EP1623062A2 - Insect screen with improved optical properties - Google Patents
Insect screen with improved optical propertiesInfo
- Publication number
- EP1623062A2 EP1623062A2 EP04749670A EP04749670A EP1623062A2 EP 1623062 A2 EP1623062 A2 EP 1623062A2 EP 04749670 A EP04749670 A EP 04749670A EP 04749670 A EP04749670 A EP 04749670A EP 1623062 A2 EP1623062 A2 EP 1623062A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- insect screen
- fibers
- warp
- fill
- inches
- Prior art date
- Legal status (The legal status 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 status listed.)
- Withdrawn
Links
Classifications
-
- D—TEXTILES; PAPER
- D03—WEAVING
- D03D—WOVEN FABRICS; METHODS OF WEAVING; LOOMS
- D03D9/00—Open-work fabrics
-
- E—FIXED CONSTRUCTIONS
- E06—DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
- E06B—FIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
- E06B9/00—Screening or protective devices for wall or similar openings, with or without operating or securing mechanisms; Closures of similar construction
- E06B9/52—Devices affording protection against insects, e.g. fly screens; Mesh windows for other purposes
Definitions
- the present invention relates to screens, and more particularly, to woven insect screens.
- Insect screens have been in use on windows and doors for more than a century. Their intended purpose is to keep out common insects such as flies, moths, mosquitoes, and bees as well as other creatures such as birds and rodents. Insect screens are used for many applications such as windows, doors, patio enclosures, pool enclosures, garage doors, and more.
- Insect screens are typically woven from various types of fibers, historically starting from materials such as horsehair and linen. For greater durability, screens evolved to woven wire made of low-carbon steel, however, the steel was known to rust. Bronze, stainless steel, and aluminum wire replaced steel. In the 1970's, screens woven from vinyl (PVC) coated fiberglass fibers were introduced. These screens offered benefits of durability, light weight, ease of weaving, and ease of installation. Vinyl coated fiberglass screens offered a significant improvement over metal screens for ease of installation since common tools can cut and trim the screen materials without leaving sharp wires that can create safety issues. Vinyl coated fiberglass screens have become the industry standard for common insect screens.
- mesh is typically used to describe the relative hole size of woven screening, this term gives no recognition to the diameter of the fiber or wire, and thus the mesh number does not always have a relationship to the size of the hole in the screen.
- Hole size, aperture, or opening is defined as the dimension between adjacent parallel wires, usually expressed in decimal parts of an inch. It can be calculated using the equation below for each of the warp and fill directions of the screen.
- Fill is defined as fibers or wires running across the width or short way of the woven cloth during weaving, also referred to as shute and weft.
- Warp is defined as the fibers of wire running lengthwise during weaving.
- insect screens can be defined by the fiber material, fiber diameter, and weaving construction (mesh or fibers per inch).
- fiber or wire commonly used for window insect screening is known to have diameters ranging from 0.009 to 0.013 inches. It is important to note that the calculated hole width for the fiberglass screens used the indicated wire diameter as opposed to the actual wire diameter in the finished screen. Hole size and open area of PVC coated fiberglass screens typically have values less than the expected values due to flow of the PVC coating.
- insect screens typically have either the warp or fill hole dimension to be less than about 0.05 inches in order to exclude most common flying insects, with the other hole dimension being larger than about 0.03 inches in order to offer acceptable airflow, visual clarity, and/or light transmission.
- the warp and fill dimension are not both below about 0.03 inches, nor are they both above about 0.05 inches.
- This hole size range for residential window screening is consistent with products offered and sold as window/insect screen.
- One example of screen sold for insect exclusion with a hole size larger than 0.05 inches in both the warp and fill dimensions is made of copper wire with a 16 x 16 mesh as described in the table above.
- the present invention is an improved insect screen designed to serve the primary purpose of keeping out insects and pests while maximizing visual clarity, light transmission, and airflow with improved durability.
- the present invention is an insect screen comprising fibers, the insect screen having a total light transmission of at least 65% and, preferably, total light transmission of at least 70% and at least 80%; and which insect screen undergoes no macroscopic permanent deformation when subjected to a blunt instrument deformation test of at least about 1.0 lbs. and, preferably, at least about 2.0 lbs., at least about 3.0 lbs., at least about 4.0 lbs. and at least about 5.0 lbs.
- the insect screen is constructed of fibers comprising a fluoropolymer. More preferably the fibers are constructed of PVDF.
- the invention provides an insect screen comprising fibers, the insect screen having a visual clarity factor of at least 60% and, preferably, a visual clarity factor of at least about 70% and at least about 80%; and which undergoes no macroscopic permanent deformation when subjected to a blunt instrument deformation test of at least about 0.5 lbs. and, preferably, at least about 1.0 lbs. and, preferably, at least about 2.0 lbs., at least about 3.0 lbs., at least about 4.0 lbs. and at least about 5.0 lbs.
- the insect screen is constructed of fibers comprising a fluoropolymer. More preferably, the fibers are constructed of PVDF.
- the insect screen is constructed of fibers that are opaque.
- Figure 1 is an oblique cross-sectional view of an embodiment of the present invention.
- Figure 2 is a schematic of a device used to measure the optical properties of the present invention.
- Figure 3 is a schematic of a device used to measure the durability of the present invention.
- the present invention is an improved insect screen material with remarkable light transmission and airflow properties and improved durability.
- An embodiment of the present invention is illustrated in Figure 1.
- An insect screen 10 is shown, formed of fibers 21. Fibers 21 are woven into a warp and fill construction. In this embodiment, the warp dimension is designated by arrow A, the fill dimension by arrow B, although these directions could of course be reversed, depending on the direction of weaving. Fibers 21 intersect at intersections 22, and define openings 25.
- Screen 10 is preferably mounted in a frame 12 attached to a structure 14.
- Frame 12 preferably has a spline 16 and a groove 18 construction for securely attaching screen 10 thereto.
- this invention involves the use of fibers with diameters of about 0.007 inches or less woven into an insect screen having a particular hole size and construction.
- the fibers have diameters of less than about 0.006 inches, less than about 0.005 inches, less than about 0.004 inches, less than about 0.003 inches, to about 0.002 inches.
- the screens of the present invention can be of a variety of fiber materi als.
- These materials can include, but are not limited to, standard metal materi als such as aluminum, steel, bronze, copper, and stainless steel. These materi als can also include non-metallic materials such as polyester, nylon, PVC coated fiberglass and others.
- UV degradation typically caused by sunlight exposure. It is known that most non-metallic fibers will degrade and lose strength after a few years of sunlight exposure due to UV degradation. PVC coated fiberglass screens exhibit this degradation with the PVC coating turning white and flaking off. It can be desirable to use non-metallic fibers as a screen material, but it becomes challenging to meet durability expectations if small fibers are used. Small diameter fibers already can be weaker in breakstrength than larger diameter fibers and with further UV degradation the fiber can fail prematurely. With these limitations, it is challenging for small diameter non-metallic insect screens to meet the typical industry expectations for lifetimes of five to ten years or more.
- PVDF polyvinyl dimethacrylate copolymer
- This material is readily melt processible thereby enabling fibers of uniform small diameters to be cost effectively fabricated.
- This material is also one of the stronger fluoropolymer materials thus offering enhanced durability.
- this material can be bonded to itself through various bonding techniques thus being able to produce a preferable insect screen fabric where a substantial number of the fibers are bonded at their intersection points for improved stability.
- Insect screens are typically manufactured by weaving monofilament or multifilament fibers using standard weaving processes. Weaving constructions can include plain, twill, satin, and others such as the leno weave. The most popular weave for metal and PVC coated fiberglass screens is the plain weave. This construction offers a simple cost effective process for fabricating an insect screen.
- One disadvantage of the plain weave is that the fiber construction can be loose and unstable depending on the openness of the fabric and rigidity of the fiber. PVC coated fiberglass screens overcome this issue by melt flowing the PVC coating to adhere the fibers at the intersections.
- Another aspect of this invention is an insect screen of a non-metallic material that is bonded at the fiber intersections.
- Durably bonding polymer fibers can be particularly challenging. Adhesives can be used, however, excess adhesive may be inadvertently applied beyond the fiber intersections regions. Furthermore, adhesives tend not to be UV resistant.
- Another bonding approach is to use heat for melt bonding fiber at the intersections. This technique can be accomplished through various processing options, one of which uses heated calendering rolls. With this approach, special care needs to be taken to avoid melting the entire fiber outside of the intersection points regions. This melting can cause the fiber cross-section to flow and flatten resulting in a screen that has less light transmission and airflow.
- Insect screens are available in a variety of colors ranging from black to green to white. Metal screens are typically painted or coated for color and corrosion resistance. It has been found that a darker color such as black is preferable in order to reduce reflective glare. Furthermore, a fiber that is opaque can reduce the transmitted refractive glare. Clear fibers can increase the total light transmission of a screen fabric but can suffer from reflective and refractive glare in certain applications.
- Another aspect of this invention is an insect screen material that is suitable for mounting in a screen frame using a conventional spline and groove attachment.
- the majority of insect screens used in combination with window frames utilize this method for mounting and attachment. It is preferable that the screen construction enables this means for mounting and attachment.
- PVDF fiber was extruded using standard methodologies known in the industry. For this example, Albany International, of Albany NY, extruded fiber at a diameter of 0.005 inches. This fiber had an average denier of 242 and average tenacity of 3.22 grams per denier. Clear fiber was extruded.
- the fiber was then woven into a plain weave construction using standard weaving techniques.
- Prodesco of Perkasie PA provided the weaving.
- the fiber was woven into a 52 inches wide construction screen having 20 picks per inch (ppi) by 17 picks per inch (ppi).
- the warp and fill openings (hole sizes) were measured to be 0.046" and 0.053" respectively.
- Insect screen from Example 1 was then lightly painted with black semigloss spray paint.
- the paint used was Painter's Touch #1974 by Rust-oleum Corporation. The purpose of this paint was to simulate a black opaque fiber in order to conduct light transmission testing.
- This painted woven screen was then tested for light transmission properties. The results are listed in the table below. The following method was used to evaluate light transmission properties for inventive and comparative insect screen materials.
- the comparative insect screen materials of PVC fiberglass (11 mil - 18 x 14) (Comparative Example 1) and stainless steel (9 mil - 18 x 14) (Comparative Example 2) were from New York Wire Co., Mt. Wolf, PA and TWP Inc., Berkeley, CA respectively.
- the procedure to measure the optical properties of a screen material makes use of a spectrometer, specifically a Perkin Elmer Lambda 18 model suitable for measurements in the visible range of wavelengths.
- the spectrometer must have the capability to measure integrated reflectivity and transmission via an integrating sphere attachment like, for example, model RSA-PE-18 from Labsphere.
- the values obtained here require four different configurations: Specular + diffuse transmission (total transmission), Specular + diffuse reflectance (total reflectance), diffuse-only transmission and diffuse-only reflectance.
- the results are recorded in each instance in absolute percentages.
- three ports on the integrating sphere are of importance: The first port is the light entry and transmission port (port 1).
- the reflectance port (port 2) is used for a 100% calibration as well as reflectance measurements.
- Port 1 , 2 and 3 include an angle of 16 degrees.
- the beam size in port 1 and 2 should be significantly larger than the openings in the screen to minimize measurement errors due to edge effects.
- the beam size used was about 3/8 x 1/8 inches.
- the sample In Specular + Diffuse transmission mode, the sample is placed in port 1 and transmission of the beam in the forward direction (specular) as well as all hemispherically scattered transmission is recorded simultaneously. A 100% standard must be placed in port 2.
- the specular component of the transmitted light needs to be trapped by a light trap placed in port 2 with the sample in port 1.
- Diffuse + Specular reflectance is measured by placing the sample into port 2. Care must be taken (since reflectance can be quite low) that a light trap is placed behind the sample so that any light, transmitted through the sample, cannot return back into the sphere via port 2. Appropriate background subtraction procedures should be applied.
- a measurement of diffuse reflectance eliminates specularly reflected light by placing another light trap into port 3 while having the sample, backed by a light trap, in port 2. This will measure only that light which is diffusely reflected into the intergrating sphere. Specular-only reflectance is calculated by subtracting diffuse-only reflectance from total reflectance.
- Specular transmission is meant to depict the direct light that passes through the screen openings excluding diffuse transmission and the reflective components.
- This direct light represents the undistorted light emitted by the image to be viewed. This value was calculated by the following equation:
- the visual clarity of the working examples is considerably better than the comparative examples. This is quite a surprising result, because the hole sizes are similar in all the examples (working and comparative), and the pick count is higher with the working examples. Because the inventive screens have such better visual clarity, they are much more desirable for the industry, fulfilling the long-felt need for screens with better visual characteristics.
- insects For many screen applications such as windows, doors, screened porches, tents, and more, a special construction of screen may be required for substantial exclusion of insects that are smaller than typical insects such as houseflies and mosquitoes.
- This insect category includes smaller insects such as biting midges, known as "noseeums" or Ceratopogonidae, but also includes even smaller insects commonly found in areas near lakes, rivers, or farms. It can be desirable to exclude these insects from residential applications, recreational vehicles, screened in porches, tents, etc. while still retaining the visual and airflow benefits that insect screens are designed to offer.
- An aspect of this invention includes the use of small diameter fibers to construct an insect screen which has small hole dimensions for tiny insect exclusion yet still offers exceptional visual clarity, light transmission, air flow and durability. It is surprising that by combining small fibers having diameters equal to or less than about 0.007 inches with hole dimensions of equal to or less than about 0.06 inches and equal to or larger than about 0.01 inches, an inventive screen can be produced which far exceeds the performance of conventional screens.
- Comparative Example 3 is a PVC coated fiberglass, 20 x 20 mesh with 0.013-inch fiber diameter.
- Comparative Example 4 is a PVC coated fiberglass, 20 x 30 mesh with 0.015-inch fiber diameter
- Inventive insect screen was fabricated in the following manner:
- PVDF fiber was extruded using standard methodologies known in the industry. For this example, fiber was extruded at a diameter of 0.003 inches. This fiber had an average denier of 85 and average tenacity of 4.3 grams per denier. Black fiber was extruded.
- Inventive Example 4 was produced using the same fiber diameter of 0.003 inches, however the fiber count was 21 fibers per inch for both the warp and fill.
- the resulting holes were square with dimensions of 0.043 inches.
- the light transmission and visual clarity of the inventive examples is considerably better than the comparative examples. This is quite a surprising result, because the hole sizes are similar in all the examples (working and comparative), and the pick count is higher with the working examples. Because the inventive screens have such better visual clarity, they are much more desirable for the industry, fulfilling the long-felt need for screens with better visual characteristics.
- Insect screens are subjected to many mechanical forces that can cause permanent deformation to the screen fabric. These forces can be associated with manufacturing processes, influences during shipping, installation and storage, and forces applied during actual use. Examples of these mechanical forces include framed screens leaning against each other, objects such as patio furniture leaning against screens, a broom stick grazing the screen, humans pushing on the screen, birds flying into the screen, and many others.
- Permanent deformation to an insect screen with improved optical properties can be particularly troublesome.
- inventive insect screens are valued for their visual appearance so any changes to their appearance are highly undesirable. Permanent deformation such as dents, grooves, and depressions can be readily observed in an otherwise invisible screen as it detracts from the improved optical properties. Therefore insect screens which can inherently resist permanent deformation due to mechanical forces are highly desirable, and this is particularly important for insect screens with improved optical properties.
- macroscopic permanent deformation of an insect screen is defined as a physical change to the planarity of the insect screen fabric observable by the unaided eye and which remains in the insect screen until an additional external force is applied.
- methods that can be devised for testing and evaluating permanent deformation. The following describes a test apparatus and method for evaluating the inventive material and comparative examples:
- FIG. 3 shows the deformation test apparatus used.
- the test apparatus 30 is used to apply force on insect screen fabric 34 to test for permanent deformation. Samples of insect screen fabric 34 are tested in a standard spline and groove frame 32. A probe 38 is placed against the insect screen fabric 34 via a probe tip 36. For this test, the probe tip is a 0.26 inch diameter polished chromed steel ball. The probe tip is weighted with various weights 40. The normal force of the probe 38 against the insect screen fabric 34 can be measured by using the force gage 44. The force gage 44 is hooked to the eyelet 42 to measure the force before each test. After measurement, the force gage is unhooked. During the test, the probe tip 36 is dragged across the insect screen fabric 34 via the pivot bar 46, the pivot 47, the actuator bar 48, the worm screw 50, and the motor 52.
- the actuator bar 48 is driven at a rate of 17 inches per minute for a 3 inch pass.
- a single pass is conducted on a sample at a given force on the probe tip 36.
- the insect screen samples are evaluated after each pass both visually and by touch to determine if any permanent deformation is evident that is significant enough to be observed by the human eye.
- Permanent deformation that is observed by the unaided human eye is considered to be macroscopic permanent deformation.
- the deformation is evident in the form of an indented line or groove. The following materials were tested:
- An insect screen sample was fabricated from a stainless steel mesh having 50 x 50 picks per inch with a fiber diameter of 0.0012 inches (1.2 mils). This mesh is commercially available from TWP, Inc of Berkley, California. Comparative Example 6
- Another insect screen was fabricated from type 304 stainless steel woven mesh purchased from TWP having 18 x 18 picks per inch with a fiber diameter of 0.005 inches (5 mil).
- PVDF black pigmented fiber 5 mil diameter PVDF black pigmented fiber was woven into a 32 inch wide construction having 20 picks per inch (ppi) by 17 picks per inch (ppi).
- the warp and fill openings (hole sizes) were measured to be 0.046" and 0.053" respectively.
- the woven fabric was subsequently bonded at the fiber overlaps using a continuous ultrasonic laminating process commonly used in the industry.
- an insect screen should be free of macroscopic permanent deformation when subjected to a force of at least about 0.5 lbs., preferably at least about 1 lb., more preferably at least about 2 lbs., still more preferably at least about 3 lbs., even more preferably at least about 4 lbs. and most preferably at least about 5 lbs. It is quite surprising to combine this resistance to macroscopic permanent deformation attribute with the high light transparency and clarity attributes into an insect screen. This invention has benefit for optically improved insect screen of all types including fine mesh screens, no-see 'um screens, as well as screens with larger openings.
Landscapes
- Engineering & Computer Science (AREA)
- Structural Engineering (AREA)
- Life Sciences & Earth Sciences (AREA)
- Insects & Arthropods (AREA)
- Pest Control & Pesticides (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Textile Engineering (AREA)
- Catching Or Destruction (AREA)
- Artificial Filaments (AREA)
- Knitting Of Fabric (AREA)
- Woven Fabrics (AREA)
Abstract
Description
Claims
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/405,104 US20040198115A1 (en) | 2003-03-31 | 2003-03-31 | Insect screen with improved optical properties |
| US10/677,653 US20040192129A1 (en) | 2003-03-31 | 2003-09-30 | Insect screen with improved optical properties |
| US10/779,536 US20040203303A1 (en) | 2003-03-31 | 2004-02-13 | Durable insect screen with improved optical properties |
| PCT/US2004/010165 WO2004088078A2 (en) | 2003-03-31 | 2004-03-31 | Insect screen with improved optical properties |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1623062A2 true EP1623062A2 (en) | 2006-02-08 |
| EP1623062A4 EP1623062A4 (en) | 2006-08-02 |
Family
ID=33135936
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP04749670A Withdrawn EP1623062A4 (en) | 2003-03-31 | 2004-03-31 | Insect screen with improved optical properties |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP1623062A4 (en) |
| JP (1) | JP2006523273A (en) |
| CA (1) | CA2520696A1 (en) |
| WO (1) | WO2004088078A2 (en) |
Families Citing this family (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE202009017945U1 (en) | 2009-02-06 | 2010-10-14 | Fugafil-Saran Gmbh | Insect repellent fabric |
| DE102011057150B4 (en) | 2011-12-29 | 2024-03-07 | Saati Deutschland Gmbh | Thread and fabric for insect screens, insect screens and process for producing fabrics for insect screens |
| WO2013149145A1 (en) * | 2012-03-30 | 2013-10-03 | Saint-Gobain Adfors Canada, Ltd. | Easy roll stiff screen |
| JP6068874B2 (en) * | 2012-08-29 | 2017-01-25 | 株式会社タマル製作所 | Thin film shielding member for building material laminated with nanofiber, and manufacturing method thereof |
| JP6099997B2 (en) * | 2013-01-29 | 2017-03-22 | 株式会社タマル製作所 | Thin film deodorization shielding member for building materials laminated with nanofiber, and manufacturing apparatus thereof |
| CN108291425B (en) * | 2015-10-14 | 2021-07-13 | 加拿大圣戈班爱德福思有限公司 | Open mesh screen |
| CN106368593B (en) * | 2016-10-11 | 2018-07-31 | 安徽卡塔门窗有限公司 | Mosquito-killing window screen with cleaning function |
| US11332975B1 (en) * | 2019-08-08 | 2022-05-17 | Access Screens LLC | Flap opening with zipper for screened enclosures and methods of making |
| US12247440B2 (en) * | 2023-06-12 | 2025-03-11 | Nico Ip, Llc | High definition screen materials |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3911990A (en) * | 1973-09-27 | 1975-10-14 | D Eugene Hoover | Window and screen combination |
| US5908704A (en) * | 1997-06-30 | 1999-06-01 | Norton Performance Plastics Corporation | Interlayer film for protective glazing laminates |
| US5873999A (en) * | 1997-08-29 | 1999-02-23 | Sefar America Inc. | Sieving and filtration screen |
| JP2989597B1 (en) * | 1998-11-24 | 1999-12-13 | 株式会社鈴寅 | Glass door dew prevention device |
| US6280507B1 (en) * | 2000-02-29 | 2001-08-28 | Advanced Technology Materials, Inc. | Air manager apparatus and method for exhausted equipment and systems, and exhaust and airflow management in a semiconductor manufacturing facility |
| US6880612B2 (en) * | 2002-02-06 | 2005-04-19 | Andersen Corporation | Reduced visibility insect screen |
-
2004
- 2004-03-31 EP EP04749670A patent/EP1623062A4/en not_active Withdrawn
- 2004-03-31 WO PCT/US2004/010165 patent/WO2004088078A2/en not_active Ceased
- 2004-03-31 CA CA002520696A patent/CA2520696A1/en not_active Abandoned
- 2004-03-31 JP JP2006509621A patent/JP2006523273A/en active Pending
Non-Patent Citations (2)
| Title |
|---|
| No further relevant documents disclosed * |
| See also references of WO2004088078A2 * |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2006523273A (en) | 2006-10-12 |
| EP1623062A4 (en) | 2006-08-02 |
| CA2520696A1 (en) | 2004-10-14 |
| WO2004088078A2 (en) | 2004-10-14 |
| WO2004088078A3 (en) | 2005-12-08 |
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