1460730083-31e4442b-dd6e-4438-8a7e-b48ee4cdb12d

1. An electronic device comprising:
a display;
a communication component;
a memory storing data in a first sandbox and data in a second sandbox, the first sandbox being a secure sandbox and having a shadow data component, the shadow data component storing a subset of the data stored in the first sandbox; and
a processor coupled to the display, the communication component, and the memory, the processor being configured to:
in response to a request:
provide the data stored in the first sandbox when the first sandbox is in an unlocked mode; and
provide the data stored in the shadow data component when the first sandbox is in a locked mode.
2. The electronic device according to claim 1, wherein the processor is further configured to:
receive from a server via the communication component information for updating the data stored in the first sandbox;
update the data stored in the first sandbox when the first sandbox is in the unlocked mode; and
update the data stored in the shadow component.
3. The electronic device according to claim 1, wherein the first sandbox further has an associated queue and the processor is further configured to:
receive from a server via the communication component information for updating the data stored in the first sandbox;
store the information for updating the data stored in the first sandbox in the queue when the first sandbox is in the locked mode; and
update the data stored in the shadow data component.
4. The electronic device according to claim 3, wherein the processor is further configured to:
update the data stored in the first sandbox based on the information for updating the data stored in the first sandbox stored in the queue when the first sandbox enters the unlocked mode.
5. The electronic device according to claim 1, wherein both the first sandbox and the second sandbox are controlled exclusively by a single operating system, the data stored in the first sandbox is encrypted, and the data stored in the shadow data component is a redundant subset of the data stored in the first sandbox.
6. The electronic device according to claim 1, wherein the electronic device displays an update on the display using the data stored in the shadow data component when the first sandbox is in the locked mode.
7. The electronic device according to claim 6, wherein the update is selected from the group consisting of a calendar reminder, an email notification, and a contact list entry.
8. The electronic device according to claim 3, wherein an element of data that is stored in both the first sandbox and the shadow data component is associated by a first identifier and an element of data that is stored in both the queue and the shadow data component is associated by a second identifier.
9. The electronic device according to claim 1, wherein when the first sandbox is in the locked mode, all data stored in the first sandbox is inaccessible except for data stored in a start-up area of the first sandbox until access to the first sandbox is authenticated and wherein the shadow data component is stored in the start-up area.
10. A method for use on an electronic device having a display, a communication component, a memory storing data in a first sandbox and data in a second sandbox, the first sandbox being a secure sandbox and having a shadow data component, the shadow data component storing a subset of the data stored in the first sandbox, and a processor coupled to the display, the communication component, and the memory, the method comprising:
in response to a request:
providing the data stored in the first sandbox when the first sandbox is in an unlocked mode; and
providing the data stored in the shadow data component when the first sandbox is in a locked mode.
11. The method according to claim 10, further comprising:
receiving from a server via the communication component information for updating the data stored in the first sandbox;
updating the data stored in the first sandbox when the first sandbox is in the unlocked mode; and
updating the data stored in the shadow component.
12. The method according to claim 10, wherein the first sandbox further has an associated queue, the method further comprising:
receiving from a server via the communication component information for updating the data stored in the first sandbox;
storing the information for updating the data stored in the first sandbox in the queue when the first sandbox is in the locked mode; and
updating the data stored in the shadow data component.
13. The method according to claim 12, further comprising:
updating the data stored in the first sandbox based on the information for updating the data stored in the first sandbox stored in the queue when the first sandbox enters the unlocked mode.
14. The method according to claim 10, wherein both the first sandbox and the second sandbox are controlled exclusively by a single operating system, the data stored in the first sandbox is encrypted, and the data stored in the shadow data component is a redundant subset of the data stored in the first sandbox.
15. The method according to claim 10, further comprising displaying an update on the display using the data stored in the shadow data component when the first sandbox is in the locked mode.
16. The method according to claim 15, wherein the update is selected from the group consisting of a calendar reminder, an email notification, and a contact list entry.
17. The method according to claim 12, wherein an element of data that is stored in both the first sandbox and the shadow data component is associated by a first identifier and an element of data that is stored in both the queue and the shadow data component is associated by a second identifier.
18. The method according to claim 10, wherein when the first sandbox is in the locked mode, all data stored in the first sandbox is inaccessible except for data stored in a start-up area of the first sandbox until access to the first sandbox is authenticated and wherein the shadow data component is stored in the start-up area.
19. A computer program product comprising a computer readable medium having stored thereon computer executable instructions that when executed by a computer perform a method for use on the computer having a display, a communication component, a memory storing data in a first sandbox and data in a second sandbox, the first sandbox being a secure sandbox and having a shadow data component, the shadow data component storing a subset of the data stored in the first sandbox, and a processor coupled to the display, the communication component, and the memory, the method comprising:
in response to a request:
providing the data stored in the first sandbox when the first sandbox is in an unlocked mode; and
providing the data stored in the shadow data component when the first sandbox is in a locked mode.

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 method to form vehicle engine air intake device, said method comprising:
providing a conductive loaded, resin-based material comprising conductive materials in a resin-based host; and
molding said conductive loaded, resin-based material into a vehicle engine air intake device comprising a hollow air transporting structure.
2. The method according to claim 1 wherein the percent by weight of said conductive materials is between about 20% and about 50% of the total weight of said conductive loaded resin-based material.
3. The method according to claim 1 wherein said conductive materials comprise micron conductive fiber.
4. The method according to claim 2 wherein said conductive materials further comprise conductive powder.
5. The method according to claim 1 wherein said conductive materials are metal.
6. The method according to claim 1 wherein said conductive materials are non-conductive materials with metal plating.
7. The method according to claim 1 wherein said step of molding comprises:
injecting said conductive loaded, resin-based material into a mold;
curing said conductive loaded, resin-based material; and
removing said vehicle fuel delivery device from said mold.
8. The method according to claim 1 wherein said step of molding comprises:
loading said conductive loaded, resin-based material into a chamber;
extruding said conductive loaded, resin-based material out of said chamber through a shaping outlet; and
curing said conductive loaded, resin-based material to form said vehicle fuel delivery device.
9. A method to form a vehicle engine air intake device, said method comprising:
providing a conductive loaded, resin-based material comprising conductive materials in a resin-based host wherein the percent by weight of said conductive materials is between 20% and 40% of the total weight of said conductive loaded resin-based material; and
molding said conductive loaded, resin-based material into a vehicle engine air intake device comprising a hollow air transporting structure.
10. The method according to claim 9 wherein said conductive materials are nickel plated carbon micron fiber, stainless steel micron fiber, copper micron fiber, silver micron fiber or combinations thereof.
11. The method according to claim 9 wherein said conductive materials comprise micron conductive fiber and conductive powder.
12. The method according to claim 11 wherein said conductive powder is nickel, copper, or silver.
13. The method according to claim 11 wherein said conductive powder is a non-metallic material with a metal plating.
14. The method according to claim 9 wherein said hollow structure is a pipe or hose.
15. The method according to claim 9 wherein said hollow structure is a manifold.
16. The method according to claim 9 wherein said hollow structure is the housing of a turbo charger.
17. The method according to claim 9 wherein said hollow structure is the housing of a throttle valve.
18. The method according to claim 9 wherein said conductive loaded resin-based material further comprises a ferromagnetic material.
19. A method to form a vehicle engine air intake device, said method comprising:
providing a conductive loaded, resin-based material comprising micron conductive fiber in a resin-based host wherein the percent by weight of said micron conductive fiber is between 20% and 50% of the total weight of said conductive loaded resin-based material; and
molding said conductive loaded, resin-based material into a vehicle engine air intake device comprising a hollow air transporting structure.
20. The method according to claim 19 wherein said micron conductive fiber is stainless steel.
21. The method according to claim 19 wherein said micron conductive fiber has a diameter of between about 3 \u03bcm and about 12 \u03bcm and a length of between about 2 mm and about 14 mm.
22. The method according to claim 19 wherein said hollow structure is an exhaust manifold.
23. The method according to claim 19 wherein said hollow structure is a muffler.
24. The method according to claim 19 wherein said conductive loaded resin-based material further comprises a ferromagnetic material.
25. The method according to claim 19 further comprising plating said conductive loaded resin-based material with a metal plating.