Slot Die Coating Apparatus
20220241813 · 2022-08-04
Assignee
Inventors
Cpc classification
B05C11/1013
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0254
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0258
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A slot die coating apparatus according to one embodiment of the present disclosure includes: a slot die containing a first die block and a second die block, and a sensor unit for measuring the flow rate of an electrode active material slurry which is discharged through a discharge port formed by the coupling of the first die block and the second die block, wherein the sensor unit is formed inside the first die block, and the sensor unit is connected to the discharge port via an energy dissipation part and an energy absorption part.
Claims
1. A slot die coating apparatus comprising: a slot die containing a first die block and a second die block, and a sensor unit configured to measuring a flow rate of an electrode active material slurry which is discharged through a discharge port formed by a coupling of the first die block and the second die block, wherein the sensor unit is formed inside the first die block, and the sensor unit is connected to the discharge port via an energy dissipation part and an energy absorption part.
2. The slot die coating apparatus of claim 1, wherein the energy dissipation part and the energy absorption part are formed of a transparent material.
3. The slot die coating apparatus of claim 1, wherein the sensor unit is configured to detects infrared energy or magnetic force energy of the electrode active material slurry and to measures the flow rate of the electrode active material slurry.
4. The slot die coating apparatus of claim 2, wherein the energy dissipation part and the energy absorption part are located apart from each other along a discharge direction of the discharge port.
5. The slot die coating apparatus of claim 4, wherein the energy dissipation part and the energy absorption part are respectively formed in a plural number along a direction perpendicular to the discharge direction of the discharge port, the plurality of the energy dissipation parts formed are located apart from each other, and the plurality of the energy absorption parts are located apart from each other.
6. The slot die coating apparatus of claim 1, wherein a manifold is formed on the second die block, and a slurry supply part and a slurry recovery part are formed in the manifold.
7. The slot die coating apparatus of claim 1, which further comprises a control unit configured to adjust the flow rate of the electrode active material slurry in response to a signal detected by the sensor unit.
8. The slot die coating apparatus of claim 7, wherein the control unit comprises a flow rate control pump located between a slurry recovery part and a slurry supply part.
9. The slot die coating apparatus of claim 8, wherein the slurry recovery part and the slurry supply part are in fluid communication with the flow rate control pump, and an electrode active material slurry recovered by the slurry recovery part passes through the flow rate control pump and is supplied to the manifold via the slurry supply part.
10. The slot die coating apparatus of claim 9, wherein the slurry recovery part is located ahead of the discharge port along the discharge direction of the electrode active material slurry to recover the electrode active material slurry and reduce a supply flow rate of the slurry, and the slurry supply part re-supplies the recovered electrode active material slurry to the manifold to increase the supply flow rate of the slurry.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0032] Hereinafter, various embodiments of the present disclosure will be described in detail with reference to the accompanying drawings so that those skilled in the art can easily implement them. The present disclosure can be modified in various different ways, and is not limited to the embodiments set forth herein.
[0033] Portions that are irrelevant to the description will be omitted to clearly describe the present disclosure, and like reference numerals designate like elements throughout the specification.
[0034] Further, in the drawings, the size and thickness of each element are arbitrarily illustrated for convenience of description, and the present disclosure is not necessarily limited to those illustrated in the drawings. In the drawings, the thickness of layers, regions, etc. are exaggerated for clarity. In the drawings, for convenience of description, the thicknesses of some layers and regions are shown to be exaggerated.
[0035] Further, it will be understood that when an element such as a layer, film, region, or plate is referred to as being “on” or “above” another element, it can be directly on the other element or intervening elements may also be present. In contrast, when an element is referred to as being “directly on” another element, it means that other intervening elements are not present. Further, the word “on” or “above” means disposed on or below a reference portion, and does not necessarily mean being disposed on the upper end of the reference portion toward the opposite direction of gravity.
[0036] Further, throughout the specification, when a portion is referred to as “including” a certain component, it means that the portion can further include other components, without excluding the other components, unless otherwise stated.
[0037] Further, throughout the specification, when referred to as “planar”, it means when a target portion is viewed from the upper side, and when referred to as “cross-sectional”, it means when a target portion is viewed from the side of a cross section cut vertically.
[0038]
[0039] Referring to
[0040] The discharge port 120 of the slot die coating apparatus 200 may be disposed toward the electrode current collector 110 in a direction perpendicular to the upper surface of the electrode current collector 110. The slurry injected into the slot die coating apparatus 200 via a slurry feeding port 250 can be discharged via the discharge port 120. Generally, in order to control the flow rate of the slurry coming out of the discharge port 120 of the slot die coating device 200, it is possible to change the design of the internal structure of the manifold of the slot die coating apparatus 200, or adjust a distance between the die block of the slot die coating apparatus 200 and the electrode current collector 110. According to the embodiment of the present disclosure, the flow rate can be controlled more precisely by the improved slot die coating device in order to minimize the flow rate deviation, without simply changing the design of the internal structure of the manifold or adjusting the slurry discharge interval, or the like. Specifically, according to the existing flow control method, when a slight difference occurred in the flow rate of the slurry in the full width direction at the discharge die, it can be seen only by checking the coated electrode, whereas according to the embodiment of the present disclosure, a flow meter can be installed for each section in the full width direction, thereby detecting the difference in flow rate and adjusting the flow rate uniformly.
[0041] More detailed descriptions will be given below.
[0042]
[0043] Referring to
[0044] The slot die coating apparatus 200 according to the embodiment of the present disclosure includes a sensor unit for measuring the flow rate of the electrode active material slurry which is discharged via the discharge port 120 formed by the coupling of the first die block 200a and the second die block 200b, and a control unit for adjusting the flow rate of the electrode active material slurry in response to the signal detected by the sensor unit. The sensor unit may be a non-contact flow meter, and as an example, it may be an energy detection sensor 210. A slurry supply part 310 and a slurry recovery part 320 may be formed in the manifold 220 formed in the second die block 200b. The control unit may be a flow rate control pump described later, and the flow rate control pump may be located between the slurry recovery part 320 and the slurry supply part 310.
[0045] The manifold 220 is a space in which the slurry is stored in the slot die coating apparatus 200, which is an internal space of the mechanism for allowing the slurry to come out at a uniform flow rate. A slurry inlet 260 connected to the slurry feeding port 250 of
[0046]
[0047] Referring to
[0048] The energy detection sensor 210 according to the embodiment of the present disclosure can detect infrared energy or magnetic force energy of the electrode active material slurry 105 and thus, measure the flow rate of the electrode active material slurry 105. Specifically, the energy generated by the energy detection sensor 210 is irradiated to the electrode active material slurry 105 through the energy dissipation part 212, and the energy signal of the irradiated electrode active material slurry 105 is received from the energy detection sensor 210 through the energy absorption part 214, whereby a flow rate that can be discharged to the discharge port 120 can be measured. For example, the energy dissipation part 212 applies a certain amount of heat to the slurry, and when the heated slurry passes through the energy absorption part 214, it can recognize a signal and measure the flow rate. The energy dissipation part 212 corresponds to the signal generating part of the energy detection sensor 210, and the energy absorption part 214 may correspond to the signal receiving part of the energy detection sensor 210.
[0049]
[0050] Referring to
[0051] Specifically, the slurry recovery part 320 is located ahead of the discharge port 120 along the discharge direction D2 of the electrode active material slurry 105 to recover the electrode active material slurry 105 and thus reduce the supply flow rate of the slurry. The slurry supply part 310 can re-supply the recovered electrode active material slurry 105 to the manifold 220 to increase the supply flow rate of the slurry.
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[0053] Referring to
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[0055] Referring to
[0056] Although preferred embodiments of the present disclosure have been described in detail above, the scope of the present disclosure is not limited thereto, and various modifications and improvements made by those skilled in the art using the basic concepts of the present disclosure, which are defined in the appended claims, also belong to the scope of the present disclosure.
DESCRIPTION OF REFERENCE NUMERALS
[0057] 105: electrode active material slurry
[0058] 110: electrode current collector
[0059] 120: discharge port
[0060] 200: slot die coating apparatus
[0061] 200a: first die block
[0062] 200b: second die block
[0063] 210: energy detection sensor
[0064] 212: energy dissipation part
[0065] 214: energy absorption part
[0066] 220: manifold
[0067] 300: flow rate control pump
[0068] 310: slurry supply part
[0069] 320: slurry recovery part