Claims
- 1. In a method of constructing multi-sided, habitable dwellings principally from pre-cut sections of a cementitious material for building up from a foundation, said method comprising the following steps to form a wall:
a.) selecting a discontinuous first course of blocks for cementing on said foundation, where said first course blocks include at least a longitudinal slot, with said slots of adjacent blocks aligned; b.) said first course having vertically oriented blocks of predetermined size with a length of “X” so that the top of said block closely equals the height of a door opening, and a horizontal plane is formed along top of said wall section; and c.) adding horizontally aligned beams on top of said primary course, where a planar top surface is provided, and d.) said openings in said wall are located on at least a one foot center course and a predetermined structural component which is architecturally finished on three sides bordering said opening.
- 2. The method according to claim 1, wherein said longitudinal slots are aligned to define an internal continuous slot for receiving utilities, including the further step of concealing the longitudinal slot by covering with a subsequent course of block.
- 3. The method according to claim 1, including the step of inserting an arcuate configured insert into a receptive longitudinal slot at any angled junction whereby to facilitate feeding of said utility wiring through said receptive slots.
- 4. The method according to claim 2, including the step of providing openings in communication with said continuous slot to house utility electrical wiring outlets for access to said first living level.
- 5. The method according to claim 1, including the step of incorporating plural curved cementitious blocks in said construction, and said curved blocks are fabricated into predetermined curve shape prior to curing said cementitious material.
- 6. The method according to claim 1, including the step of using manufacturing blocks with plural internal voids, which when stacked vertically align to continuously communicate from the base through the upper most block, so that the desired temperature communicated in voids is able to effect block's material and offset negative effects of exterior temperature.
- 7. The method according to claim 1, wherein said final course of cementitious material form beams having an enclosed longitudinal void which can house air duct system so that when said beams are joined a resultant continuous duct system is developed, and openings are made through said beam material into said air duct system as required for living space.
- 8. The method according to claim 1, including the step of providing an uppermost course of blocks to support a roof, and said uppermost course includes a top angled planar surface to define a roof pitch for securing a roof system thereto.
- 9. The method according to claim 1, including the step of overlaying and spanning said final course of beams with predetermined floor panels which have a slot manufactured into said panel, with said slots of adjacent panels aligned, whereby placing rebar and mortar into said slots to provide a bond/ring beam which is integrated into said floor panel, and at least an upper level of embedded steel reinforcing stops shorter of a said panel end which rests on said wall.
- 10. The method according to claim 8, including the step of adding a stair system to join said multiple living levels, where said stair system is comprised of steps of predetermined cementitious material requiring no fasteners nor mortar, and
a.) where said steps have a slot manufactured into at least one end, which slot corresponds to desired angle of stair's run, with said slots of adjacent steps aligned, and b.) said wall also having a corresponding said slot so that when a guide mechanism which length runs from near lower living level to short of upper floor level is inserted into said wall slot.
- 11. The method according to claim 9, including the steps of securing a prefabricated, predetermined elongated shape similarly shaped to a beam of cementitious product which may be reinforced with steel and which can contain a continuous internal void extending from end to end and is open at each end, said beam to secured to said angled planar surface of cementitious material by notching at least one part of either said beam and planar surface so that scarfed joint engage and said beam and planar surface are permanently fastened using only mortar and a metal helical device.
- 12. The method according to claim 11, wherein said beam system includes plural members which connect to each other so that a structural support system results therefrom,
a.) said beams having corresponding notched ends which match for close to flush fit, b.) said beams have a longitudinal cavity into which reinforcing cement can be inserted, and c.) said longitudinal cavity aligns with other beam's said cavity so that reinforcing and cement inserted therein flows through individual beams and thereby make one monolithic system.
- 13. The method according to claim 12, including the further step of applying plural panels to said beam system, said steps comprising:
a.) using fasteners which requires no pre-drilling yet to allow adhesive to be inserted into cavity formed by said fastening device, and b.) said plural panels which are installed at an angle are held in desired position by fastening device while adhesive sets.
- 14. The method according to claim 13, including the further step of applying cementitious roof panels comprised of exposed vertical face having a chamfer with at least one sharply reversing and upward angled groove which aligns with other said panels running parallel to the length of said roof face, said cementitious roof panels having reinforcing design modified so that at least one section of reinforcing stops shorter of panel end and/or side of other said sections, which resultant area void of reinforcing allows panel to be modified by cutting a trough without interference.
- 15. The method according to claim 14, including the further step of applying a top surface face to said roof panels containing an engraved trough running at a downward angle, such that said trough of adjacent said roof panels are aligned so that moisture flows by force of gravity through said trough.
- 16. The method according to claim 15, including the further step of overlaying said roof panels with a polyester/nylon mesh fabric featuring alternating sections of a tight mesh and a loose mesh.
- 17. The method according to claim 16, including the step of applying an elastomeric material to said mesh fabric, where said elastomeric material penetrates only said loose sections to bond to said roof panels, such that an air cavity is created between said tight mesh and said roof panels, which predetermined said air channel is of sufficiency for vapor permeability of roof panel and runs unobstructed from lower starting position to near upper roof ridge where it exhausts.
- 18. The method according to claim 2, including the step of manufacturing curved blocks by a rounded mold inserted into a pan, which rounded mold has predetermined arch and size compatible with desired product and cooperates with said pan.
- 19. The method according to claim 2, including the step of manufacturing curved blocks while said cementitious material is in an uncured state, and using a computer controlled mechanism for directing cutting wires through said uncured cementitious material in a pattern which equates highest yield and least waste, which results in curved cementitious blocks prepared for curing.
- 20. The method according to claim 7, including the step of manufacturing elongated voids in a material by inserting a conical shaped implement in such a manner that smaller end is imbedded in material and larger end is at exterior of said material so that implement can be easily removed with minimal resistance, where two said conical pieces may be connected at smaller ends by having threaded male and female ends, and said conical insert may have an extending helical design so that when removed ridged indentations are in cementitious material to assist bonding when said elongated void is to be filled.
- 21. The method according to claim 20, including the step of joining and simultaneously reinforcing two pieces of materials in one step by adding a to said elongated cavity so when said liquid flows out of said openings in annular wall and bonds to material and sets it makes one monolithic, structurally reinforced piece from plural pieces of materials.
- 22. The method according to claim 1, including the step of forming a fire rated door manufactured of the same cementitious material as said wall.
- 23. The method according to claim 1, including the step of adding plural vertically oriented blocks on said foundation, where adjacent said blocks exhibit an architectural surface finish, including seams, requiring a minimum of final dressing.
- 24. In combination with a procedure for constructing a dwelling consisting primarily of a cementitious material, where said dwelling includes plural upstanding walls formed of cementitious material and terminating in an upper surface suitable for supporting a roof structure, a roof structure comprising:
a.) at least a first panel of cementitious material angled to and supported by said upper surface, where said panel exhibits a planar surface; b.) a polyester/nylon mesh overlying said planar surface, where said mesh includes alternate sections of a tight mesh and a loose mesh; and, c.) an elastomeric composition applied to said mesh, whereby said composition adheres to said planar surface only at locations under said loose mesh, while creating open channels below said tight mesh.
- 25. A fastening member having particular utility in fastening together a pair of panels of cementitious material, said fastening member comprising:
a.) a solid core member having an essentially hour glass cross section; b.) an outer circular wall in contact with opposing portions of said core member, and radially spaced from remaining portions of said core member to define a chamber therebetween, where said radially spaced wall portions include at least one outwardly directed cut-out portion to expose said chamber to the exterior; and, c.) an outwardly tapered head portion at a first end of said core member, a pointed end at the opposite end of said core member, and a radially directed helical member extending along said outer circular wall from said tapered head portion and said pointed end.
- 26. A fastening member for joining a cementitious panel to a wooden submember, where said panel has a predetermined thickness, said fastening member having a shank extending from a head portion with a preselected diameter to a tapered remote end, a first helical portion about said shank with a diameter greater than said preselected diameter and extending along said shaft a distance about equal to the thickness of said panel, and a second helical portion extending over the remaining length of said shaft, where the diameter thereof is less than said preselected diameter.
- 27. The fastening member according to claim 26, wherein said head portion includes a tapered wall about said shank, and said tapered wall includes a series of radial projections extending therefrom.
- 28. An on site waste-free roofing system formed of panels of a cementitious material for overlying a supporting, angled structure extending generally upward at an angle of 45° or 60° from a series of upstanding walls, said system comprising:
a.) selecting a series of rectangular said panels having a length of X and a lesser width having a dimension divisible into X, b.) cutting at least one said panel at an off site location at an angle of either 45° or 60° to overlay on said supporting structure, and, c.) continuing to overlay said supporting structure with additional said panels in abutting relationship to one another until said supporting structure is covered.
- 29. The method according to claim 14, including the step of applying a curable, liquid base material on said roof panels, where said material bonds to cementitious material, and when cured, is waterproof, climate durable, chemical resitant, has a high modulus of elasticity, has a high value of vapor permeableness, durable, tintable for various colors, and bonds well to cementitious material.
- 30. A dual operational fastening device for securing together cementitious materials, said fastening device comprising:
a.) shank member having an annular wall, a core with opening at first end for receiving material into which said fastening device is inserted, and between said first core and an adjacent wall portion, a second core extending to an opening in second end into which an adhesive can be inserted, plural annular cut-out portions extending tangentially from said annular wall connecting to first said core, and plural connecting to said second core, and a helical thread arrangement about said annular wall; and, b.) a broadened head member at first end of said shank member, where said head member includes means for removably securing a rotating hand tool and a void where thread becomes head and end of head does not connect to thread, said opening enabling fastener to counter sink.
- 31. The dual operational/fastening device according to claim 30, wherein there are plural sections of angled tangential helical thread sections protruding from a shank, to form said helical thread arrangement, so that said thread sections assist the shank staying centered in hole and on course during insertion to allow flow around said thread sections and fill cavity between said shank and wall of material.
- 32. The fastening device according to claim 31, wherein said helical thread sections comprise:
a.) thread sections wider at shank and narrowing toward outer end, and simultaneously thread sections are thicker at said shank and thinning toward the outer end, and; b.) said sections are thinner at front leading edge and thicker at second following edge and front leading edge from said shank is shorter than back following edge.
- 33. The process according to claim 1, including the step of inserting a device for fastening wiring into said longitudinal slots which has a narrow opening near floor level and then rises up into material so that slot is hidden from view, whereby said device has,
a.) long handle with shorter curved piece turned upward b.) at end of said upward curve a mechanism for holding wire and simultaneously feeding it to desired location.
- 34. The process according to claim 1, wherein an air duct system is manufactured within a structural component of building and which component, when placed in position, connects to other such components so that the result is a continuous interconnected duct system, and openings for serving rooms are made by penetrating said structural component and duct system, with the result being said system's air supply is sufficient to service the building. Process according to claim 1 whereby waste cementious product is converted into useful fertilizer by grinding into powder and adding any additional nutrients, stabilizers required.
- 35. Process according to claim 21, wherein a machine crushes and pulverizes waste AAC material into a size preferred for sewing into soil for disposal and can act as a nutritional enhancer, soil conditioner.
- 36. The process according to claim 31, including the use of a cutting tool blade which is able to enter a material and cut it in a desired direction without any surface preparation, said comprising:
a.) an elongate member of suitable saw blade material having a width length, thickness, a first leading edge, a second trailing edge, a first end and a second end; said first end being provided with means to connect to a reciprocating mechanism; said first leading edge having saw teeth extending from second end to a first position adjacent the means to connect to a reciprocating mechanism, and; b.) wherein said teeth are of uniform size from first end until beginning of arc on leading edge near second point, where teeth are of closer proximity along arc of first leading edge, which arc terminates at middle point of said blade width, which point is convergence of leading edge and second end and trailing edge; and from second end trailing edge arcs away towards first end with teeth of closer proximity but teeth are positioned to be of neutral cutting angle having points perpendicular to direction of blade length until arc ceases into straight line of trailing edge which continues to first end; so that blade resembles a sword with teeth along leading edge and teeth only on first section of second point on following edge of point.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of Ser. No. 09/784,848, filed Feb. 16, 2001 under the title “AUTOCLAVED AERATED CONCRETE PANELS AND METHODS OF MANUFACTURING, AND CONSTRUCTION USING AUTOCLAVED AERATED CONCRETE PANELS”, and Ser. No. 09/741,787, filed Dec. 21, 2000 under the title “METHODS OF MANUFACTURING AND CONSTRUCTING A HABITABLE, CEMENTITIOUS STRUCTURE”, by the inventor hereof, where the contents thereof are incorporated herein in their entirety.
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09784848 |
Feb 2001 |
US |
Child |
10201035 |
Jul 2002 |
US |
Parent |
09741787 |
Dec 2000 |
US |
Child |
10201035 |
Jul 2002 |
US |