METHOD AND DEVICE FOR PROVIDING FLAT GLASS ELEMENTS WITH AN ANTI-CORROSION AGENT AND SEPARATION AGENT APPLICATION
20210246068 · 2021-08-12
Inventors
Cpc classification
B05B12/1418
PERFORMING OPERATIONS; TRANSPORTING
B05C19/04
PERFORMING OPERATIONS; TRANSPORTING
B05D1/34
PERFORMING OPERATIONS; TRANSPORTING
C03C17/007
CHEMISTRY; METALLURGY
B05B1/20
PERFORMING OPERATIONS; TRANSPORTING
C03C17/008
CHEMISTRY; METALLURGY
B65G49/069
PERFORMING OPERATIONS; TRANSPORTING
B05B7/1477
PERFORMING OPERATIONS; TRANSPORTING
B05B12/1472
PERFORMING OPERATIONS; TRANSPORTING
C03C2217/78
CHEMISTRY; METALLURGY
B05B7/1404
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
When on flat glass elements an anti-corrosion agent and a separation agent, containing a powdery anti-corrosion agent and a powdery separation agent, is applied with the anti-corrosion agent and the separation agent being jointly applied on at least one side of the flat glass elements, the partial quantities of the powdery separation agent and the powdery anti-corrosion agent can be dosed according to requirement without causing an excess of separation agent or a shortage of anti-corrosion agent by holding ready and dosing the said anti-corrosion agent and separation agent independently from each other and by blending them together only after dosing.
Claims
1. A method of providing flat glass elements with a corrosion protection and separation agent application containing a powdery anti-corrosion agent and a powdery separation agent, whereby the anti-corrosion agent and the separation agent are jointly applied on at least one side of the flat glass elements, wherein the anti-corrosion agent and the separation agent are held ready independently from each other and dosed independently from each other and are blended together after dosing.
2. The method in accordance with claim 1, wherein after dosage the anti-corrosion agent and the separation agent are fed separately to the elements of the application devices adjacent to each other and simultaneously activatable, and are blended together only when applied to the flat glass elements.
3. The method in accordance with claim 1, wherein the anti-corrosion agent and the separation agent are merged after dosage and are subsequently applied as a powder mixture to the flat glass elements by means of a common application device.
4. A device for carrying out the method in accordance with claim 1, the device comprising a dosing device, a container arrangement arranged upstream thereof, and further an application device arranged downstream thereof or acting together therewith, with flat glass elements being provided with a powdery corrosion protection and separation agent application containing a powdery anti-corrosion agent and a powdery separation agent by means of the application device, whereby the anti-corrosion agent and the separation agent are jointly applied on at least one side of the flat glass elements, and whereby the anti-corrosion agent and the separation agent are held ready independently from each other and dosed independently from each other and are blended together after dosing, characterized in that the container arrangement comprises a container associated with the anti-corrosion agent and a further container associated only with the powdery separation agent, with the one container being designed and arranged only for the provision of the powdery anti-corrosion agent and being suppliable therewith by a supply chute and with the further container being designed and arranged only for the provision of the powdery separation agent and being suppliable therewith by a supply chute, and further that the dosing device comprises two dosers, with an associated, separate doser being connected with the outlet of each container of the container arrangement, whereby the conveying quantity of the doser associated with the anticorrosion agent is adjustable independently from the conveying quantity of the doser associated with the separation agent and whereby each doser is connected on its outlet with the application device or forms an element of the application device.
5. The device in accordance with claim 4, wherein each doser issues in an associated injector which is suppliable with an air jet and connected with a flow line leading to the application device.
6. The device in accordance with claim 4, wherein the application device comprises at least one application beam arranged transversely to the direction of feed of the flat glass elements transportable below the said application device comprising several application nozzles distributed along its length, with each application beam being connected with a distributor arranged downstream of the dosing device, which comprises several outlets connected with the application nozzles of the associated application beam and further comprises an inlet which is connected with at least one flow line branching off the dosing device.
7. The device in accordance with claim 6, wherein the application device comprises two mutually adjacent applications beams and that for each application beam an associated distributor is provided whose inlet is connected with a branchless flow line suppliable only from one associated container of the container arrangement.
8. The device in accordance with claim 6, wherein the application beam comprises only one application beam and that the distributor associated therewith is connected on the inlet side with a collection connecting piece in which issue the flow lines suppliable from both containers of the container arrangement.
9. The device in accordance with claim 4, wherein each doser of the dosing device comprises a dosing wheel releasing a defined amount of powder upon each revolution and whose speed of rotation is adjustable depending on the desirable amount of application of the associated component of the entire powder application.
10. The device in accordance with claim 4, wherein each distributor comprises several outlets, each of them connected with an application nozzle, and associated with a shut off valve, and that each distributor comprises a distribution cone arranged below the inlet thereof, whereby in the region of the bottom circumference of the distribution cone provision is made for the outlets evenly distributed thereon and the shut off valves associated with the latter.
11. The device in accordance with claim 4, wherein each injector is designed as a venturi nozzle connected with an air jet source and comprises a side inlet connected with a doser associated with each container of the container arrangement.
12. The device in accordance with claim 4, wherein the flat glass elements are transportable on a horizontal conveying device leading to a stack rack, to which horizontal conveying device a sensor is associated monitoring its utilization by which the application nozzles of each application beam are controllable.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The disclosure will now be described with reference to the drawings wherein:
[0017]
[0018]
DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0019] In
[0020] Expediently, the separation agent consists of polymethylmethacrylat powder. This powder has a spherical particle configuration. The anti-corrosion agent consists of one or several acids preferably adipic acid and/or boric acid and/or one or several organic acids. The particles of such a powder material do not have a specific configuration.
[0021] The entire amount of powder to be applied is calculated such that during the formation of stacks no or only little powder material falls down. An accumulation of material of powder falling down during the formation of stacks would cause a wedge-shaped gap being formed between the successive flat glass elements 2 on their bottom ends and thus lead to a wedge-shaped fanning of the stack 2′, as shown in
[0022] In the embodiment according to
[0023] A supply station 9 is arranged prior to the application device formed in the example illustrated by one or several application beams 5, in which the two components of the powder application to be applied on the flat glass elements 2 are held ready and dosed. The supply station 9 in both embodiments according to
[0024] A dosing station is arranged subsequently to the container arrangement formed by the two containers 10a, b, such dosing station comprising two dosers 12, with a doser 12 each arranged at the exit of each one of the two containers 10a, b. The throughput volume of the two dosers 12 are adjustable independently from each other. The dosers 12 may comprise a dosing wheel each releasing a defined amount of powder upon each revolution. By setting the speed of rotation of the dosing wheel the desirable throughput volume and thus the partial quantity associated with each powdery component of the powder application to be applied on the flat glass elements 2 can thus be adjusted. The amount of powder released by the dosers 12 will be fed to the application device associated with the transport line 1.
[0025] In order to assure reliable transport of the powdery material to the application device, released by the dosers 12, an injector 13 is arranged subsequently to each doser 12. The injector 13 may simply be designed as a venturi nozzle whose main pipe is connected with an air pressure source generating an air jet and in whose side inlet the exit of each associated doser 12 exits.
[0026] As air pressure source generating the desirable air jet, provision is made for a compressor or fan 14 existing in the supply station 9, as can be seen in the
[0027] In the embodiment according to
[0028] In the embodiment according to
[0029] Each of the distributors 17 may comprise a cylinder-shaped housing in which each associated flow line 16 and/or the collection connecting pieces 18 exit from above, and in which a distribution cone is provided below the inlet, whereby in the region of the bottom circumference of the collection connecting piece provision is made for outlets 19 being evenly distributed on its circumference which are connected with an associated application nozzle 4 each via connection lines 20 illustrated only schematically in
[0030] Irrespective of where the powdery separation agent is blended with the powdery anti-corrosion agent, both embodiments according to
[0031] As a variant to spraying the powder application according to the examples described above it would be conceivable to sprinkle on the powder application. In such a case, instead of application beams for forming the application device, provision may be made for dosing rollers extending across the width of the transport line 1 limiting an application gap together with associated gap limits. In this example, dosers associated with the powdery separation agent and the powdery anti-corrosion agent, provided with dosing rollers as described above may be integrated in the application device, thus simultaneously forming an element of the application device.
[0032] It is understood that the foregoing description is that of the exemplary embodiments of the disclosure and that various changes and modifications may be made thereto without departing from the spirit and scope of the disclosure as defined in the appended claims.