1460729505-e235d95f-1b55-488a-a4d5-84472d7f7749

1. A roof panel comprising:
at least one square shaped bottom structure, the square shaped bottom structure comprises of four equal length sides, each side being L-shaped and the height of the bottom structure being at least one and a half inch, the width being at least one sixteenth of an inch and the perpendicular side being at least half an inch:
at least one lower lattice structure comprised of a plurality of wires, each wire being at least 12 gage, the wires of the lower lattice structure attach to the square shaped bottom structure, five wires of each lower lattice structure run in a first direction and attach to opposite ends of the square shaped bottom structure and all of the five wires are equally spaced apart, and three wires of each lower lattice structure run in a perpendicular direction to the five wires and the three wires attach to the other opposite end of the square shaped bottom structure and all three wires are equally spaced apart:
a plurality of connectors, wherein each connector has a length equal to one of the sides of the square shaped bottom structure, each connector has a top side that has a length of at least half an inch, a middle side that attaches to the top side at a perpendicular angle, the middle side has a length of at least one and a half inches, and a bottom side attached to the middle side at a perpendicular angle, the bottom side has a length of a half an inch and runs in the opposite direction than the top side, each connector attaches to the square shaped bottom structure along the height and the perpendicular side of the square shaped bottom structure:
an upper lattice structure, wherein the upper lattice structure is a wire mesh having a plurality of half inch squares, the upper lattice structure attaches to all perpendicular sides of the square shaped bottom structure;
a plurality of spacers, each spacer attaches and separates the upper lattice structure from the lower lattice structure:
a U-shaped top structure, the U-shaped top structure comprises of two sides of equal length and a middle side having the same length as one of the sides of the square shaped bottom structure, the height of the U-shaped top structure is at least one and a half inch, the width is at least one sixteenth of an inch and the perpendicular side is at least a half an inch, the perpendicular side of the U-shaped top structure attaches to the perpendicular side of the square shaped bottom structure so that the middle side of the U-shaped top structure overlaps one of the sides of the square shaped bottom structure having five wires attached, the remaining perpendicular sides of the U-shaped bottom structure run along the length of the remaining sides of the square shaped bottom structure:
an eaves skeleton, the eaves skeleton has the same length as one of the sides of the square shaped bottom structure, the eaves skeleton attaches to the side of the square shaped bottom structure adjacent to the open end of the U-shaped top structure:
at least two beams, each beam housed within a space created after attaching each connector to each bottom structure, each beam having the same length as one of the sides of the square shaped bottom structure, the height of each beam being approximately one and a half inches in height and approximately one inch in width; and
a cement composite, the cement composite evenly covers the U shaped top structure at least three quarters of an inch from the perpendicular side of the U shaped top structure, the cement composite further covers the lower lattice structure at least one and a half inches from the perpendicular side of the square shaped bottom structure, thereby creating a bottom cement lattice, the cement lattice has a width of at least three quarters of an inch, and the cement composite further covers the eaves.
2. The roof panel of claim 1, wherein the beam is made of wood or a similar material.
3. The roof panel of claim 2, wherein the cement composite is made of cement, fine sand, and latex.
4. The roof panel of claim 3, wherein the cement composite further comprises of fiberglass.
5. The roof panel of claim 4, wherein the length of the sides of each square shaped bottom structure is four feel.
6. The roof panel of claim 1, further comprising at least one U-shaped connector, the U-connector is attached to one of the sides of the U-shaped top structure so that the U-connector overlaps the side of the U-shaped top structure and runs along the complete length of the U-shaped top structure.
7. The roof panel of claim 1, wherein the length of the sides of each square shaped bottom structure is four feet.
8. A method of using the roof panel of claim 1, comprising the steps of;
providing at least two roof panels;
placing the panels side by side on the trusses of a roof;
securing the roof panels on the trusses of the roof;
providing a U-connector: and
attaching and securing the U-connector over the adjacent sides of the roof panels.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A multiband comformed-slotted-folded dipole antenna, comprising:
a unitary conformed shape conductor conforming to an internal communication device configuration;
a folded dipole forming a part of the unitary conformed shape and having a first portion forming at least one slot in a slotted plane and a second portion forming at least one slot in a second plane substantially perpendicular to the slotted plane; and
wherein the at least one slot in the second plane controls high band antenna resonance and a length of a metal portion in the slotted plane controls lower band resonance.
2. The antenna of claim 1, wherein the length of the slot in the second plane controls the high band resonance.
3. The antenna of claim 1, wherein a gap separation between a plurality of slots in the second plane controls the high band resonance.
4. The antenna of claim 1, wherein the length of the slot in the second plane and a gap separation between a plurality of slots in the second plane controls the high band resonance.
5. The antenna of claim 1, wherein the antenna is designed for resonating in bands among 800 MHz, 900 MHz, GPS, 1800 MHz, 1900 MHz, 2.4 GHz, and 2.5 GHz.
6. The antenna of claim 1, wherein the tuning of the slot in the second plane minimally impacts the low band resonance.
7. The antenna of claim 1, wherein the tuning of a length of metal in the slotted plane minimally impacts high band resonances.
8. The antenna of claim 1, wherein the antenna further includes a feeding end and a grounded end, wherein such arrangement is substantially insensitive to nearness to a human body.
9. The antenna of claim 1, wherein the antenna comprises two slots in the second plane that are symmetrical for tuning.
10. The antenna of claim 1, wherein the low band tuning and the high band tuning is completely independent.
11. The antenna of claim 1, wherein the antenna conforms around an audio transducer element in the communication device.
12. The antenna of claim 1, wherein the metal portion in the slotted plane is a meandering line.
13. An antenna, comprising:
a conformed slotted dipole antenna element having first antenna elements in a slotted plane and second antenna elements in a second plane, wherein the slotted plane is substantially orthogonal to the second plane;
a first slot and a second slot in the second plane that controls a high band resonance when the slots are tuned; and
a conductive line in the slotted plane having a length that controls a low band resonance.
14. The antenna of claim 13, wherein a trimming of a length of the slot in the second plane controls the high band resonance in the frequency range of 2.4 GHz and 2.5 GHz.
15. The antenna of claim 13, wherein a horizontal gap separation between the first slot and the second in the second plane at least partially controls the high band resonance.
16. The antenna of claim 13, wherein a vertical gap separation between the slotted plane and the conductive line at least partially controls the high band resonance.
17. The antenna of claim 13, wherein the tuning of the first and second slot in the second plane minimally impacts the low band resonance and the tuning of a length of the conductive line in the slotted plane minimally impacts high band resonances.
18. The antenna of claim 13, wherein the antenna conforms around an audio transducer element in a communication device.
19. An antenna, comprising:
a substantially T-shaped slot in a slotted plane forming a low band controlling line portion coplanar and above the T-shaped slot and a high band controlling line portion coplanar and below a cross bar of the T-shaped slot;
a conductive line that is non-coplanar with the slotted plane and forms a slot having a gap between the slotted plane and the conductive line, wherein the gap further controls a high band resonance of the antenna.
20. The antenna of claim 19, wherein the antenna conforms around the shape of an audio transducer in a mobile communication device.