SYSTEM FOR ACTIVATING LIQUID POLYMER OR CHEMICALS WITH A SUBMERSIBLE ACTUATOR

DE602020061936T2Active Publication Date: 2025-11-05MERCADO ALVARADO ADALBERTO
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Patent Information

Application Number
DE602020061936
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-06-19
Publication Date
2025-11-05
Estimated Expiration
2040-06-19

AI Technical Summary

Technical Problem

Existing mechanical and non-mechanical polymer blending systems fail to maintain a consistent blend at low water inlet pressures, leading to increased consumption costs and decreased production stability.

Method used

A mechanical blending system with a submersible motor inside a reaction chamber, featuring multiple blending zones and a high shear mixer, which includes a submersible actuator to maintain a constant blend even at low inlet pressures.

Benefits of technology

Ensures a consistent and efficient polymer dilution and activation process at water inlet pressures as low as 35 PSI for mechanical systems and 60 PSI for non-mechanical systems, reducing operational costs and maintaining process stability.

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Description

BACKGROUND OF THE INVENTION Field of the Invention

[0001] The present invention relates to a submersible mechanical blending mechanism, and more particularly relates to a structure built into a chamber including a polymer / chemical dilution and boosting system mechanically driven by a submersible motor.Discussion of the Background

[0002] Generally, mechanical blending systems are used in the separation of liquids from solids (and vice versa) on water treatment plants, waste-water treatment plants, pharmaceutical plants, food and beverage plants, diary, distillery, power plants, industrial plants and mining processing facilities.

[0003] Further, standard mechanical and non-mechanical blending systems are used as ancillary equipment of liquid / solid separation technologies and play an essential role in sludge dewatering industries. In fact, the separation in sludge dewatering industries will not take place without a polymer blending system. For example, the polymer blending system are used with the following sludge dewatering equipment: Decanters High speed centrifuges Belt filter presses Gravity Belt thickeners Rotary Drum thickeners Plate presses Screw Presses Primary and secondary thickeners Market snapshot

[0004] Standard mechanical and non-mechanical polymer blending systems use a single energy reaction chamber for dilution and activation of polymer. All of them depend on high inlet water pressure to get or maintain a constant blend if the inlet pressure is low; then the constant blend turns into variable blend. All variable blend the operator will follow two things that will increase consumption costs: Increase polymer dosing pump capacity Decrease production to maintain process stability

[0005] Currently standard mechanical polymer blending systems comprises external motor, water inlet, polymer inlet, mixing device, mixing chamber reaction and blend outlet. The minimum inlet pressure is 30-50 PSI (1 PSI = 6894.7572932 Pa) wherein with a low water inlet pressure a poor blend is achieved.

[0006] The non-mechanical polymer blending systems comprises a water inlet, polymer inlet, mixing chamber reactor, static mixing device and blend outlet. The minimum inlet pressure is 60 PSI wherein with a low water inlet pressure a worst blend is achieved compared to the mechanical polymer blending system.

[0007] For instance, US2019118148 Al provides a blending mechanism comprising: a housing including a first flange a second flange and a cover, wherein said first flange comprises an inlet and said second flange comprises an outlet; wherein said first flange, said second flange and said cover creates a chamber; a submersible actuator; a mixer; a impeller; at least a first retention mechanism; and wherein said submersible actuator, said mixer, said impeller and said first retention are inside said chamber.

[0008] Therefore, there is a need for a mechanical blending system that provides a correct and constant blend if the inlet water feed pressure is under 35 PSI and 60 PSI for non-mechanical blender.SUMMARY OF THE INVENTION

[0009] In light of the above shortcomings of the structures available to provide a liquid polymer or chemical activation system, the present disclosure provides a mechanical blending system comprising a polymer dilution / activation technology with a submersible motor inside of a reaction chamber according to claim 1.

[0010] In particular, the present disclosure relates to a liquid polymer or chemical activation system, comprising: a chamber having a top chamber flange on a first distal end and a bottom chamber flange on a second distal end, wherein each distal end is opposite to each other; a top cover plate, secured to the top chamber flange on the first distal end of the hollow chamber via one or more bolts; a middle cover plate and a bottom cover plate secured to the bottom chamber flange on the second distal end of the hollow chamber via one or more bolts, wherein the middle cover plate lies between the lower chamber flange and the bottom cover plate; wherein such configuration creates a hollow space inside the chamber that is flanked by the top cover plate and the bottom cover plate; a blending reactor with one or more inlets for receiving one or more substances; an upper multistage mixing cup configured to receive the one or more substances from the one or more inlets; at least one high shear mixer for mixing the one or more substances; at least one submersible actuator for actuating the high shear mixer; wherein the high shear mixer is attached to a shaft extension which, in turn, is coupled to the submersible actuator via a shaft coupling unit; an intermediate blending section for receiving the one or more substances from the upper multistage mixing cup; a cup base flange having a support platform for supporting one end of the upper multistage mixing cup; a lower multistage aging cup for further mixing of the one or more substances; wherein the upper multistage mixing cup comprises at least a first retention cup and a second retention cup, and wherein the second retention cup encircles the first retention cup; wherein the first retention cup is configured to receive the one or more substances from the one or more inlets; wherein the one or more substances are mixed by the high shear mixer in the first retention cup; wherein the second retention cup is configured to receive the one or more substances flowing from the first retention cup for further mixing; wherein the one or more substances are forwarded from the second retention cup into the intermediate blending stage, where the one or more substances come into contact with the cup base flange; wherein the cup base flange is secured to the submersible actuator and comprises one or more holes configured to lead the one or more substances into the lower multistage aging cup; wherein a first end of the at least one submersible actuator is connected to the cup base flange and a second end of the submersible actuator is fixedly resting on the middle cover plate, which serves a support base for the submersible actuator; wherein the lower multistage aging cup comprises a plurality of rings surrounding the submersible actuator, each ring having one or more holes configured to allow the one or more substances to flow into each subsequent ring until reaching the middle cover plate; and wherein the one or more substances are directed from the middle cover plate, via one or more holes on the middle cover plate, to the bottom cover plate which, in turn, has at least one outlet for releasing the mixed one or more substances.

[0011] To enable a better understanding of the objectives and features of the present invention, a brief description of the drawing below will be followed with a detailed description of the invention.BRIEF DESCRIPTION OF THE DRAWINGS.

[0012] Fig. 1 shows the exterior components of a liquid polymer or chemical activation system that uses a submersible actuator, in accordance with the principles of the present invention. Fig. 2 shows the interior components of a liquid polymer or chemical activation system having a linear aging cup, in accordance with the principles of the present invention. Fig. 3 shows an exploded view of the interior components of the liquid polymer or chemical activation system having a linear aging cup, in accordance with the principles of the present invention. Fig. 4 shows the interior components of a liquid polymer or chemical activation system having a concave aging cup, in accordance with the principles of the present invention. Fig. 5 shows an exploded view of the interior components of the liquid or chemical activation system having a concave aging cup, in accordance with the principles of the present invention. Fig. 6 shows the interior components of a liquid polymer or chemical activation system having a submersible pneumatic or hydraulic actuator with portions of the linear aging cup removed to better show the pneumatic or hydraulic actuator, in accordance with the principles of the present invention. Fig. 7 shows an exploded view of the interior components of the liquid polymer or chemical activation system having a submersible pneumatic or hydraulic actuator and with portions of the linear aging cup removed to better show the pneumatic or hydraulic actuator, in accordance with the principles of the present invention. Fig. 8 shows the interior components of a liquid polymer or chemical activation system having a submersible pneumatic or hydraulic actuator with portions of the concave aging cup removed to better show the pneumatic or hydraulic actuator, in accordance with the principles of the present invention. Fig. 9 shows an exploded view of the interior components of the liquid polymer or chemical activation system having a submersible pneumatic or hydraulic actuator with portions of the concave aging cup removed to better show the pneumatic or hydraulic actuator, in accordance with the principles of the present invention. Fig. 10 shows the interior components of a liquid polymer or chemical system having a submersible electric actuator with portions of the linear aging cup removed to better show the electric actuator, in accordance with the principles of the present invention. Fig. 11 shows an exploded view of the interior components of the liquid polymer or chemical activation system having a submersible electric actuator with portions of the linear aging cup removed to better show the electric actuator, in accordance with the principles of the present invention. Fig. 12 shows the interior components of a liquid polymer or chemical activation system having a submersible electric actuator and with portions of the concave aging cup removed to better show the electric actuator, in accordance with the principles of the present invention. Fig. 13 shows an exploded view of the interior components of the liquid polymer or chemical activation system having a submersible electric actuator with portions of the concave aging cup removed to better show the electric actuator, in accordance with the principles of the present invention. Fig. 14 shows the interior components of a liquid polymer or chemical activation system in which the linear aging cup and chamber have a squared shape, in accordance with the principles of the present invention. Fig. 15 shows an exploded view of the interior components of the liquid polymer or chemical activation system in which the linear aging cup and chamber have a squared shape, in accordance with the principles of the present invention. Fig. 16 shows the interior components of a liquid polymer or chemical activation system in which the concave aging cup and chamber have a squared shape, in accordance with the principles of the present invention. Fig. 17 shows an exploded view of the interior components of the liquid polymer or chemical activation system in which the concave aging cup and chamber have a squared shape, in accordance with the principles of the present invention. Fig. 18 shows a convex aging cup of the liquid polymer or chemical activation system, in accordance with the principles of the present invention. Fig. 19 shows the flow of the one or more substances as they move along the liquid polymer or chemical activation system, in accordance with the principles of the present invention. Fig. 20 shows a first embodiment of a dry substance funnel attached to the liquid polymer or chemical activation system, in accordance with the principles of the present invention. Fig. 21 shows an up-close view of the internal of the first embodiment of a dry substance funnel. Fig. 22 shows an exploded view of the components of the first embodiment of the dry substance funnel attached to the liquid polymer or chemical activation system, in accordance with the principles of the present invention. Fig. 23 shows a second embodiment of a dry substance funnel attached to the liquid polymer or chemical activation system, in accordance with the principles of the present invention. Fig. 24 shows an up-close view of the internal of the second embodiment of a dry substance funnel. Fig. 25 shows an exploded view of the components of the second embodiment of the dry substance funnel attached to the liquid polymer or chemical activation system, in accordance with the principles of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0013] The present disclosure discloses several exemplary embodiments of a liquid polymer or chemical activation system that uses a submersible actuator and has a plurality of blending zones or sections, as further described below.

[0014] Figs. 1-17 show a liquid polymer or chemical activation system 1 that comprises a hollow chamber C having a first distal end DE1 and a second distal end DE2, wherein each distal end is opposite to each other. The first distal end DE1 of the hollow chamber C includes a top chamber flange 2 having one or more holes configured to receive one or more bolts, screws or fasteners S. Similarly, the second distal end DE2 of the hollow chamber C includes a bottom chamber flange 3 having one or more holes configured to receive one or more bolts, screws or fasteners S. The hollow chamber C may be circular in shape, as shown in Figs. 1-9; but may have any other shape, as shown in Figs. 10-17, where the chamber C has a squared shape.

[0015] Additionally, as shown in Figs. 2-3, the liquid polymer or chemical activation system 1 comprises a top cover plate 4, a first top gasket 5, a cup flange 6 and a second top gasket 7 connected to or secured to the top chamber flange 2 on the first distal end DE1 of the hollow chamber C via one or more bolts, screws or fasteners S. Each of the top cover plate 4, first top gasket 5, top cup flange 6, and second top gasket 7 has one or more holes H1 configured to receive the one or more bolts, screws or fasteners S. Furthermore, the one or more holes H1 on each of the previously mentioned individual elements (i.e., the top cover plate 4, the first top gasket 5, the top cup flange 6, and the second top gasket 7 ) are configured to align with each other and with the one or more holes on the top chamber flange 2, as shown in Figs. 3, 5, 7, 9, 11, 13, 15 and 17. In this manner, the top cover plate 4, the first top gasket 5, the top cup flange 6, the second top gasket 7, and the top chamber flange 2 are tightly pressed against each other when secured via the one or more bolts, screws or fasteners S. Furthermore, as also shown in Figs. 2-3, the liquid polymer or chemical activation system 1 further comprises a middle cover plate 8 and a bottom cover plate 9 secured to the bottom chamber flange 3 on the second distal end DE2 of the hollow chamber C via one or more bolts, screws or fasteners S. It should be noted that the middle cover plate 8 lies between the lower chamber flange 3 and the bottom cover plate 9. Moreover, each of the bottom cover plate 9 and middle cover plate 8 has one or more holes H1 configured to receive the one or more bolts, screws or fasteners S. Notably, the one or more holes H1 on each of the aforementioned individual elements (i.e., the bottom cover plate 9 and the middle cover plate 8 ) are configured to align with each other and with the one or more holes on the bottom chamber flange 3, as shown in Figs. 3, 5, 7, 9, 11, 13, 15 and 17. In this manner, the bottom cover plate 9, middle cover plate 8 and bottom chamber flange 3 are tightly pressed against each other when secured via the one or more bolts, screws or fasteners S. Such configuration of the liquid polymer or chemical activation system 1 creates a hollow space inside the chamber C that is flanked by the top cover plate 4 and the bottom cover plate 9.

[0016] As shown in Figs. 1-17, the top cover plate 4 comprises a blending reactor 10 with at least one inlet 11 for receiving one or more substances, including, but not limited to, any liquid, solid particle or physical matter; and the bottom cover plate 9 comprises at least one outlet 12 for releasing the one or more substances. Moreover, as shown in Fig. 2, within the chamber C, the liquid polymer or chemical activation system 1 comprises an upper multistage mixing cup 14 comprising one or more retention cups RC configured to receive the one or more substances that were poured through the one or more inlet 11; at least one high shear mixer 13 for mixing the one or more substances in the multistage mixing cup 14; at least one submersible actuator 15 for actuating or rotating the high shear mixer 13; an intermediate blending section 16 for receiving the mixed one or more substances from the multistage mixing cup 14; a cup base flange 17 having one or more holes and a support platform for supporting one end of the multistage mixing cup 14; and a lower multistage aging cup 18 for further mixing of the one or more substances.

[0017] The 11A14 constitutes the first blending zone of the liquid polymer or chemical activation system 1. As previously noted, the upper multistage mixing cup 14 comprises one or more retention cups RC configured to receive the one or more substances, as particularly shown in Fig 6. The upper multistage mixing cup 14 is preferably subdivided into at least a first retention cup RC1 and a second retention cup RC2, wherein the second retention cup RC2 encircles or encloses the first retention cup RC1. For embodiments having more than two retention cups, each subsequent retention cup encircles or encloses the previous retention cup. For example, a third retention cup RC3 would encircle the second retention cup RC2, a fourth retention cup would encircle the third retention cup, and so on. It should be noted that a top portion of the upper multistage mixing cup 14 is encircled by the cup flange 6, as shown in Fig. 3. When the one or more substances are poured through the one or more inlet 11, the substances are led into and received by the first retention cup RC1. In embodiments having more than one inlet 11A, 11B, the one or more substances come into contact with each other for the first time in the blending reactor 10, and then flow into the first retention cup RC1. Once inside the first retention cup RC1 the one or more substances are mixed by the high shear mixer 13. As shown in Figs. 12 and 15, the high shear mixer 13 may include at least one impeller IM to assist in mixing the one or more substances before reaching the second retention cup RC2, as further discussed below. The impeller IM and high shear mixer 13 are attached to a shaft extension SE which in turn is coupled to the submersible actuator 15 via a shaft coupling unit SCU. The submersible actuator 15 actuates the rotation of the shaft extension SE and consequently the rotation of the impeller IM and high shear mixer 13. It should be noted that the submersible actuator 15 may be a submersible electric motor or actuator EM, as shown in Figs. 2-5 and 7-13; or a submersible pneumatic or hydraulic motor HM, as shown in Figs. 6-9 and 14-17. For embodiments having an electric motor or actuator EM, the liquid polymer or chemical activation system 1 also comprises at least one electric power connector PC on the top cover plate 4, that comprises an insulated harness IH connected to the submersible actuator 15, as shown in Fig. 4. The horsepower of the submersible electric motor or actuator EM should preferably be between 0.3 HP and up to 300 HP. In some embodiments, however, the horsepower range may be higher or lower. For embodiments having a submersible pneumatic or hydraulic motor HM, as shown in Figs. 6, 7, 8, 9, 14, 15, 16 and 17, the liquid polymer or chemical activation system 1 is connected to a pneumatic or hydraulic power source HPS that provides power to the pneumatic or hydraulic motor HM via inputs IN on the bottom cover plate 9, which in turn are connected to the submersible pneumatic or hydraulic motor HM.

[0018] It should be noted that, as shown in Fig. 2, a first end of the first and second retention cups RC1, RC2 are in contact with the portion of the top cover plate 4 within the chamber C, whereas a second end of the first and second retention cups RC1, RC2 are resting or supported by a support platform SP of the cup base flange 17. The first retention cup RC1 further includes one or more holes H2 for releasing the mixed one or more substances into the second retention cup RC2, which as noted, encircles or encloses the first retention cup RC1. Once the one or more substances are received and further mixed in the second retention cup RC2, the one or more substances are flow, via one or more holes H2 in the second retention cup RC2, into the intermediate blending stage 16. The intermediate blending section 16 constitutes the second blending zone of the liquid polymer or chemical activation system 1. It should be noted that the cup flange 6 forms the celling of the intermediate blending section 16, as shown in Fig. 2. Once in the intermediate blending section 16 the one or more substances come into contact with the cup base flange 17.

[0019] As shown in Fig. 3, the cup base flange 17 comprises one or more holes H3 configured to receive one or more bolts, screws or fasteners S that are used to connect or secure the cup base flange 17 to the submersible actuator 15 and to the plurality of rings 19 that form part of the multistage aging cup 18, as further described below. Moreover, the cup base flange 17 comprises one or more holes H4 configured to lead or provide access to the one or more substances into the lower multistage aging cup 18. As previously noted, the cup base flange 17 includes a support platform SP for supporting the retention cups RC of the upper multistage mixing cup 14. The support platform SP has at least one opening SPO that provides the shaft coupling unit SCU with access to the submersible actuator 15. It should also be noted that the submersible actuator 15 has a first end TE and a second end BE. On the first end TE the submersible actuator 15 is connected to the cup base flange 17 via one or more bolts, screws or fasteners S; whereas the second end BE of the submersible actuator 15 is fixedly resting on a groove G on the middle cover plate 8 that is configured to receive the second end BE of the submersible actuator 15 . As such, the middle cover plate 8 serves a support base for the second end BE of the submersible actuator 15. Lastly, it must be noted that the middle cover plate 8 is connected to the bottom cover plate 9 which, in turn, has at least one outlet 12 for releasing the one or more substances.

[0020] As noted above, once the mixed one or more substances reach the cup base flange 17, the substances are led (by the flow of the one or more substances), via the one or more holes H4, into the lower multistage aging cup 18 (which is where the submersible actuator 15 is located). The lower multistage aging cup 18 constitutes the third blending zone of the liquid polymer or chemical activation system 1. The lower multistage aging cup 18 comprises a plurality of rings 19 surrounding the submersible actuator 15, in which the rings 19 are aligned one on top of the other. The rings 19 may be linear 19A (as shown in Figs. 2, 3, 6, 7, 10, 11, 14, and 15), concave 19B (as shown in Figs. 4, 5, 8, 9, 12, 13, 16, and 17), or convex 19C (as shown in Fig. 18) in relation to the submersible actuator 15; and can be manufactured from any strong durable material such as plastic, metal, etc. As previously noted, the rings 19 are secured to the cup base flange 17 via one or more bolts, screws or fasteners S. Moreover, each ring in the plurality of rings 19 includes one or more holes H5. The one or more holes H5 allow the one or more substances to further mix as the substances move down along the lower multistage aging cup 18 until it reaches the middle cover plate 8. As shown in Fig. 17, the middle cover plate 8 comprises one or more holes H6 which lead the mixed one or substances directly into the bottom cover plate 9. The bottom cover plate 9 constitute the fourth and final blending zone of the liquid polymer or chemical activation system 1 before the mixed one or more substances are released through the at least one outlet 12. The flow of the one or more substances along the liquid polymer or chemical activation system 1 (from the moment the substances enter through inlet 11 to the moment they are released through outlet 12 ) is shown in Fig. 19. Furthermore, the one or more holes H5 in the plurality of rings 19 do not align with other holes in the plurality of rings 19. This configuration provides further mixing of the one or more substances.

[0021] As shown in Figs. 20-25, the liquid polymer or chemical activation system 1 may also include a dry substance funnel SF attached to the blending reactor 10 via a dry substance interconnection inlet 20, which is a tube that connects the dry substance funnel SF to the blending reactor 10. A gasket SFG may be placed between the substance funnel SF and dry substance interconnection inlet 20 to provide a better connection between the dry substance funnel SF and the dry substance interconnection inlet 20. The dry substance funnel SF may be used to pour non-liquid substances, such has powdered or solid substances, into the polymer activation system 1 in order to mix it with other substances. It is important to note that the narrow portion of the dry substance funnel SF is the portion that attaches to the dry substance inlet 20. On the other hand, a hopper or container 21 may be attached, via one or more bolts, screws or fasteners S, to the wide portion of the dry substance funnel SF. The hopper or container 21 can be used to pour a larger portion of dry substances into the liquid polymer or chemical activation system 1, and may include a closeable door CD in order to provide or close user access to the dry substance funnel SF. Once a dry substance is poured through the dry substance funnel SF, the dry substance is led, via the dry substance interconnection inlet 20, to blending reactor 10 where it then reaches the first retention cup and is mixed with other substances (liquid or solid) in accordance with the principles of the present invention, as already disclosed discussed herein.

[0022] The present invention contemplates two embodiments in which the dry substance funnel SF may be used. In one embodiment, the dry substance funnel SF comprises a screw feeder 22 for initial mixing of the dry substance, as shown in Figs 20-22. In this first embodiment the liquid polymer or chemical activation system 1 comprises a longer or elongated shaft extension SE2 that extends from the shaft coupling unit SCU all the way to the narrow portion of the dry substance funnel SF. As such, the portion of the shaft extension SE2 in the first retention cup RC1 includes the high shear mixer 13 and impeller IM; while the portion of the shaft extension SE2 in the narrow portion of the dry substance funnel SF includes the screw feeder 22. As the shaft extension SE2 rotates, the screw feeder 22 also rotates in order to begin initial mixing of the dry substance. The rotation of the screw feeder 22 is slow on order to control the dosage of the dry substances. Once the dry substance reaches the first retaining cup RC1, the substance mixes with the other substance poured through inlet 11.

[0023] In the second embodiment, the narrow portion of the dry substance funnel SF is connected to the top end of a larger blending reactor BR2 via one or more bolts, screws or fasteners S, as shown in Figs. 23-25. A gasket SFG may be incorporated between the dry substance funnel SF and top portion of the blending reactor BR2 for better connection between these two elements. In this embodiment, the blending reactor BR2 comprises a control valve 23 for controlling the amount of dry substances that enters the blending reactor BR2; and also comprises an inlet 27 for receiving liquid substances. The bottom end of the blending reactor BR2 is connected, via one or more bolts, screws or fasteners S, to a compartment 24 that includes a stator 25. The compartment 24, in turn, is connected to the top cover plate 4. The stator 25 comprises one or more jet impellers 26, which serve the purpose of pushing the substances from the blending reactor BR2 into the first retention cup RC1. A gasket SFG may be incorporated between the bottom portion of the blending reactor BR2 and the compartment 24 for better connection between these two elements. Once a dry substance is poured through the dry substance funnel SF, the substance is led to the bleeding reactor BR2 where it comes into contact with the liquid substance poured via the inlet 27. The substances are then vigorously mixed by the jet impellers 26 and are then pushed into the first retention cup RC1 to be mixed in accordance with the principles of the present invention, as already disclosed discussed herein.

[0024] Lastly, it is worth noting that in this second embodiment, the liquid polymer activation or chemical system 1 also comprises a longer a shaft extension SE2 that extends from the shaft coupling unit SCU all the way to the compartment 24 and is connected to the jet impellers 26. As such, the rotation of the shaft extension SE2 enables the rotation of the jet impellers 26.

Claims

1. A liquid polymer or chemical activation system (1), comprising: a chamber (C) having a top chamber flange (2) on a first distal end (DE1) and a bottom chamber flange (3) on a second distal end (DE2), wherein each distal end (DE1, DE2) is opposite to each other; a top cover plate (4) secured to the top chamber flange (2) on the first distal end (DE1) of the chamber (C) via one or more bolts (S); a middle cover plate (8) and a bottom cover plate (9) secured to the bottom chamber flange (3) on the second distal end (DE2) of the chamber (C) via one or more bolts (S), wherein the middle cover plate (8) lies between the lower chamber flange (3) and the bottom cover plate (9); wherein such configuration creates a hollow space inside the chamber (C) that is flanked by the top cover plate (4) and the bottom cover plate (9); a blending reactor (10) with one or more inlets (11A, 11B) for receiving one or more substances; an upper multistage mixing cup (14) configured to receive the one or more substances from the one or more inlets (11A, 11B); at least one high shear mixer for mixing (13) the one or more substances; at least one submersible actuator (15) for actuating the high shear mixer (13); wherein the high shear mixer (13) is attached to a shaft extension (SE) which, in turn, is coupled to the submersible actuator (15) via a shaft coupling unit (SCU); an intermediate blending section (16) configured to receive the one or more substances from the upper multistage mixing cup (14); a cup base flange (17) having a support platform (SP) for supporting one end of the upper multistage mixing cup (14); a lower multistage aging cup (18) for further mixing of the one or more substances; wherein the upper multistage mixing cup (14) comprises at least a first retention cup (RC1) and a second retention cup (RC2), and wherein the second retention cup (RC2) encircles the first retention cup (RC1); wherein the first retention cup (RC1) is configured to receive the one or more substances from the one or more inlets (11A, 11B); wherein the one or more substances are mixed by the high shear mixer (13) in the first retention cup (RC1); wherein the second retention cup (RC2) is configured to receive the one or more substances flowing from the first retention cup (RC1) for further mixing; wherein the one or more substances are forwarded from the second retention cup (RC2) into the intermediate blending section (16), where the one or more substances come into contact with the cup base flange (17); wherein the cup base flange (17) is secured to the submersible actuator (15) and comprises one or more holes (H4) configured to lead the one or more substances into the lower multistage aging cup; wherein a first end (TE) of the at least one submersible actuator (15) is connected to the cup base flange (17) and a second end (BE) of the submersible actuator is fixed to the middle cover plate (8), which serves a support base for the submersible actuator (15); wherein the lower multistage aging cup (18) comprises a plurality of rings (19) surrounding the submersible actuator (15), each ring having one or more holes (H5) configured to allow the one or more substances to flow into each subsequent ring until reaching the middle cover plate (8), wherein the one or more holes (H5) in each ring of the plurality of rings (19) surrounding the submersible actuator (15) do not align with each other; and wherein the one or more substances are directed from the middle cover plate (8), via one or more holes (H6) on the middle cover plate (8), to the bottom cover plate (9) which, in turn, has at least one outlet (12) for releasing the mixed one or more substances.

2. The liquid polymer or chemical activation system of claim 1, wherein the chamber (C), the top cover plate (4), the middle cover plate (8) and the bottom cover plate (9) have a circular shape.

3. The liquid polymer or chemical activation system of claim 2, wherein the plurality of rings (19) surrounding the submersible actuator (15) have a circular shape.

4. The liquid polymer or chemical activation system of claim 1, wherein the chamber (C), the top cover plate (4), the middle cover plate (8) and the bottom cover plate (9) have a squared shape.

5. The liquid polymer or chemical activation system of claim 4, wherein the plurality of rings (19) surrounding the submersible actuator (15) have a squared shape.

6. The liquid polymer or chemical activation system of claim 1, further comprising a first top gasket (5), a cup flange (6) and a second top gasket (7) secured to the top chamber flange (2) on the first distal end (DE1) of the chamber (C) via one or more bolts (S), wherein the first top gasket (5), cup flange (6) and second top gasket (7) lie between the top cover plate (4) and the top chamber flange (2).

7. The liquid polymer or chemical activation system of claim 6, wherein the cup flange (6) forms a celling to the intermediate blending section (16).

8. The liquid polymer or chemical activation system of claim 1, wherein the high shear mixer (13) comprises at least one impeller (IM) to assist in mixing the one or more substances before reaching the second retention cup (RC2).

9. The liquid polymer or chemical activation system of claim 1, wherein the support platform (SP) has at least one opening (SPO) that provides the shaft coupling unit (SCU) with access to the submersible actuator (15).

10. The liquid polymer or chemical activation system of claim 1, wherein the first retention cup (RC1) includes one or more openings (H2) for facilitating the flow of the one or more substances into the second retention cup (RC2).

11. The liquid polymer or chemical activation system of claim 1, wherein the second retention cup (RC2) includes one or more openings (H2) for facilitating the flow of the one or more substances into the intermediate blending section (16).

12. The liquid polymer or chemical activation system of claim 1, wherein the submersible actuator (15) is an electric motor (EM).

13. The liquid polymer or chemical activation system of claim 1, wherein the submersible actuator (15) is a hydraulic motor or a pneumatic motor (HM).

14. The liquid polymer or chemical activation system of claim 13, further comprising a pneumatic or hydraulic power source (HPS) that provides power to the pneumatic or hydraulic motor (HM) via inputs (IN) on the bottom cover plate (9).

15. The liquid polymer or chemical activation system of claim 1, wherein the plurality of rings (19) surrounding the submersible actuator (15) are linear (19A) in relation to the submersible actuator (15).

16. The liquid polymer or chemical activation system of claim 1, wherein the plurality of rings (19) surrounding the submersible actuator (15) are concave (19B) in relation to the submersible actuator (15).

17. The liquid polymer or chemical activation system of claim 1, wherein the plurality of rings (19) surrounding the submersible actuator (15) are convex (19C) in relation to the submersible actuator (15).

18. The liquid polymer or chemical activation system of claim 1, wherein the upper multistage mixing cup (14) comprises three or more retention cups (RC1, RC2, RC3).

19. The liquid polymer or chemical activation system of claim 1, further comprising a dry substance funnel (SF) attached to the blending reactor (10).

20. The liquid polymer or chemical activation system of claim 19, further comprising a hopper (21) attached to the dry substance funnel (SF).

21. The liquid polymer or chemical activation system of claim 19, wherein the dry substance funnel (SF) comprises a screw feeder (22).

22. The liquid polymer or chemical activation system of claim 21, wherein the screw feeder (22) is attached to the shaft extension (SE).

23. The liquid polymer or chemical activation system of claim 19, wherein the blending reactor (10) is attached to a compartment (24) that comprises a stator (25).

24. The liquid polymer or chemical activation system of claim 23, wherein the stator (25) comprises at least one jet impeller (26).

25. The liquid polymer or chemical activation system of claim 24, wherein the at least one jet impeller (26) is connected to the shaft extension (SE).

26. The liquid polymer or chemical activation system of claim 1, wherein the plurality of rings (19) surrounding the submersible actuator (15) are secured, via one or more bolts (S), to the cup base flange (17).