Senior Fitness - Exercise and Nutrition for Aging Men and Women
FREE Article Feed for your website.
Home Ownership Magazine
Party Planning Information
Article Marketing Resources
Bio-Medical Research Article Database
Informative Articles on Life, Love and Happiness
Tutorials on Business to Writing
Famous Quotes from Famous People
Song Lyric Information
New US Patent Information
Comprehensive List of Content by Category
Online Auctions and Shopping Related Articles
Article Search
Most Recent Articles
Title: Vehicle lamp
Patent Number: 7,438,455 Issued on 10/21/2008 to Ono,   et al.

Title: Light assembly for automotive lighting applications
Patent Number: 7,438,454 Issued on 10/21/2008 to Chinniah,   et al.

Title: Exterior mirror assembly
Patent Number: 7,438,453 Issued on 10/21/2008 to Saitoh,   et al.

Title: Illumination device
Patent Number: 7,438,452 Issued on 10/21/2008 to Nawashiro

Title: Ambient light based illumination control
Patent Number: 7,438,451 Issued on 10/21/2008 to Daniel

Title: Surface light source device and liquid crystal display assembly
Patent Number: 7,438,450 Issued on 10/21/2008 to Aoki,   et al.

Title: Light emitting diode module having a latching component and a heat-dissipating device
Patent Number: 7,438,449 Issued on 10/21/2008 to Lai,   et al.

Title: Light set with heat dissipation means
Patent Number: 7,438,448 Issued on 10/21/2008 to Chen

Title: Apparatus and method for improved illumination area fill
Patent Number: 7,438,447 Issued on 10/21/2008 to Holder,   et al.

Title: Night light projector
Patent Number: 7,438,446 Issued on 10/21/2008 to McCann

Title: Side-emitting light-emitting element and packaging lens thereof
Patent Number: 7,438,445 Issued on 10/21/2008 to Shiau,   et al.

Title: Illumination system and projection system incorporating same
Patent Number: 7,438,423 Issued on 10/21/2008 to Conner

Title: Simplified night sky display system
Patent Number: 7,438,422 Issued on 10/21/2008 to Castellano

Title: Ophthalmic diagnostic apparatus for different types of tests
Patent Number: 7,438,417 Issued on 10/21/2008 to Divo

Title: Optometric apparatus
Patent Number: 7,438,416 Issued on 10/21/2008 to Hayashi,   et al.

Title: Eye examination device by means of tomography with a sighting device
Patent Number: 7,438,415 Issued on 10/21/2008 to Lacombe,   et al.

Title: Gaze discriminating electronic control apparatus, system, method and computer program product
Patent Number: 7,438,414 Issued on 10/21/2008 to Rosenberg

Title: Ophthalmic image sensing apparatus
Patent Number: 7,438,413 Issued on 10/21/2008 to Kashiwagi,   et al.

Title: Colored contact lens with a more natural appearance
Patent Number: 7,438,412 Issued on 10/21/2008 to Ocampo

Title: Plasmon resonant based eye protection
Patent Number: 7,438,411 Issued on 10/21/2008 to Payne,   et al.

Title: Methods and devices for purging gases from an ink reservoir
Patent Number: 7,438,397 Issued on 10/21/2008 to Anderson, Jr.,   et al.

Title: Liquid-jetting apparatus and method for producing the same
Patent Number: 7,438,395 Issued on 10/21/2008 to Sugahara

Title: Micro-electromechanical nozzle arrangement with non-wicking roof structure for an inkjet printhead
Patent Number: 7,438,391 Issued on 10/21/2008 to Silverbrook,   et al.

Title: Method of removing flooded ink from a printhead
Patent Number: 7,438,381 Issued on 10/21/2008 to Morgan,   et al.

Title: Recording apparatus having a device for detecting the presence or absence of a liquid
Patent Number: 7,438,369 Issued on 10/21/2008 to Uchikata

Title: Armrest and method of making the same
Patent Number: 7,438,360 Issued on 10/21/2008 to Chung

Title: Guide tube-fixing structure for sunroof device
Patent Number: 7,438,353 Issued on 10/21/2008 to Tsukamoto,   et al.

Title: Air guiding system for a vehicle
Patent Number: 7,438,347 Issued on 10/21/2008 to Froeschle,   et al.

Title: Electrical connection assembly with unitary sealing and compression ring
Patent Number: 7,438,327 Issued on 10/21/2008 to Auray,   et al.

Title: Tee baffle for use at inlet or outlet of septic and other on-site waste disposal systems
Patent Number: 7,438,326 Issued on 10/21/2008 to Meyers

Title: Rotating passage
Patent Number: 7,438,325 Issued on 10/21/2008 to Rocca,   et al.

Title: Method and components for repairing broken conduit extending from concrete foundations
Patent Number: 7,438,324 Issued on 10/21/2008 to Keiper

Title: Business communication assembly having one or more recessed areas created through ablation by electromagnetic radiation
Patent Number: 7,438,323 Issued on 10/21/2008 to Lowry,   et al.

Title: Label
Patent Number: 7,438,322 Issued on 10/21/2008 to Miller

Title: Binding system
Patent Number: 7,438,321 Issued on 10/21/2008 to Peleman

Title: Rollover protection device
Patent Number: 7,438,317 Issued on 10/21/2008 to Rohner,   et al.

Title: Vehicle steering wheel with pivoting horn
Patent Number: 7,438,312 Issued on 10/21/2008 to Boullosa Vazquez,   et al.

Title: Hose for introduction and distribution of inflator gas
Patent Number: 7,438,311 Issued on 10/21/2008 to Konishi

Title: Knee protecting airbag device
Patent Number: 7,438,310 Issued on 10/21/2008 to Takimoto,   et al.

Title: Portable trailer
Patent Number: 7,438,309 Issued on 10/21/2008 to Tai

Title: Ergonomic telescoping handle assembly for wheeled luggage
Patent Number: 7,438,308 Issued on 10/21/2008 to Kim,   et al.

Title: Safety binding
Patent Number: 7,438,307 Issued on 10/21/2008 to Damiani,   et al.

Title: Motorcycle rake and trail adjuster
Patent Number: 7,438,306 Issued on 10/21/2008 to Mrdeza,   et al.

Title: Agricultural tractor with movable step
Patent Number: 7,438,305 Issued on 10/21/2008 to Schulz

Title: Vehicle mount/dismount system
Patent Number: 7,438,304 Issued on 10/21/2008 to Segall

Title: Apparatus and methods for moving storage and display systems
Patent Number: 7,438,301 Issued on 10/21/2008 to Schilling,   et al.

Title: Hand truck with pivotal retainer
Patent Number: 7,438,300 Issued on 10/21/2008 to Zien,   et al.

Title: Portable enclosure
Patent Number: 7,438,299 Issued on 10/21/2008 to Vera

Title: Steerable snow sled having multiple pivot points
Patent Number: 7,438,298 Issued on 10/21/2008 to Hoskin

Title: Ski attachment for a cambering vehicle
Patent Number: 7,438,297 Issued on 10/21/2008 to Fernandez,   et al.

Title: Apparatus and method for shifting the center of gravity in a vehicle
Patent Number: 7,438,296 Issued on 10/21/2008 to Stevens

Title: Card game
Patent Number: 7,438,295 Issued on 10/21/2008 to Aida

Title: Method for playing a card game
Patent Number: 7,438,294 Issued on 10/21/2008 to Mendola,   et al.

Title: Spray arch controller for a carwash
Patent Number: 7,438,075 Issued on 10/21/2008 to Huntington,   et al.

Title: Method for assessing the condition of the spine
Patent Number: 7,438,074 Issued on 10/21/2008 to Toftness

Title: Portable field anesthesia machine and control therefore
Patent Number: 7,438,072 Issued on 10/21/2008 to Izuchukwu

Title: Barbecue grill with folding shelves
Patent Number: 7,438,071 Issued on 10/21/2008 to Johnson,   et al.

Title: Interactive device for process excellence training
Patent Number: 7,438,068 Issued on 10/21/2008 to Nanguneri

Title: Method of controlling engine using heated exhaust gas sensor
Patent Number: 7,438,067 Issued on 10/21/2008 to Saito,   et al.

Title: Flow passage switching valve
Patent Number: 7,438,062 Issued on 10/21/2008 to Okawa,   et al.

Title: Method and apparatus for estimating exhaust pressure of an internal combustion engine
Patent Number: 7,438,061 Issued on 10/21/2008 to Wang,   et al.

Title: Abnormality-determining device and method for fuel supply system, and engine control unit
Patent Number: 7,438,052 Issued on 10/21/2008 to Awano,   et al.

Title: System for determining the start of combustion in an internal combustion engine
Patent Number: 7,438,049 Issued on 10/21/2008 to Caretta,   et al.

Title: Multi-cylinder engine
Patent Number: 7,438,047 Issued on 10/21/2008 to Kawasaki,   et al.

Title: Failure detection apparatus for variable valve timing and lift control system of internal combustion engine
Patent Number: 7,438,046 Issued on 10/21/2008 to Okubo,   et al.

Title: Internal combustion engine with auxiliary combustion chamber
Patent Number: 7,438,043 Issued on 10/21/2008 to Shiraishi,   et al.

Title: Method of stopping internal combustion engine
Patent Number: 7,438,042 Issued on 10/21/2008 to Kawada

Title: Connecting rod-crank piston pin for the carrying out of an eccentric connecting rod system preferably for internal-combustion engines
Patent Number: 7,438,041 Issued on 10/21/2008 to Renato

Title: Cylinder liner and methods construction thereof and improving engine performance therewith
Patent Number: 7,438,038 Issued on 10/21/2008 to Azevedo,   et al.

Title: Internal combustion engine and liner installation ring
Patent Number: 7,438,037 Issued on 10/21/2008 to Oogake,   et al.

Title: Oil metering valve seal
Patent Number: 7,438,036 Issued on 10/21/2008 to Hesher,   et al.

Title: Cam drive apparatus having a magnetic gear
Patent Number: 7,438,035 Issued on 10/21/2008 to Farah

Title: Camshaft-adjusting device
Patent Number: 7,438,034 Issued on 10/21/2008 to Meintschel,   et al.

Title: Variable valve timing control apparatus for internal combustion engine and internal combustion engine including variable valve timing control apparatus
Patent Number: 7,438,033 Issued on 10/21/2008 to Moriya

Title: Method and device for controlling an internal combustion engine
Patent Number: 7,438,032 Issued on 10/21/2008 to Herold,   et al.

Helix radiating elements for high power applications Number:7,142,171 from the United States Patent and Trademark Office (PTO) owispatent

Home    Author Login    Submit Article    Article Search    Add Your Link    Edit Your Link    Contact Us    Advertising    Disclaimer

   

 
Web LinkGrinder.com

Top Breaking News
     Greek, Cypriot Leaders Resume Unification Talks in Nicosia by Nathan Morley
     Indonesia Tobacco Sales Grow, Raising Health Fears
     South Korea Allows Top Defector to Travel Overseas by VOA News

Title: Helix radiating elements for high power applications

Abstract: A helix radiating element is disclosed. The helix radiating element includes a support, a base and a helix wire. The support is made up of a dielectric material including a PEEK (Polyetheretherketone) material. The base is coupled to the support and is made up of boron nitride. The helix wire is configured to be wrapped around the support and bonded to the base. The base is coupled to a ground plane. A boron nitride filled adhesive is used to bond the support to the base and bond the helix wire to the base. The boron nitride filled adhesive is also used to bond the base to the ground plane. Heat generated in the helix wire is transferred to the ground plane via the base.

Patent Number: 7,142,171 Issued on 11/28/2006 to Patel,   et al.


Inventors: Patel; Kanti N. (Newton, PA), Clark; R. Mark (Langhorne, PA), Mlynarski; Dennis (Lumberton, NJ), Davies; Robert G. (Pennsauken, NJ)
Assignee: Lockheed Martin Corporation (Bethesda, MD)
Appl. No.: 11/105,373
Filed: April 14, 2005


Current U.S. Class: 343/895
Current International Class: H01Q 1/36 (20060101)
Field of Search: 343/895


References Cited [Referenced By]

U.S. Patent Documents
2763003 September 1956 Harris
3623118 November 1971 Monser et al.
6663969 December 2003 Masayuki et al.
7038636 May 2006 Larouche et al.
2003/0060731 March 2003 Fleischhacker
Primary Examiner: Nguyen; Hoang V.
Assistant Examiner: Duong; Dieu Hien
Attorney, Agent or Firm: McDermott Will & Emery LLP.

Claims



What is claimed is:

1. A helix radiating element comprising: a support, the support being made up of a dielectric material including PEEK (Polyetheretherketone); a base coupled to the support, the base being made up of boron nitride; a helix wire configured to be wrapped around the support and bonded to the base; and a ground plane coupled to the base; wherein a boron nitride filled adhesive is used to bond the support to the base, to bond the helix wire to the base and to bond the base to the ground plane, and wherein heat generated in the helix wire is transferred to the ground plane via the base.

2. The helix radiating element of claim 1 wherein the helix wire is wrapped around the support in a geometrical configuration, the geometrical configuration chosen to optimize electromagnetic wave radiation.

3. The helix radiating element of claim 2 wherein the support further includes a plurality of grooves, the plurality of grooves being used to secure the helix wire to form the geometrical configuration.

4. The helix radiating element of claim 1 wherein the helix wire is made up of aluminum.

5. The helix radiating element of claim 1 wherein the boron nitride filled adhesive includes boron nitride and silicone.

6. The helix radiating element of claim 1 wherein the boron nitride filled adhesive is further used to fill up space between the helix wire and the base without leaving any trapped air therebetween.

7. The helix radiating element of claim 1 wherein the helix wire further includes a first section and a second section; wherein the first section is bonded to the base; wherein the second section includes a lug having one end, the first section being welded to the lug, the one end of the lug forming a coaxial line input for RF (radio frequency) power.

8. The helix radiating element of claim 7 wherein the coaxial line input is configured to be coupled to a RF component.

9. A RF communications circuit incorporating the helix radiating element as recited in claim 1.

10. A satellite incorporating the helix radiating element as recited in claim 1.

11. A method of assembling a helix radiating element, the method comprising: wrapping a helix wire around a support, the support being made up of a dielectric material including PEEK (Polyetheretherketone); bonding one section of the helix wire to a base, the base being coupled to the support and made up of boron nitride; bonding a ground plane to the base; and using a boron nitride filled adhesive to bond the helix wire to the base and to bond the base to the ground plane; wherein heat generated in the helix wire is transferred to the ground plane via the base.

12. The method of claim 11 wherein the helix wire is wrapped around the support in a geometrical configuration, the geometrical configuration chosen to optimize electromagnetic wave radiation.

13. The method of claim 12 wherein the support further includes a plurality of grooves, the plurality of grooves being used to secure the helix wire to form the geometrical configuration.

14. The method of claim 11 wherein the helix wire is made up of aluminum.

15. The method of claim 11 wherein the boron nitride filled adhesive include boron nitride and silicone.

16. The method of claim 11 further comprising: using the boron nitride filled adhesive to fill up space between the helix wire and the base without leaving any trapped air therebetween.

17. The method of claim 11 wherein the helix wire further includes a first section and a second section having a lug with one end, the method further comprising: bonding the first section to the base; and welding the first section to the lug, the one end of the lug forming a coaxial line input for RF (radio frequency) power.

18. The method of claim 17 wherein the coaxial line input is configured to be coupled to a RF component.

19. A RF communications circuit incorporating the helix radiating element assembled according to the method as recited in claim 11.

20. A satellite incorporating the helix radiating element assembled according to the method as recited in claim 11.
Description



CROSS-REFERENCES TO RELATED APPLICATION(S)

Not Applicable.

STATEMENT AS TO RIGHTS TO INVENTIONS MADE UNDER FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT

Not Applicable.

BACKGROUND OF THE INVENTION

The present invention generally relates to helix radiating elements, and more specifically, to methods and devices for providing helix radiating elements for high power applications.

The power handling capability of a helix radiating element is known to be limited by heating effects in the first several turns of the wire. The limitation is usually in the dielectric that supports the wire. Currently, such limitation does not pose too much of a problem because the operating power levels are relatively low and common dielectrics are deemed to be sufficient for handling such power levels.

As applications become more and more capacity driven, there is a corresponding increase in demand for transmission of high power. Traditional dielectrics may no longer be able to perform within tolerable parameters. Consequently, the power handling capability of radiating elements needs to be improved to accommodate higher operating power levels.

Hence, it would be desirable to provide methods and devices that can be used to implement radiating elements to allow such elements to more effectively handle higher operating power levels.

SUMMARY OF THE INVENTION

The present invention improves the power handling capability of radiating elements. In one embodiment, a helix radiating element is disclosed. The helix radiating element includes a support, a base and a helix wire. The support is made up of a dielectric material including PEEK (Polyetheretherketone), a dielectric with high temperature capability. The base is coupled to the PEEK support and is made up of boron nitride. Boron nitride is a low-loss, high temperature ceramic that is thermally conductive. The helix wire is configured to be wrapped around the PEEK support and bonded to the base. The base is coupled to a ground plane. A boron nitride filled adhesive is used to bond the support to the base and bond the helix wire to the base. The boron nitride filled adhesive has thermal conduction capability. The boron nitride filled adhesive is also used to bond the base to the ground plane. Heat generated in the helix wire is transferred to the ground plane via the base.

Low RF (radio frequency) loss (dissipation) and thermally conductive boron nitride and boron nitride filled silicone adhesive dielectrics are tailor made to provide heat transfer from the helix wire to the ground plane. In order to minimize the mass yet provide adequate support structure for the wire, a composite bonded helix support structure of various dielectrics are used.

In one aspect, a method of assembling a helix radiating element is disclosed. The method includes wrapping a helix wire around a support, the support being made up of a dielectric material including PEEK, bonding one end of the helix wire to a base, the base being coupled to the support and made up of boron nitride, bonding a ground plane to the base, and using a boron nitride filled adhesive to bond the support to the base, bond the helix wire to the base and bond the base to the ground plane, wherein heat generated in the helix wire is transferred to the ground plane via the base.

The present invention may provide a number of advantages and/or benefits. For example, the present invention increases the power handling capability of a helix radiating element and improves the return loss match of the radiating element by use of dielectric matching.

Reference to the remaining portions of the specification, including the drawings and claims, will realize other features and advantages of the present invention. Further features and advantages of the present invention, as well as the structure and operation of various embodiments of the present invention, are described in detail below with respect to accompanying drawings, like reference numbers indicate identical or functionally similar elements.

BRIEF DESCRIPTION OF THE DRAWINGS

Aspects, advantages and novel features of the present invention will become apparent from the following description of the invention presented in conjunction with the accompanying drawings:

FIG. 1 is a front elevational view of a helix radiating element according to one embodiment of the present invention;

FIG. 2 is a perspective view of the helix radiating element as shown in FIG. 1;

FIG. 3 is a perspective view of a support that is a part of the helix radiating element as shown in FIG. 1;

FIG. 4 is a perspective view of a base that is a part of the helix radiating elements as shown in FIG. 1;

FIG. 5 is a perspective view of a lug that is a part of the helix radiating element as shown in FIG. 2; and

FIG. 6 is a cross-sectional view of how a helix wire is bonded to a base according to one embodiment of the present invention.

DESCRIPTION OF THE SPECIFIC EMBODIMENTS

The present invention in the form of one or more exemplary embodiments will now be described. FIG. 1 illustrates one embodiment of a helix radiating element 10 coupled to a ground plane 12. The ground plane 12, in turn, is coupled to a RF (radio frequency) port 14. FIG. 2 further illustrates the helix radiating element 10 as shown in FIG. 1. The helix radiating element 10 includes a support 16, a helix wire 18 and a base 20, each of which will be further described below.

FIG. 3 illustrates the support 16 in further detail. In one embodiment, the support 16 is machined as one integral piece. The support 16 has a central section 24 and a number of panel sections 26a d. A number of grooves or notches 22 are located along the edge of each of the panel sections 26a d. The grooves 22 are machined at precise locations along the edges to enable the helix wire 18 to be wrapped around the support 16 in a precise geometrical configuration. By positioning the helix wire 18 in a precise geometrical configuration around the support 16, the radiation characteristics of electromagnetic waves emanating from the helix wire 18 can be controlled. Based on the disclosure and teachings provided herein, a person with ordinary skill in the art will appreciate how to position the helix wire 18 in a desired geometrical configuration to effectively control electromagnetic waves radiation characteristics. The support 16 is made up of PEEK dielectric materials that have good structural and thermal properties including, for example, relatively high melting temperature. It should be noted that the support 16 may be made up of other types of dielectric materials having relatively high melting temperature, such as, Nylon and Ultem materials.

FIG. 4 illustrates the base 20 in further detail. The base 20 is machined as one integral piece with grooves or notches 28a d. The composition of the base 20 includes boron nitride. The grooves 28a d are positioned at certain specific locations so as to enable the panel sections 26-a d of the support 16 to fit into and be bonded with the corresponding grooves 28a d. As will be further described below, the support 16 is bonded to the base 20 using a boron nitride filled adhesive.

The helix wire 18 is wrapped around the support 16 and the base 20. In one embodiment, the helix wire 18 is made up of solid aluminum with a diameter of, for example, 0.080''. As noted above, the diameter of the helix wire 18 and its geometrical configuration (e.g., the helix diameter and pitch) around the support 16 are chosen such that the electromagnetic wave radiation and the power handling capability of the helix radiating element 10 are optimized. The helix wire 18 is secured into the grooves 22 along the edges of the panel section 26a d to effect the desired geometrical configuration. Based on the disclosure and teachings provided herein, a person with ordinary skill in the art will appreciate how to select the appropriate diameter and geometrical configuration.

The helix wire 18 is made up of two (2) parts. One part is a cylindrical section with a uniform diameter of, for example, 0.080''. The second part is a lug 30. The lug 30 is also made of solid aluminum. FIG. 5 further illustrates an embodiment of the lug 30. The lug 30 further includes a wire base 34 and a pin 32. The wire base 34 and the pin 32 are machined as one integral piece. The cylindrical section of the helix wire 18 is welded to the lug 30 at the wire base 34. The pin 32 forms a coaxial line input for RF power. The coaxial line input can be attached to a RF connector or directly integrated with other RF components, such as, a diplexer/filter etc.

To further control heat dissipation, a number of bottom turns 36 (e.g., four (4) turns) of the helix wire 18 from the base 20 are painted with black thermal paint. The black thermal paint provides better thermal emissivity which helps dissipate heat further by radiation.

FIG. 6 further illustrates how the helix wire 18 is bonded to the base 20. The helix wire 18 is bonded to the base 20 using a boron nitride filled adhesive. The boron nitride filled adhesive includes silicone and boron nitride. The adhesive is used to bond the helix wire 18 along its longitudinal length for the first turn around the base 20. The adhesive is also applied to the bottom of the base 20 to bond the base 20 to the ground plane 12 using, for example, a wet bond joint. Furthermore, the adhesive is used to bond the support 16 to the base 20 and to fill up the space between the helix wire 18 and the base 20 without leaving any trapped air or voids. If air or voids (that are larger than 0.010'') exist between the helix wire 18 and the base 20, sufficient voltage may be developed between the helix wire 18 and the base 20 to trigger RF breakdown due to multipaction and/or the Corona effect when high power is transmitted through the helix wire 18 in an outer space environment.

By using the helix element assembly 10, heat transfer or dissipation can be effectively managed in two ways, for example, via the properties of the boron nitride and the thermal paint on the helix wire 18. Due to the thermal conductivity properties of boron nitride, a heat transfer path is provided allowing heat from the helix wire 18 to dissipate via the ground plane 12. More specifically, heat generated in the helix wire 18 is transferred to the base 20 which, in turn, transfers the heat to the ground plane 12. Furthermore, use of boron nitride also permits transmission of high power through the helix wire 18 without burning up materials or multipacting at high power levels.

Boron nitride and the boron nitride filled adhesive experience low loss at RF frequency. Consequently, the use of boron nitride and boron nitride filled adhesive also minimizes RF dielectric losses.

The helix radiating element 10 has been successfully tested for high power handing in TVAC (thermal vacuum) chamber up to power level exceeding 240 watts at S-band. Since RF loss (i.e., dissipation) at lower frequencies is much less, even higher power levels can be achieved at lower frequencies.

Based on the disclosure and teachings provided herein, it should be understood that the present invention can be used in a variety of high power applications including, for example, RF communications circuitry for use in connection with satellites and other space-based applications. A person of ordinary skill in the art will appreciate other ways and/or methods to deploy the present invention in different types of applications.

The above description is illustrative but not restrictive. Many variations of the present invention will become apparent to those skilled in the art upon review of the disclosure. The scope of the present invention should, therefore, be determined not with reference to the above description, but instead should be determined with reference to the pending claims along with their full scope or equivalents.

*


Free Web Sudoku Puzzles.
Solve with your browser.
  2   3 8        
          1 4   3
  7   2          
2 8         7 3  
  9           6  
  1 3         8 9
          4   9  
8   9 6          
        2 7   5  
What is it?



Add Your Site · Terms Of Service · Privacy Policy


DISCLAIMER
Linkgrinder is a free service that searches the Internet and indexes all files found so that you may search quickly and easily for shared files. These files are created and made available individually by users whose identity we are not aware of and who we have no control over. In essence we function like a search engine tool; these files ARE NOT STORED OR SERVED BY OUR NETWORK. We are not responsible for any materials obtained by using our service. We do not monitor any of the contents of these files. These files may contain viruses, illegal materials, materials inappropriate for minors, offensive files and the like. BY USING OUR SERVICE, YOU ASSUME FULL RESPONSIBILITY FOR DOWNLOADING THESE MATERIALS AND WILL INDEMNIFY US FOR ANY DAMAGES THAT MAY BE INCURRED.

For More Specific Information VIEW OUR TERMS OF SERVICE.

Thank you and Enjoy!