1461159231-5fe4e30d-fdff-49c6-b207-ef819f218cfa

1. A herbicidally active composition, comprising
(A) one or more sulfonylureas from the group consisting of metsulfuron, thifensulfuron, tribenuron, chlorsulfuron and their salts and esters, and
(B) one or more safeners from the group consisting of cloquintocet, and its salts and esters.
2. The herbicidally active composition as claimed in claim 1, in which the sulfonylureas (A) are selected from the group consisting of metsulfuron-methyl, thifensulfuron-methyl, tribenuron-methyl, chlorsulfuron and their alkali metal salts.
3. The herbicidally active composition as claimed in claim 1, in which safener (B) is cloquintocet-mexyl.
4. The herbicidally active composition as claimed in claim 1, in which the weight ratio herbicidal:safener is from 1:100 to 100:1.
5. The herbicidally active composition as claimed in claim 1, additionally comprising
(C) one or more solvents, preferably organic solvents,
(D) one or more sulfosuccinates,
(E) one or more agrochemically active compounds different from (A) and (B), andor
(F) customary auxiliaries and additives.
6. The herbicidally active composition as claimed in claim 1 in form of a liquid formulation.
7. A liquid formulation, comprising
(A) one or more sulfonylureas from the group consisting of metsulfuron, thifensulfuron, tribenuron, chlorsulfuron and their salts and esters,
(B) one or more safeners from the group consisting of cloquintocet and its salts and esters,
(C) one or more solvents, preferably organic solvents,
(D) optionally one or more sulfosuccinates,
(E) optionally one or more agrochemically active compounds different from (A) and (B), and
(F) optionally customary auxiliaries and additives.
8. The liquid formulation as claimed in claim 7, wherein said one or more sulfonylureas (A) are present in a herbicidally effective amount and said one or more safeners (B) are present in an antidote-effective amount.
9. The liquid formulation as claimed in claim 8 in the form of an oil suspension, oil suspension concentrate, suspoemulsion, suspoemulsion concentrates, emulsion, emulsion concentrate, micoemulsion, microemulsion concentrate, emulsifiable concentrate or spray liquors obtainable therefrom.
10. A method for controlling harmful plants in plant crops, which comprises applying the components of the herbicidally active composition as claimed in claim 1 jointly or separately to the harmful plants, crop plants, plant seeds or to the area in which the plants grow.
11. The method as claimed in claim 10, wherein the crop plants are from the group consisting of corn, wheat, rye, barley, oats, rice, sorghum, cotton and soybeans.
12. The method as claimed in claim 10, wherein the crop plants are transgenic or tolerant owing to selective breeding.
13. (canceled)
14. A process for preparing a herbicidally active composition as claimed in claim 1, which process comprises mixing the components.
15. A sulfonylureasafener combination, comprising
(A) one or more sulfonylureas from the group consisting of metsulfuron, thifensulfuron, tribenuron, chlorsulfuron and their salts and esters, and
(B) one or more safeners from the group consisting of cloquintocet and its salts and esters.
16. The sulfonylureasafener combination as claimed in claim 15, in which the sulfonylureas (A) are selected from the group consisting of metsulfuron-methyl, thifensulfuron-methyl, tribenuron-methyl, chlorsulfuron and their alkali metal salts.
17. The sulfonylureasafener combination as claimed in claim 15, in which the safener (B) is cloquintocet-mexyl.
18. The sulfonylureasafener combination as claimed in claim 15, additionally comprising one or more agrochemically active compounds (E) different from (A) and (B).
19. A method for controlling harmful plants in plant crops, which comprises applying the components of the liquid formulation as claimed in claim 7 jointly or separately to the harmful plants, crop plants, plant seeds or to the area in which the plants grow.
20. A process for preparing a liquid formulation as claimed in claim 7, which process comprises mixing the components.

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 stroller for infants and children, comprising:
a stroller body having the appearance of an automotive vehicle, the body comprising a plurality of wheels rotatably mounted on the body, an open passenger compartment, and a forward storage compartment forward of the passenger compartment and covered by a forward-opening hinged hood, the hood including a forward end pivotally connected to the body adjacent a front end of the forward storage compartment farther from the open passenger compartment and a raisable rear end located adjacent a rear end of the forward storage compartment nearer the open passenger compartment;
a wheel-less folding stroller frame secured in the open passenger compartment, the folding stroller frame being foldable between a raised, extended position extending from the open passenger compartment and supporting a seat in the open passenger compartment, and a lowered, folded position with a first portion of the folding stroller frame contained substantially within the open passenger compartment and with a second portion of the folding stroller frame contained within the forward storage compartment under the hood; wherein,
the hood opens sufficiently forwardly by raising the rear end of the hood up and away from the open passenger compartment to permit the second portion of the folding stroller frame to be folded into the forward storage compartment.
2. The stroller of claim 1, wherein the open passenger compartment comprises an open floor below the seat supported by the folding stroller frame, the open floor closeable by a floor plate.
3. The stroller of claim 1, wherein the open passenger compartment comprises a peripheral shelf, and wherein a lower portion of the folding stroller frame is secured to the peripheral shelf.
4. The stroller of claim 1, wherein the hood comprises forward hinges and rear latches.
5. The stroller of claim 1, wherein the stroller body further comprises a windshield movable from a raised position to a storage position substantially flat against the hood.
6. The stroller of claim 5, wherein the windshield comprises an open frame with an upper frame member comprising a grab bar.
7. The stroller of claim 5, wherein the windshield is mounted on and moves with the hood.
8. The stroller of claim 1, wherein the stroller body comprises rear ground-contacting wheels, a forward swivel caster assembly, and forward ground-contacting wheels associated with the swivel caster assembly.
9. The stroller of claim 1, wherein the stroller body comprises a front dash area and a dash tray extending across a width of the open passenger compartment.
10. The stroller of claim 1, wherein the stroller body comprises a rear end comprising an exterior pull handle.
11. The stroller of claim 10, wherein the rear end includes a bumper, and the exterior pull handle is located on the bumper.
12. The stroller of claim 1, further comprising a legroom access opening between the open passenger compartment and the forward storage compartment when the hood is in a closed position, and further wherein the forward storage compartment comprises a foot-well.
13. The stroller of claim 1, wherein the open passenger compartment is separated from the forward storage compartment by a partition when the hood is in a closed position.
14. The stroller of claim 13, wherein the partition is removable.

1461159220-07891a47-c8cd-49b4-8bcf-4d3793175c13

We claim:

1. A catalyst for adsorbing oxides of nitrogen from the exhaust gases of an internal combustion engine, comprising an alkaline earth active catalyst site, and a transition metal oxide having a surface area of at least about 75 m2g.
2. The catalyst of claim 1 wherein the transition metal oxide has a surface area of at least about 150 m2g
3. The catalyst of claim 1 wherein the transition metal oxide is selected from the group consisting of CoO and Mn2O2.
4. The catalyst of claim 3 wherein the transition metal oxide is CoO at a metal loading of at least about 0.65 weight percent.
5. The catalyst of claim 4 wherein the transition metal oxide is CoO at a metal loading of about 1.95 weight percent
6. The catalyst of claim 3 wherein the transition metal oxide is Mn2O2 at a metal loading of at least about 0.60 weight percent.
7. The catalyst of claim 6 wherein the transition metal oxide is Mn2O2 at a metal loading of about 1.80 weight percent.
8. The catalyst of claim 1 wherein the alkaline earth is selected from the group consisting of Ba, Ca, and Sr
9. The catalyst of claim 8 wherein the alkaline earth is in the form of Ba oxide having a surface area of at least about 80 m2g.
10. The catalyst of claim 8 wherein the alkaline earth is Ba at a metal loading of at least about 1.5 weight percent.
11. The catalyst of claim 10 wherein the alkaline earth is Ba at a metal loading of about 3.0 weight percent.
12. The catalyst of claim 1 wherein the alkaline earth active catalyst is supported on a porous material selected from the group consisting of alumina, zeolites, rare earth stabilized zeolites, and the like.
13. A NOx, oocculding catalyst for adsorbing oxides of nitgrogen from the exhaust gases of an internal combustion engine selected from the group consisting of barium-zeolite, barium-zirconium zeolite, barium-alumina, and barium-rare earth-zeolite, having a surface area at least about 200 m2g, and further comprising a transition metal oxide having a surface area of at least aboutg 75 m2g.
14. The catalyst of claim 13 wherein the transition metal oxide is selected from the group consisting of CoO and Mn2O2.
15. The catalyst of claim 14 wherein the transition metal oxide has a surface area of at least about 150 m2g.
16. A NOx occluding catalyst for adsorbing oxides of nitrogen from the exhaust gases of an internal combustion engine selected from the group consisting of barium-zeolite, barium-zirconium zeolite, barium-alumina, and barium-rare earth-zeolite, having a surface area at least about 200 m2g to about 500 m2g, and further comprising a transition metal oxide selected from the group consisting of CoO and Mn2O2, having a surface area of at least about 75 m2g to at least about b 150 l m2g.

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 power saving device, comprising
a microprocessor (U1);
an infrared receiving module;
a relay;
a buzzer;
an AC to DC power supply; and
an internal or external memory;

wherein
an infrared signal is emitted by pressing any key on the remote controller, and then the infrared receiving module reads this signal and converts this signal to an electronic code which is read and stored in memory by the U1 through pressing the setup key of the power saving device before pressing any key of the remote controller;
when the device receives the electronic code again, the U1 can execute the command to switch on or switch off the relay and drive the buzzer beep;
the AC power pins of the relay are connected in series between the line wire or neutral wire of the power source and outlets of power saving device, so that when the relay is switched off, the appliances connected to the outlet of the power saving device will be powered off simultaneously;
the power saving device is then ready to receive the infrared command;
the buzzer is drove by U1 to make users aware of the action of the relay for switch-on or switch-off;
by setting a setup key, an infrared receiving module and a relay connected to the U1, the U1 can read and store the infrared code when pressing the setup key, and then executes the action of switch-on or switch-off the relay according to the stored codes;
meanwhile, the U1 drives the buzzer to make indicative sound for users to recognize power-on or power-off of the outlets in the power saving device;
the AC power pins of the relay are connected in series between the power source and the outlets of the power saving device;
The U1 will switch on the relay after received the electronic code which is same to the stored code, and will not switch off the relay when received the same code again within a certain period of time after the relay is switched on; and
after this certain period of time, when the U1 receives the same electronic code again, the U1 will switch off the relay after several seconds delay.
2. A power saving device, comprising:
an interior memory built-in microprocessor (U1);
an infrared receiving module;
a relay;
a buzzer;
an AC to DC power supply; and
an internal or external memory,

wherein
an infrared signal is emitted by pressing any key on the remote controller, and then the infrared receiving module read this signal and converts this signal to an electronic code which is read and stored in memory by the U1 through pressing the setup key of the power saving device before pressing any key of the remote controller;
when the device receives the electronic code again, the U1 can execute the command to switch on or switch off the relay and drive the buzzer beep;
the AC power pins of the relay are connected in series between the line wire or neutral wire of the power source and outlets of power saving device, so that when the relay is switched off, the appliances connected to the power saving device will be powered off simultaneously;
the power saving device is then ready to receive the infrared command;

the buzzer is drove by U1 to make users aware of the action of the relay for switch-on or switch-off;
by setting a setup key, an infrared receiving module, and a relay connected to the U1, the U1 can read and store the infrared code when pressing the setup key, and then executes the action of switch-on or switch-off the relay according to the stored codes;
meanwhile, the U1 drives the buzzer to make indicative sound for users to recognize power-on or power-off of the outlet power in the power saving device; and
with another object equipped with Infra Red Receiving Module and the button of setup key, the body of the power saving device has a connector for signal connection and DC power supply, where the setup key and the infrared receiving module is under the control of U1 through a transmission line.
3. A power saving device, comprising
an interior memory built-in microprocessor (U1);
an infrared receiving module;
a relay;
a buzzer;
an AC to DC power supply; and
an external memory;

wherein
an infrared signal is emitted by pressing any key on the remote controller, and then the infrared receiving module read this signal and converts this signal to an electronic code which is read and stored in memory by the U1 through pressing the setup key of the power saving device before pressing any key of the remote controller;
when the device receives the electronic code again, the U1 can execute the command to switch on or switch off the relay and drive the buzzer beep;
the AC power pins of the relay are connected in series between the line wire or neutral wire of the power source and outlets of power saving device; so that when the relay is switched off, the appliances connected to the power saving device will be powered off simultaneously;
the power saving device is then ready to receive the infrared command;
the buzzer is drove by U1 to make users aware of the action of the relay for switch-on or switch-off;
by setting a setup key, an infrared receiving module, and a relay connected to the U1, the U1 can read and store the infrared code when pressing the setup key, and then executes the action of switch-on or switch-off the relay according to the stored codes;
meanwhile, the U1 drives the buzzer to make indicative sound for users to recognize power-on or power-off of the outlet power in the power saving device; and
with another object equipped with infrared receiving module, button of setup key and microprocessor U1, the body of the power saving device has a connector for signal connection and DC power supply, where the microprocessor U1 controls the relay and buzzer through a transmission line.
4. The power saving device of claim 1, wherein said a mute mode is available by optional cut off the power source of the buzzer by a switch button added on between the buzzer and DC power source.
5. The power saving device of claim 2 wherein said a mute mode is available by optional cut off the power source of the buzzer by a switch button added on between the buzzer and DC power source.
6. The power saving device of claim 3, wherein said a mute mode is available by optional cut off the power source of the buzzer by a switch button added on between the buzzer and DC power source.
7. The power saving device of claim 1, wherein said power saving device add an infrared transmitting module which can be controlled by U1.U1 will drive infrared transmitting module to emit Infra Red signal while U1 receives the code same as the stored code .U1 will not drive the infrared transmitting module to emit signal if the relay is in switch-on situation.
8. The power saving device of claim 2, wherein said power saving device add an infrared transmitting module which can be controlled by U1.U1 will drive infrared transmitting module to emit Infra Red signal while U1 receives the code same as the stored code .U1 will not drive the infrared transmitting module to emit signal if the relay is in switch-on situation.
9. The power saving device of claim 3, wherein said power saving device add an infrared transmitting module which can be controlled by U1.U1 will drive infrared transmitting module to emit Infra Red signal while U1 receives the code same as the stored code .U1 will not drive the infrared transmitting module to emit signal if the relay is in switch-on situation