1460742926-baf122cb-ab78-4f2b-be6f-756d9f221882

1. A multi-chip package, comprising:
a plurality of devices;
a first internal voltage generator located on at least one of the devices and designed to generate a first voltage signal from a voltage signal supplied to an external pad of the MCP; and
a first conductive interconnect structure spanning the plurality of devices and allowing the first voltage signal to be shared between the plurality of devices.
2. The multi-chip package of claim 1, further comprising:
a switch on at least one of the devices allowing selective coupling of one or more traces to the first interconnect structure.
3. The multi-chip package of claim 2, further comprising:
control logic to generate a control signal to disconnect the one or more traces for one of the devices from the interconnect structure when the one device is not selected.
4. The multi-chip package of claim 1, wherein:
each device has an internal voltage generator with a capacitor to maintain a voltage generated thereby; and
the interconnect structure forms a parallel connection between the capacitors resulting in a summing of the corresponding capacitance.
5. The multi-chip package of claim 1, wherein the devices comprise devices with different functions.
6. The multi-chip package of claim 1, wherein:
at least one of the devices comprises a processor; and
at least one of the devices comprises a memory device.
7. A multi-chip package, comprising:
a plurality of memory devices;
a first internal voltage generator located on at least one of the memory devices and designed to generate a first voltage signal from a voltage signal supplied to an external pad of the MCP; and
a first conductive interconnect structure spanning the plurality of memory devices and allowing the first voltage signal to be shared between the plurality of memory devices.
8. The multi-chip package of claim 7, further comprising:
a switch on at least one of the memory devices allowing selective coupling of one or more traces to the first interconnect structure.
9. The multi-chip package of claim 8, further comprising:
control logic to generate a control signal to disconnect the one or more traces for one of the devices from the interconnect structure when the one memory device is not being accessed.
10. The multi-chip package of claim 7, wherein:
each memory device has an internal voltage generator with a capacitor to maintain a voltage generated thereby; and
the interconnect structure forms a parallel connection between the capacitors resulting in a summing of the corresponding capacitance.
11. The multi-chip package of claim 7, wherein at least two of the memory devices are dynamic random access memory (DRAM) devices.
12. The multi-chip package of claim 11, wherein the internal voltage generator generates a Voltage Bit Line High (VBLH) voltage.
13. The multi-chip package of claim 7, wherein:
at least one of the memory devices comprises a dynamic memory device; and
at least one of the memory devices comprises a static memory device.
14. A method, comprising:
generating a voltage with a circuit internal to a first device of a multi-chip package (MCP);
providing the generated voltage to a second device of the MCP via an interconnect structure that spans the first and second devices.
15. The method of claim 14, further comprising:
selectively coupling one or more traces to the first interconnect structure.
16. The method of claim 14, wherein selectively coupling one or more traces to the first interconnect structure comprises generating a control signal to control a switch to disconnect the one or more traces for one of the devices from the interconnect structure when the one device is not selected.
17. The method of claim 14, comprising:
generating a voltage with a circuit internal to each of the first and second devices, each device having an internal voltage generator with a capacitor to maintain a voltage generated thereby; and
connecting the capacitors in parallel via the interconnect structure resulting in a summing of the corresponding capacitance.
18. The method of claim 14, wherein the first and second devices comprise devices with different functions.
19. The method of claim 14, wherein:
the first device comprises a processor; and
the second device comprises a memory device.
20. The method of claim 14, wherein:
the first and second device comprise dynamic random access memory (DRAM) devices; and
the generated voltage comprises a VBLH voltage.

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 mobile terminal, comprising:
a first touch device configured to display an execution screen of an application including a graphic user interface (GUI) for controlling a plurality of functions of the application and to receive a first touch input via a control item included in the GUI;
a second touch device physically separated from the first touch device and configured to receive a second touch input; and
a controller configured to:
execute a function of the plurality of functions in response to the second touch input, wherein the second touch input occurs while the first touch input is maintained, and wherein the function is associated with the control item; and
cause the first touch device to display an indicator indicating a degree of execution of the function, wherein the degree of execution is based on the second touch input, and wherein the indicator is included in the GUI.
2. The mobile terminal of claim 1, wherein the controller is further configured to continue the execution of the function or cease the execution of the function according to a release of at least one of the first or the second touch inputs based on a predetermined control mode of the mobile terminal.
3. The mobile terminal of claim 2, wherein the controller is further configured to continue the execution of the function irrespective of a release of the first touch input.
4. The mobile terminal of claim 2, wherein the controller is further configured to cease the execution of the function when the first touch input is released.
5. The mobile terminal of claim 2, wherein the controller is further configured to continue the execution of the function irrespective of a release of the second touch input.
6. The mobile terminal of claim 2, wherein the controller is further configured to cease the execution of the function when the second touch input is released.
7. The mobile terminal of claim 1, wherein the controller is further configured to only execute the function when a shape of the second touch input matches a predetermined shape corresponding to the function.
8. The mobile terminal of claim 7, wherein the controller is further configured to detect the degree of execution of the function according to a length of the second touch input.
9. The mobile terminal of claim 7, wherein the controller is further configured to detect the degree of execution of the function according to a direction of the second touch input.
10. The mobile terminal of claim 7, wherein the controller is further configured to cause the first touch device to display a shape indicator indicating the predetermined shape.
11. A method for controlling a mobile terminal, the method comprising:
displaying an execution screen of an application via a first touch device of the mobile terminal, the execution screen comprising a graphic user interface (GUI) for controlling a plurality of functions of the application;
receiving a first touch input to a control item included in the GUI;
receiving a second touch input via a second touch device of the mobile terminal;
executing a function of the plurality of functions in response to the second touch input, wherein the second touch input occurs while the first touch input is maintained, and wherein the function is associated with the control item; and
displaying an indicator via the first touch device, the indicator indicating the degree of execution of the function, wherein the degree of execution is based on the second touch input, and wherein the indicator is included in the GUI;
wherein the first touch device is physically separated from the second touch device.
12. The method of claim 11, further comprising:
continuing execution of the function or ceasing execution of the function according to a release of at least one of the first or the second touch inputs based on a predetermined control mode of the mobile terminal.
13. The method of claim 11, further comprising continuing execution of the function irrespective of a release of the first touch input.
14. The method of claim 11, further comprising continuing execution of the function when the first touch input is released.
15. The method of claim 11, further comprising ceasing execution of the function when the first touch input is released.
16. The method of claim 11, further comprising continuing execution of the function irrespective of a release of the second touch input.
17. The method of claim 11, further comprising ceasing execution of the function when the second touch input is released.
18. The method of claim 11, further comprising:
detecting a shape of the second touch input; and
executing the function only if the detected shape matches a predetermined shape corresponding to the function.
19. The method of claim 18, further comprising detecting the degree of execution of the function according to a length of the second touch input.
20. The method of claim 18, further comprising detecting the degree of execution of the function according to a direction of the second touch input.
21. The method of claim 18, further comprising displaying a shape indicator via the first touch device, the shape indicator indicating the predetermined shape.

1460742918-c319f524-9cae-40de-8512-a1cc53ceeba3

I claim:

1. A wet granulation method for granulating a feedstock into granules, comprising the steps of:
providing a first feedstock having about 99.9% particle size of 150 mesh of said 99.9% particle size of 150 mesh about 90% comprising a particle size of 200 mesh;
providing a binder material having a moisture content;
contacting said first feedstock with said binder;
forming a pre-moistened mixture of said binder, said first feedstock and said moisture;
introducing said pre-moistened mixture onto a pan granulator containing a second feedstock different in composition from said first feedstock;
maintaining moisture conditions on said pan where the moisture content on said pan is between 1.5% and 11% by weight; and
forming first granules on said pan directly from contact of said pre-moistened mixture and said second feedstock in the absence of said material.
2. The method as set forth in claim 1, wherein said moisture content is between about 1.5% and about 10.5%.
3. The method as set forth in claim 2, wherein said moisture content is about 8%.
4. The method as set forth in claim 1, further including the step of passing said first granules on to a second pan granulator.
5. The method as set forth in claim 1, wherein said feedstock is selected from the group comprising sodium bicarbonate, potassium sulfate, potassium chloride, potassium nitrate, ammonium sulfate and sulfur.
6. The method as set forth in claim 1, wherein said binder comprises about 60% moisture and about 40% solids.
7. The method as set forth in claim 6, wherein between about 7% to about 9% by weight of said binder is added to said pan.
8. The method as set forth in claim 1, wherein said binder is dry, said moisture content comprising water added to said pan.
9. The method as set forth in claim 4, wherein feedstock for said second pan includes between about 20% to about 35% product in the size range of 10 mesh to about 100 mesh.
10. The method as set forth in claim 9, wherein product from said second pan comprises granules in the size range from about 4 mesh to about 8 mesh.
11. The method as set forth in claim 1, further including the step of adding an oil to formed granules for dust control prior to further processing.
12. The method as set forth in claim 11, wherein said oil comprises an oil selected from canola oil, vegetable oil, mineral oil.
13. A wet granulation method for granulating a feedstock into granules, comprising the steps of:
providing a first feedstock having about 99.9% particle size of 150 mesh of said 99.9% particle size of 150 mesh about 90% comprising a particle size of 200 mesh;
providing a binder material having a moisture content;
contacting said first feedstock with said binder;
forming a pre-moistened mixture of said binder, said first feedstock and said moisture;
introducing said pre-moistened mixture onto a pan granulator containing a second feedstock different in composition and size from said first feedstock in a size distribution of between 35 mesh and 150 mesh;
maintaining moisture conditions on said pan where the moisture content on said pan is between 1.5% and 11% by weight; and
forming first granules on said pan directly from contact of said pre-moistened mixture and said second feedstock in the absence of said material.
14. A fertilizer granule made in accordance with the process of claim 1.
15. The fertilizer granule as set forth in claim 14, wherein said fertilizer granule comprises ammonium sulfate.
16. The fertilizer granule as set forth in claim 14, wherein said fertilizer granule comprises ammonium nitrate.
17. The fertilizer granule as set forth in claim 14, wherein said fertilizer granule comprises potassium sulfate.
18. The fertilizer granule as set forth in claim 14, wherein said fertilizer granule comprises potassium chloride.
19. The fertilizer as set forth in claim 14, wherein said fertilizer granule comprises sulfur.
20. The fertilizer granule as set forth in claim 14, wherein said granule has a uniform and homogeneous cross-section.
21. The fertilizer granule as set forth in claim 16, wherein said granule has a uniform and homogeneous cross-section.
22. The fertilizer granule as set forth in claim 17, wherein said granule has a uniform and homogeneous cross-section.
23. The fertilizer granule as set forth in claim 18, wherein said granule has a uniform and homogeneous cross-section.

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.-10. (canceled)
11. A method for detecting a critical concentration of hydrogen in the exhaust gas of a fuel cell system (1), comprising:
post-combusting exhaust gas from an anode chamber (4) of a fuel cell (3) by means of a burner (17),
detecting the temperature of the combustion exhaust gases,
comparing the temperature of the combustion exhaust gases to a predetermined limit value, and
in the comparison, assuming a critical concentration of hydrogen if the temperature of the combustion exhaust gases is above the limit value,
wherein the exhaust gas from the anode chamber (4) together with exhaust air from the cathode chamber (5) of the fuel cell (3) is post-combusted, and wherein, in addition, the temperature of the exhaust gases from the anode chamber (4) and optionally from the cathode chamber (5), or a mixture thereof, is detected upstream from the burner (17), according to which a temperature difference between the temperature of the combustion waste gases and the temperature of the exhaust gases upstream from the burner (17) is formed and compared to the predefined limit value.
12. The method according to claim 11, wherein a catalytic burner (17) is used as the burner.
13. The method according to claim 11, wherein a temperature increase which results from possible electrical heating (21) of the burner (17) is taken into account in specifying the limit value, the temperature of the combustion waste gases, andor the temperature difference.
14. The method according to claim 11, wherein the quantity andor the temperature of the starting materials which are metered to the fuel cell (3), instantaneously or offset by a lead time, isare taken into account in specifying the limit value, the temperature of the combustion waste gases, andor the temperature difference.
15. The method according to claim 11, wherein a switching state of an exhaust valve (16) andor of a pressure retention valve in the exhaust gas of the anode chamber (4) is taken into account in specifying the limit value, the temperature of the combustion waste gases, andor the temperature difference.
16. The method according to claim 11, wherein a quantity of product water which is discharged from the anode chamber (4) with the exhaust gas is taken into account in specifying the limit value, the temperature of the combustion waste gases, andor the temperature difference.
17. The method according to claim 11, wherein a quantity of product water which is discharged from the anode chamber (4) with the exhaust gas for a discontinuous discharge is taken into account in specifying the limit value, the temperature of the combustion waste gases, andor the temperature difference.
18. The method according to claim 11, wherein a warning message is output andor the fuel cell system (1) is shut down if there is a critical concentration of hydrogen.
19. A method according to claim 11, wherein the fuel cell (3) is used in a fuel cell system (1) which provides electrical power in a vehicle (2).
20. A method according to claim 11, wherein the fuel cell (3) is used in a fuel cell system (1) which provides electrical drive power in a vehicle (2).