1460726143-c462fae0-af2c-48bf-ae3b-35abc73958d9

1. A paper substrate, comprising
a plurality of cellulose fibers; and
a sizing agent; wherein the paper substrate has a hygroexpansivity of from 0.6 to 1.5%, a CD Internal Scott Bond of not more than 130 Jm2 andor an MD Internal Scott Bond of not more than 130 Jm2.
2. A paper substrate, comprising
a plurality of cellulose fibers; and
a sizing agent; wherein the paper substrate has a hygroexpansivity of from 0.6 to 1.25%,
a CD Internal Scott Bond of not more than 300 Jm2 andor an MD Internal Scott Bond of not more than 300 Jm2.
3. A paper substrate, comprising
a plurality of cellulose fibers; and
from 0.25 to 10 gsm of a sizing agent; wherein the paper substrate has a hygroexpansivity of from 0.6 to 1.25%, a CD Internal Scott Bond of not more than 300 Jm2 andor an MD Internal Scott Bond of not more than 300 Jm2.
4. A paper substrate, comprising
a plurality of cellulose fibers; and
from 0.25 to 10 gsm of a sizing agent; wherein the paper substrate has an Internal Bondsizing agent ratio that is less than 100 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
5. The substrate according to claim 4, wherein an Internal Bondsizing agent ratio is less than or equal to 80 Jm2gsm.
6. The substrate according to claim 4, wherein an Internal Bondsizing agent ratio is less than or equal to 60 Jm2gsm.
7. The substrate according to claim 4, wherein an Internal Bondsizing agent ratio is less than or equal to 40 Jm2gsm.
8. A paper substrate, comprising
a plurality of cellulose fibers; and
from 0.25 to 10 gsm of a sizing agent; wherein the paper substrate has a \u0394Internal Bond\u0394 sizing agent that is less than 55 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
9. The substrate according to claim 8, wherein the \u0394Internal Bond\u0394 sizing agent is less than or equal to 40 Jm2gsm.
10. The substrate according to claim 8, wherein the \u0394Internal Bond\u0394 sizing agent is less than or equal to 25 Jm2gsm.
11. A method of making a paper substrate, comprising contacting a solution containing from 0.5 to 10 gsm of sizing agent with a plurality of cellulosic fibers, wherein the solution has a solids content that is at least 12 wt % solids sizing agent and has a viscosity that is from 100 to 500 centipoise using a Brookfield Viscometer, number 2 spindle, at 100 rpm and 150\xb0 F.
12. The method according to claim 11, wherein the solution has a viscosity of from 150 to 300 centipoise.
13. A paper substrate made by the process of claim 12, wherein the paper substrate has a \u0394Internal Bond\u0394 sizing agent that is less than 55 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
14. A paper substrate made by the process of claim 12, wherein the paper substrate has an Internal Bondsizing agent ratio that is less than 100 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
15. The process according to claim 12, wherein the solution contains a sizing agent solids content that is at least 15 wt %.
16. A paper substrate made by the process of claim 15, wherein the paper substrate has a \u0394Internal Bond\u0394 sizing agent that is less than 40 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
17. A paper substrate made by the process of claim 15, wherein the paper substrate has an Internal Bondsizing agent ratio that is less than 60 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
18. The process according to claim 12, wherein the solution contains a sizing agent solids content that is at least 15 wt %.
19. A paper substrate made by the process of claim 15, wherein the paper substrate has a \u0394Internal Bond\u0394 sizing agent that is less than 25 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
20. A paper substrate made by the process of claim 15, wherein the paper substrate has an Internal Bondsizing agent ratio that is less than 40 Jm2gsm and a hygroexpansivity of from 0.6 to 1.25%.
21. The paper substrates according to claim 19 or claim 20, wherein the substrate has an IGT pick that is at least 1.
22. The paper substrates according to claim 19 or claim 20, wherein the substrate has an IGT pick that is at least 1.25.
23. The paper substrates according to claim 19 or claim 20, wherein the substrate has an IGT pick that is at least 1.5.
24. The paper substrates according to claim 19 or claim 20, wherein the substrate has an IGT pick that is greater than 1.7.
25. The paper substrate according to claim 19 or claim 20, wherein the substrate contains greater than 4 gsm of sizing agent.
26. The paper substrate according to claim 19 or claim 20, wherein the substrate contains greater than 3.5 gsm of sizing agent.
27. The paper substrate according to claim 19 or claim 20, wherein the substrate contains greater than 4 gsm of sizing agent.
28. The paper substrate according to claim 19 or claim 20, wherein the substrate contains greater than 4.5 gsm of sizing agent.

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 of displaying a plurality of items at a remote location, the method comprising:
storing a display control dimension which is indicative of a quantity of items which are simultaneously displayable at the remote location;
storing a threshold value which is indicative of a quantity of items which is greater than the quantity of items which are simultaneously displayable at the remote location;
storing the plurality of items;
determining a quantity associated with the plurality of items;
receiving a request for data representing the plurality of items from the remote location;
determining a relationship value indicative of a relationship between the display control dimension and the quantity associated with the plurality of items;
comparing the relationship value to the threshold value;
conditioned on the relationship value exceeding the threshold value, sending the data representing the plurality of items to the remote location for display; and
conditioned on the relationship value not exceeding the threshold value, sending a subset of the data representing the plurality of items to the remote location for display.
2. The method of claim 1, wherein the relationship value is a first relationship value, the method further comprising:
receiving data indicating a desired change in the quantity associated with the plurality of items and determining a second relationship value indicative of the relationship between the display control dimension and the changed quantity.
3. The method of claim 2, wherein the data indicating a desired change in the quantity associated with the plurality of items includes data indicating an addition or a deletion of at least one item.
4. The method of claim 1, wherein the threshold value is based, at least in part, on a set of hardware specifications of a machine at the remote location.
5. The method of claim 4, wherein the set of hardware specifications includes at least one selected from the group consisting of: a processor speed of the machine, a monitor size of the machine, and an amount of memory of the machine.
6. The method of claim 1, wherein the threshold value is based, at least in part, on a network connection speed of a network.
7. The method of claim 1, wherein determining the relationship value includes calculating a ratio between the display control dimension and the quantity associated with the plurality of items.
8. The method of claim 1, wherein the display control dimension reflects a quantity of items simultaneously displayable by the display control.
9. The method of claim 1, wherein the display control dimension reflects a quantity of pixels of a height of the display control.
10. The method of claim 1, wherein the quantity associated with the plurality of items indicates a number of the plurality of items.
11. The method of claim 1, wherein the quantity associated with the plurality of items indicates a storage size of the plurality of items in bytes.
12. The method of claim 1, wherein the subset of the data is a first subset, the method further comprising:
conditioned on the relationship value not exceeding the threshold, sending a second, different subset of the data upon receiving data indicating a scroll input.
13. The method of claim 1, wherein at least one of the items is associated with content data, the method further comprising:
conditioned on the relationship value exceeding the threshold value, sending the data representative of the plurality of items and the associated content data to the remote location.
14. The method of claim 1, wherein at least one of the items is associated with content data, the method further comprising:
conditioned on the relationship value not exceeding the threshold value, sending the subset of the data representing the plurality of items and the content data associated with the items represented by the subset of the data to the remote location.
15. The method of claim 1, the method further comprising:
receiving the display control dimension from the remote location.
16. The method of claim 1, wherein the request for data representing the plurality of items includes information about a display control, the information about the display control including information representative of the display control dimension.
17. The method of claim 1, wherein the threshold value is entered by an operator of a device at the remote location.
18. The method of claim 1, wherein the threshold value is entered by an operator of the server.
19. A method of sending data for display at a destination, the method comprising:
receiving a display control size which is indicative of a quantity of items which are simultaneously displayable at the destination;
receiving from the destination a request for the data;
determining a quantity indicative of the size of the data;
determining a comparison ratio between the quantity indicative of the size of the data and the display control size;
comparing the comparison ratio to a threshold ratio which is indicative of a quantity of items which is greater than the quantity of items which are simultaneously displayable at the destination;
conditioned on the comparison ratio being in a first quantifiable relationship with the threshold ratio, sending a subset of the data to the destination for display; and
conditioned on the comparison ratio being in a second quantifiable relationship with the threshold ratio, sending the data to the destination for display.
20. A system for sending data for display at a destination, the system comprising:
at least one processor; and
at least one memory device which stores a plurality of instructions which, when executed by the at least one processor, cause the at least one processor to operate with the at least one memory device to:
receive a display control size which is indicative of a quantity of items which are simultaneously displayable at the destination;
receive from the destination a request for the data;
determine a quantity indicative of the size of the data;
determine a comparison ratio between the quantity indicative of the size of the data and the display control size;
compare the comparison ratio to a threshold ratio which is indicative of a quantity of items which is greater than the quantity of items which are simultaneously displayable at the destination;
conditioned on the comparison ratio being in a first quantifiable relationship with the threshold ratio, send a subset of the data to the destination for display; and
conditioned on the comparison ratio being in a second quantifiable relationship with the threshold ratio, send the data to the destination for display.

1460726135-efa7a7d0-4d1a-46f1-a78f-0c8cadd6717e

1. Table for distributing bottles at the inlet of single-file channels, which distribution table is arranged downstream of a table for introducing said bottles, of the type with conveyors, wherein it comprises a continuous conveyor belt, supported and guided by the chassis of said distribution table, which belt includes:
an inlet zone that is equipped, laterally, with guides, and, at the level of said guides, detection means in the form of sensors that are sensitive to the presence of bottles, which sensors are associated with control means for controlling and adjusting the incoming flow of bottles, at the level of said inlet zone, by acting on said conveyors,
and, between said inlet zone and the single-file channels, a zone consisting of a plurality of distribution channels that are aligned transversally and of which the number corresponds to around half of the number of single-file channels, which distribution channels are defined by longitudinal walls, parallel to one another, which walls are arranged opposite corresponding walls of said single-file channels and are supported by a mobile structure, secured to said chassis, which imparts, on said distribution channels, a continuous circular sweeping movement, of low amplitude, in front of said single-file channels and in particular in front said walls of the latter, which walls are just like the downstream portion of said walls of the distribution channels, and the average distance Em between these walls is on the order of one-quarter of the diameter D of the bottles.
2. Distribution table according to claim 1, wherein the walls of the distribution channels have a length that corresponds to two or three times the diameter of said bottles.
3. Distribution table according to claim 1, wherein the upstream and downstream edges of the walls of the distribution channels are equipped with roller-type bearings, of which the diameter is on the order of 10 to 12 mm.
4. Distribution table according to claim 3, wherein the upstream edge of each wall of said single-file channels comprises, in the same way, roller-type bearings identical to those used on the walls of the distribution channels.
5. Distribution table according to claim 1, wherein the structure supporting the walls of the distribution channels is in the form of a frame that is itself supported and guided by suitable means for performing the continuous circular sweeping movement, by means of a drive member.
6. Distribution table according to claim 5, wherein the guide means of the structure consist of two slide systems secured to the chassis, of which one is arranged in the direction of forward movement of the bottles and the other is arranged in a transverse direction, perpendicular to the former.
7. Distribution table according to claim 6, wherein the continuous circular sweeping movement of the structure is performed by means of an eccentric member driven by a drive member, which eccentric member comprises a crankshaft of variable length on the order of 10 to 12 mm.
8. Boxing installation wherein it includes a distribution table according to claim 1, which distribution table is integrated between a table for introducing bottles and a downstream table that comprises the single-file channels, which single-file channels extend in cantilevered form over said distribution table.

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. An installation for ventilation and heat treatment of air in a building comprising several housing units, of the type comprising a double flow ventilation system with a ventilation unit blowing air taken from outside the building into the living quarters: drawing rooms, bedrooms, etc. of the various housing units, and a ventilation unit (5), having the same characteristics as the blowing unit, performing air extraction from the functional quarters: kitchens, bathrooms, etc. of the air blown into the functional quarters, the air being conveyed to and extracted from each housing unit via ducts communal to the building, the installation being characterized in that it comprises, at the connection of each housing unit to a pair of ducts (6, 7), these being, respectively, a blowing duct and an extraction duct, an individual thermodynamic unit (8) dedicated to the housing unit in question and over which the ventilation airflow passes, the evaporator and the condenser of this unit being arranged one on the blowing flow and one on the extraction flow, respectively.
2. The ventilation installation as claimed in claim 1, characterized in that the thermodynamic unit (8) is housed in a casing comprising at least two compartments each equipped with an air inlet (10, 13) and with an air outlet (12, 14) and respectively containing the evaporator (16) and the condenser (17) of the thermodynamic unit.
3. The ventilation installation as claimed in one of claims 1 and 2, characterized in that the evaporator (16) of the thermodynamic unit (8) is arranged on the flow of air blown into the housing unit, and the condenser (17) is arranged on the flow of air extracted from the housing unit.
4. The ventilation installation as claimed in claim 3, characterized in that it comprises a bypass pipe between the compartments containing the evaporator and the condenser and allowing an additional flow of air that does not pass through the housing unit to pass over the condenser (17).
5. The ventilation installation as claimed in claim 4, characterized in that mounted on the bypass pipe is a damper (19) which is placed in the open position when the thermodynamic unit is in operation with the blown-in airflow passing over the evaporator, and which is moved into its closed position upon the switch to the position of maximum extraction flow rate from the kitchen.
6. The installation as claimed in either of claims 4 and 5, characterized in that the bypass pipe is equipped with a flow regulating module (21).
7. The ventilation installation as claimed in one of claims 1 and 2, characterized in that the condenser (17) of the thermodynamic unit is arranged in the flow of air blown into the housing unit, and the evaporator (16) is arranged in the flow of air extracted from the housing unit.
8. The ventilation installation as claimed in claims 3 to 7, characterized in that the thermodynamic unit (8) is of the reversible type, with the possibility of reversing the direction of the refrigerant and of swapping the functions of the evaporator and of the condenser.
9. The ventilation installation as claimed in one of claims 1 to 8, characterized in that the thermodynamic unit (8) is connected to an operating keypad (25) and controlled by a thermostat arranged in the housing unit.
10. The ventilation installation as claimed in one of claims 1 to 9, characterized in that the vent openings (20) for blowing air into the various rooms of the living quarters are equipped with an additional device for electrically heating the blown-in air, which can be operated by a temperature probe (24) also connected to the thermodynamic unit (8).