transported approximately 38 miles and then replanted into a sandy loam soil after removal of the bag. The temperature was in excess of 100° F on the days the trees were dug and replanted, yet no wilting or subsequent leaf drop occurred. All trees survived. The effect of fabric bag on root development was apparent upon examining the roots of the trees. As the roots of the tree 10 grew outward and downward (see Figure 1), they penetrated the fabric bag 12 generally whenever contact with the fabric was made. However, as sequentially illustrated in Figure 2, the nature of the penetration was highly restricted in that the roots 14 that penetrated the bag 16 grew in diameter on the insdie of the bag, diminished to a very small diameter as they passed through the fabric, enlarged somewhat 18 on the outside of the bag 16 and then quickly decreased in diameter; thus, the fabric constricted the roots causing a severe girdling effect. Thus, the tree still in the root control bag typically exhibited only relatively small diameter roots external to the bag. As illustrated in Figure 3, the root 20 tended to break at the girdling 22 caused by the physical pruning at the fabric. Because of this root pruning, secondary branching 24 would take place behind the tip.
For example, the roots of the green ash tree tended to break at the girdle corresponding to passing through the bag, thus exposing a highly branched, fibrous root structure which had developed within the bag. This is considered novel and unexpected in that the green ash tree is known to be difficult to transplant because of the lack of a fibrous root structure. In attempting to quantitatively define and measure the fibrous root structure observed in the green ash tree, a selected surface count of root branches extrapolated to the size of the root ball resulted in an estimated 5,037 total roots being present. Prior to the present invention, 150 roots would be an extraordinary value for a green ash. The typical root of the loblolly pine as it approached the fabric bag from the inside of the bag was about one-half inch diameter, but reduced to less than one-eighth inch diameter on the outside of the bag and tended to severe at the girdle when the bag was removed, thus exposing a blunt root nodule. This restriction in lateral root development also stimulated secondary branching behind the root tip nodule within the bag similar to the branching accomplished by airroot pruning. The enlarged root nodule 26 (see Figure 2) is felt to represent a natural carbohydrate reservoir or storage (i.e., phloem carbohydrates 28 from leaves and H2O/nutrient xylem 30) which enhances subsequent root growth and reestablishment of the plant after transplanting. The increased branching tends to hold the soil ball togehter in a very solid mass as opposed to the normal ball and burlap method, thus also improving the transplantability. Likewise, following removal of the bag and replanting, many more root tips exist to grow into the surrounding soil and anchor and establish the tree.
The rapid re-establishment of the roots of a river birch tree grown in a root control bag and transplanted after removal of the bag was confirmed by observations of a twenty inch segment of new root growth approximately the thickness of a pencil after transplanting. This root growth took place in seven weeks and roots were found as far as three feet from the outer perimeter of the root ball.
Although the method according to the present invention involves the expenditure of additional capital and labor at a relatively early stage of the growth of the tree, the overall advantages of the system are felt to more than compensate for the costs involved. First and foremost, the present invention extends the digging and transplanting season well beyond that of the previously known conventional ball and burlap technique. This is accomplished in part because the balls can be smaller and lighter while still containing (because of branching) a higher proportion of roots than the conventional ball and burlap. Success in transplanting is also due in part to availability of accumulated hydrocarbons which nourish subsequent root growth. Because of the compactness of the root ball, sandy loams unsuitable for the ball and burlap technique can now be used in the present system, while a much higher proportion of the roots are retained in the ball. Consequently, the trees of the present invention can be held easier and longer on retail lots without rewrapping with burlap. And, less time and effort is required in digging and transplanting the tree grown in the fabric bag of the present invention. In fact, trees grown in the root control bags according to the present invention have been successfully transplanted without digging by merely lifting the tree, root ball and bag directly out of the ground. In using the root control bag above grade, many of the advantages of thermal insulation and protection from the wind can be achieved by close packing of the root bags with plants while all of the other inherent advantages of the root control bag are preserved. Having thus described and exemplified the invention with a. certain degree of particularity, it is manifest that many changes can be made in the details of the construction of the fabric bag and method of employing the bag without departing from the spirit and scope of this invention. Therefore, it is to be understood that the invention is not limited to the specific embodiments set forth herein for purposes of exemplification, but is to be limited only by the scope of the attached claims, including a full range of equivalents to which each element thereof is entitled.

Claims

WE CLAIM: 1. A method of controlling the root growth of nursery stock intended for transplanting comprising the steps of: (a) excavating a hole in the earth; (b) inserting within said hole a porous plastic liner; (c) filling said liner with growing media; and (d) planting and growing a plant within said liner in the earth such that the liner and the growing plant can later be removed from the earth as a single unit for transporting and transplanting.
2. A method of Claim 1 wherein said plant is a container grown nursery stock plant.
3. A method of Claim 2 wherein said porous plastic liner is a nonwoven. polyolefin fabric.
4. A method of Claim 3 wherein said nonwoven polyolefin fabric is a fiber bonded polypropylene fiber fabric.
5. In a process for growing nursery stock having increased tolerance to hot weather transplanting, the specific improvement comprising: (a) excavating a hole in the earth; (b) inserting within said hole a porous plastic liner; (c) filling said liner with growing media; and (d) growing a plant within said liner in the earth such that the liner and the grown plant can be transplanted as a single unit.
6. A process of Claim 5 wherein said plant is a container grown nursery stock plant.
7. A process of Claim 5 wherein said porous plastic liner is a nonwoven polyolefin fabric.
8. A process of Claim 5 wherein said nonwoven polyolefin fabric is a fiber bonded polypropylene fiber fabric.
9. In a method for the growing of nursery stock intended for transplanting wherein the roots of the plant are confined to a container partially filled with growing media, the specific improvement comprising; making said container from a nonwoven porous polyolefin fabric wherein said fabric is operatively capable of pruning said roots and inducing root branching when said roots penetrate said fabric,
10. A method of Claim 9 wherein said polyolefin fabric is a fiber bonded polypropylene.
11. A root pruning nursery stock container comprising a nonwoven porous polyolefin fabric bag means operatively capable of pruning plant roots and inducing root branching when said roots penetrate said fabric bag means.
12. A root pruning nursery stock container of Claim 11 wherein said bag means is made of a nonwoven porous fiber bonded polypropylene fabric.
13. A root pruning nursery stock container of Claim 11 wherein the vertical sidewalls of said container are made of a nonwoven porous fiber bonded polypropylene fabric and the bottom of said container is made of a nonporous polyolefin film.
PCT/US1984/000600 1983-04-20 1984-04-18 Root control bag WO1984004227A1 (en)

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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4884367A (en) * 1987-10-21 1989-12-05 W & G Precision Instruments Pty. Ltd. Root control bag
US4888914A (en) * 1988-05-23 1989-12-26 Reiger Ralph E Method and fabric container for controlling root growth
DE8902165U1 (en) * 1989-02-23 1990-04-12 Reimann Spinnerei und Weberei GmbH, 4407 Emsdetten Covering for the rootstock of plants
US5103588A (en) * 1988-05-23 1992-04-14 Reiger Ralph E Method and fabric container for controlling root growth
US5167092A (en) * 1988-05-23 1992-12-01 Reiger Ralph E Method and fabric container for controlling root growth
US6202348B1 (en) 1995-02-07 2001-03-20 Ralph E. Reiger Plant-growing method and apparatus
CN101480150A (en) * 2008-01-09 2009-07-15 刘兆泉 Seedling planting device with compressed straw sustained-release fertilizer planting device
CN103070044A (en) * 2012-09-06 2013-05-01 六安市绿都园林绿化有限责任公司 Greening full-crown transplanting nutrition pot

Families Citing this family (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU598158B2 (en) * 1987-10-21 1990-06-14 Root Control Technologies Pty Ltd Root control bag
NZ229621A (en) * 1988-06-21 1990-11-27 Ronneby Tree Farm Pty Ltd Positioning and filling root control bags with soil in the ground
US5241783A (en) * 1990-08-30 1993-09-07 Krueger Scott D Apparatus and process for growing plants
US5393313A (en) * 1993-11-15 1995-02-28 Reiger; Ralph E. Transplantable nursery stock growing methods
US5768825A (en) * 1995-02-07 1998-06-23 Reiger; Ralph E. Plant preservation bag and method
US5557886A (en) * 1995-09-20 1996-09-24 Whitcomb; Carl E. Plant growing container for air-pruning roots
US6108972A (en) * 1998-02-23 2000-08-29 Solis; George Patrick Apparatus for and methods of bracing soil, retaining water, and blocking roots
US20030166372A1 (en) * 1998-10-06 2003-09-04 Howard Thomas Insect resistant geotextile
US6612069B2 (en) 1999-07-02 2003-09-02 Randal D. A. Locke Retrofitting aerating root pruner
AU776172B2 (en) * 2000-02-26 2004-09-02 BUTCHARD, John Bonsai bags and soil liners
US6550182B2 (en) 2001-04-02 2003-04-22 Randal D. A. Locke Implantable aerating root pruner
FR2825574B1 (en) * 2001-06-08 2003-10-31 Bernard Treutenaere BAG SUITABLE FOR GROWING PLANTS IN THE GROUND, ESPECIALLY IN THE NURSERY
FR2825572B1 (en) * 2001-06-08 2003-10-31 Bernard Treutenaere METHOD AND DEVICE FOR GROWING PLANTS, ESPECIALLY IN A NURSERY
US6612072B2 (en) 2001-08-10 2003-09-02 Ray Busby Above-ground plant growth and root pruning system
US7810275B2 (en) * 2001-10-29 2010-10-12 Lacebark, Inc. Root growth barrier and method
US7481025B2 (en) 2003-05-28 2009-01-27 Lacebark, Inc. Method and container for growing transplantable plants
US20050223639A1 (en) * 2004-04-13 2005-10-13 Whitcomb Carl E Plant container base with root-directing channels
GB2416978B (en) 2004-08-12 2009-07-29 John Cooley Plant container
US20080098648A1 (en) * 2006-11-01 2008-05-01 Reiger Kurt E Insulating jacket
US7774981B2 (en) * 2007-02-09 2010-08-17 Lacebark, Inc. Plant container and method
WO2009137774A2 (en) 2008-05-09 2009-11-12 Kempf Brian J Plant container assembly and method
US9179608B2 (en) 2008-05-09 2015-11-10 Brian J. Kempf Plant container assembly and method
US9686921B2 (en) 2010-11-02 2017-06-27 Richard S. Baron Method of growing grapevines
US10542682B1 (en) 2016-10-05 2020-01-28 Mark McCoy Container for growing plants
US10278335B2 (en) 2017-01-30 2019-05-07 High Caliper Growing, Inc. Fabric growing trough
USD877650S1 (en) 2017-08-31 2020-03-10 Country Plastics, Inc. Plant-growing pot
US10798881B2 (en) 2018-03-09 2020-10-13 Lacebark, Inc. Air root pruning container for growing a plant
US11089739B2 (en) 2019-06-12 2021-08-17 Lacebark, Inc. Air-root-pruning container having vertically offset ledges

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2902795A (en) * 1955-04-19 1959-09-08 Heigl Otto Method of preparing plants for planting and harvesting
US2916854A (en) * 1957-08-27 1959-12-15 Heigl Otto Method of cultivating plants by use of perforated plastic foil
US3415012A (en) * 1966-08-10 1968-12-10 Stubbmann Albert Bulb planting and recovery device and method
US4231186A (en) * 1976-06-09 1980-11-04 Lannen Tehtaat Oy Group of pots for nursing and replanting plants

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1464534A (en) * 1921-06-06 1923-08-14 Jr John T Lovett Plant-ball shipping case
US1894506A (en) * 1931-06-17 1933-01-17 Wilson Clarence Ellsworth Wrapping for plants
US2017308A (en) * 1934-10-20 1935-10-15 Leon H Elmer Plant container
US2758419A (en) * 1952-12-17 1956-08-14 Joseph F Schmitz Plant container
US2749964A (en) * 1954-04-26 1956-06-12 Fred W Manning Horticultural fabrics
US3094810A (en) * 1960-12-19 1963-06-25 Max L Kalpin Containers for plants and the like
FR1597853A (en) * 1968-12-13 1970-06-29
US3691004A (en) * 1969-11-21 1972-09-12 Akzona Inc Matting of melt-spun amorphous polymer filaments and process
NL142864B (en) * 1970-04-03 1974-08-15 Albert John Voges PACKAGING.
JPS5030156B2 (en) * 1971-08-26 1975-09-29
US4154889A (en) * 1974-08-19 1979-05-15 Phillips Petroleum Company Nonwoven fabric, method and apparatus for it's manufacture
US4042655A (en) * 1975-09-05 1977-08-16 Phillips Petroleum Company Method for the production of a nonwoven fabric
DE2602107C2 (en) * 1976-01-21 1978-02-16 Graber, Bruno, 8031 Puchheim Method of limiting the growth in size of plants and containers for carrying out the method
DE2744143C2 (en) * 1977-09-30 1983-06-09 Bruno 8039 Puchheim Gruber Use of a container for growing and cultivating plants
US4199644A (en) * 1977-12-13 1980-04-22 Phillips Petroleum Company Method for the production of a needled nonwoven fabric

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2902795A (en) * 1955-04-19 1959-09-08 Heigl Otto Method of preparing plants for planting and harvesting
US2916854A (en) * 1957-08-27 1959-12-15 Heigl Otto Method of cultivating plants by use of perforated plastic foil
US3415012A (en) * 1966-08-10 1968-12-10 Stubbmann Albert Bulb planting and recovery device and method
US4231186A (en) * 1976-06-09 1980-11-04 Lannen Tehtaat Oy Group of pots for nursing and replanting plants

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4884367A (en) * 1987-10-21 1989-12-05 W & G Precision Instruments Pty. Ltd. Root control bag
US4888914A (en) * 1988-05-23 1989-12-26 Reiger Ralph E Method and fabric container for controlling root growth
US5103588A (en) * 1988-05-23 1992-04-14 Reiger Ralph E Method and fabric container for controlling root growth
US5167092A (en) * 1988-05-23 1992-12-01 Reiger Ralph E Method and fabric container for controlling root growth
DE8902165U1 (en) * 1989-02-23 1990-04-12 Reimann Spinnerei und Weberei GmbH, 4407 Emsdetten Covering for the rootstock of plants
US6202348B1 (en) 1995-02-07 2001-03-20 Ralph E. Reiger Plant-growing method and apparatus
CN101480150A (en) * 2008-01-09 2009-07-15 刘兆泉 Seedling planting device with compressed straw sustained-release fertilizer planting device
CN103070044A (en) * 2012-09-06 2013-05-01 六安市绿都园林绿化有限责任公司 Greening full-crown transplanting nutrition pot

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EP0139748A4 (en) 1985-09-02
EP0139748A1 (en) 1985-05-08
EP0139748B1 (en) 1988-09-21
US4574522A (en) 1986-03-11

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