Portable fluid batching system for creating fireproofing coating material
20220118470 · 2022-04-21
Inventors
Cpc classification
B01F23/565
PERFORMING OPERATIONS; TRANSPORTING
B05B15/25
PERFORMING OPERATIONS; TRANSPORTING
B05B12/002
PERFORMING OPERATIONS; TRANSPORTING
B05B12/087
PERFORMING OPERATIONS; TRANSPORTING
B01F35/13
PERFORMING OPERATIONS; TRANSPORTING
B05B13/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B12/08
PERFORMING OPERATIONS; TRANSPORTING
B05B12/00
PERFORMING OPERATIONS; TRANSPORTING
B05B13/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A portable water batching system for mixing fireproofing coatings. A controller allows the user to pre-set the volume of a batch of water to be dispensed into the mixer for the fireproofing coating. The water batching system can also be used in conjunction with an acid/activator injection system that allows an acid solution to be introduced to the fireproofing coating slurry prior to reaching the spray gun used for application. The water batching system and acid injection system can be used in tandem with a system that proportionally controls the amount of acid solution pumped from the acid injection system to the amount of fluid pumped from the water batching system. The systems can each be equipped with data sensors to allow for recording of information for each batch of fireproofing coating.
Claims
1. A fireproofing coating liquid dispensing system comprising a portable frame; an electrical input; a liquid tank on the portable frame for holding liquid comprising: a fireproofing coating liquid input source a fireproofing coating liquid output a pump intermediate the input source and the liquid output; a volumetric meter intermediate the input source and the liquid output; a control system in communication with the volumetric meter comprising: means for specifying a volume of liquid to output via the liquid output for a batch; means operable to begin the pump outputting liquid from the tank through the liquid output; means to automatically stop the pump when a specified volume of liquid for the batch has passed through the liquid output.
2. The system of claim 1 in which the pump has an output flow capacity of at least 10 gallons per minute.
3. The system of claim 1 in which the liquid tank further comprises a liquid drain.
4. The system of claim 1 in which the pump is a sump pump located within the tank.
5. The system of claim 1 further comprising sensors operable to automatically and continuously transmit data to a central database from which reports may be generated to provide quality control or worker efficiency information.
6. The system of claim 1 in which the system is controlled and data is provided by an app running on a wireless device.
7. The system of claim 1 further comprising: a handle for moving the portable frame.
8. The system of claim 1 further comprising: a means to manually pump liquid through the system.
9. The system of claim 1 further comprising: a means to manually stop the volume of liquid to output via the liquid output for a batch.
10. The system of claim 1 further comprising: a pressure washer to be used with the volume of liquid output via the liquid output.
11. The system of claim 1 further comprising: a remote control with the means to: manually pump liquid through the system. manually stop the volume of liquid to output via the liquid output for a batch.
12. The system of claim 11 further comprising: a magnet to hold the remote control to the portable frame.
13. The system of claim 1 further comprising: fork lift pockets on the portable frame.
14. The system of claim 1 further comprising: a mixer to receive: fireproofing coating liquid from the fireproofing coating liquid output; a fireproofing coating powder.
15. The system of claim 1 in which the frame holds an activation system comprising: a mixing tank for holding activation fluid; an agitator operable to agitate the activation fluid; a pump for pumping the activation fluid to a flow of fireproofing material slurry; a sensor calculating a volume of the activation fluid pumped.
16. The system of claim 15 further comprising: a controller proportionally controlling the volume of liquid dispensed from the fireproofing coating liquid dispensing system and the volume of the activation fluid pumped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
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[0026]
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DETAILED DESCRIPTION
[0028] The system is designed to be used with a fireproofing material or other construction material manufacturing system that includes a mixer 100 having a mixing tub 101 as shown in
[0029] The fireproofing powder and fluid are typically mixed for 2-6 minutes in the mixing tub 101 to create a slurry, which is then dumped into a pump hopper 103. A reciprocating pump or rotary pump pumps the slurry through the pump outlet 104 and into a hose, which transports the slurry to the location where it is to be applied.
[0030] The liquid is provided to the mixing tub 101 through the fluid inlet 102 via the water batching system in accordance with the present disclosure as shown for example, in
[0031] As shown in
[0032] A sump pump 116 in the bottom of the tank 105, as shown in
[0033] As shown in
[0034] The controller is housed in a control box 121 that is mounted to a frame for the system. The control box 121 can further house a display such as an Nan display from Parker (https://www.parker.com/portal/site/PARKER/menuitem.223a4a3cce02e b6315731910237ad1ca/?vgnextoid=d3bc7433cb65e210VgnVCM10000 048021dacRCRD&vgnextfmt=EN). A controller may also be implemented by a PC (personal computer) or PLC (programmable logic controller). The controller may be programmed to allow any desired metric for liquid to be specified for a batch, such as gallons, liters, ounces, etc. using a button or touch screen system (user interface) 130.
[0035] As shown in
[0036] To change the amount of programmed volume to be pumped, the user can press the reset button 128 and re-program the amount using the interface 130. If the user wants to stop the flow of liquid for any reason, for example, if a hose has a leak, they can press the red “stop” button 127. The stop button 127 is also useful for situations when an operator determines that a batch of material to be mixed has a sufficient volume of liquid in it already, even if a greater volume was been pre-programmed into the controller. Pushing the stop button 127 sends a signal to turn off the sump pump 116 and close the solenoid valve 120.
[0037] The control box 121, as shown in
[0038] The remote control 131 can be equipped with a start batch button 132 and a stop batch button 133 which each send signals as discussed above for the start and stop buttons 125, 127 on the control box 121. The remote control 131 is connected to the control box 121 by an electric cable 134. This is helpful for situations when the control box 121 is distant from the mixer 100, so that an operator away from the mixer 100 or the water batching system may start the flow of liquid into the mixer 100. The remote control 131 may be attached to a magnet, so it may be affixed to the metal frame of the mixer 100 or the cart 106 for the water batching system if desired.
[0039] Of course, the remote control 131 described above may also be provided with stop batch, jog, and/or override buttons to permit activation of these features from a location remote from the control box 121. Additionally, the remote control 131 may have input buttons that allow the user to enter a specific amount of water to be dispensed.
[0040] The system also includes appropriate power cords for supplying power to the control box 121 and sump pump 116.
[0041] A display on the control box 121, and/or remote control 131 may also show data collected or stored in the system, including but not limited to dates, times, batch numbers, batch start and stop times, construction material characteristics such as temperature and density, operator name, job description, and the like. In another embodiment, the functions of the remote buttons and displays may be implemented via an app running on a smartphone.
[0042] An app may be used to access a central database to display information regarding the batches being applied from a variety of job sites in which the system described herein is implemented. This allows a construction supervisor to ensure that construction projects are staying on schedule throughout a day, and to quickly identify problems requiring an intervention. Information from the central database can also compare the efficiency and effectiveness of multiple work crews to which construction projects have been assigned.
[0043] Optionally, the frame 106 may hold a pressure washer 115 as shown in
[0044] The portable frame 106 may optionally hold an injection system as shown in
[0045] As shown in
[0046] The combination is then pumped from the tank 139 by an injection pump 141. The injection pump 141 may be a positive displacement diaphragm or a chemical metering pump adapted to dispense at a specified rate. The pumping rate may be determined by a mechanical dial on the injection pump, or through an electronic means. The pump 141 will pump the alum/activator mixture from the tank outlet 138 through a filter 136. The solution then travels through a pressure gauge 142 fitted with a pulsation dampener 150 to a t-valve 156. The t-valve 156 has two outlets. The first, is an outlet 151 connected to a hose 155 that recirculates the solution within the tank 139. The second, is an outlet 137 that disperses the acid solution into a hose to a manifold inlet for the acid solution 145 as shown in
[0047] Alternatively, the injection pump 141 may be a variable speed motor whose output may be correlated with the output set for the slurry pump in accordance with desired parameters. In one embodiment, a control system is provided that monitors the fireproofing coating slurry, and is calibrated to automatically adjust the output of the alum or activator injection pump, so that a desired ratio is maintained. The pump 141 may be hydraulic, rotary, or reciprocating. This allows the amount of volume being pumped through the injection system to be converted to a volumetric flow per minute. Once that amount is calculated, the user can change with variable speed the motor on the injection pump 141 allowing it to slow down or speed up proportionally to the rate of flow from the water batching system.
[0048]
[0049] In one embodiment, the system may include sensors and data collection systems that automatically detect and report data regarding the use of the system. Data that may be collected and stored includes: [0050] Amount of water in tanks [0051] Amount of slurry in mixer [0052] Amount of slurry in pump hopper [0053] Date and start time of day for each batch [0054] Amount of programmed liquid for batch [0055] Amount of manually added liquid for batch [0056] Duration of dispensing of liquid for batch [0057] Amount of actual liquid dispensed for batch [0058] Date and end time of day for each batch of liquid dispensed [0059] Liquid temperature at batch at tank [0060] Ambient temperature at batch tank [0061] Liquid temperature at mixer [0062] Ambient temperature at batch tank [0063] GPS of batch tank [0064] GPS of mixer [0065] Flow rate of fireproofing coating slurry at periodic intervals [0066] Flow rate of activator at periodic intervals [0067] Dates and times of day when fireproofing coating slurry is being applied [0068] Density of fireproofing coating slurry at periodic intervals [0069] Viscosity of fireproofing coating slurry at periodic intervals [0070] Weight of fireproofing powder in mixing vat [0071] Density of fireproofing coating slurry at mixing vat [0072] Mixing time of coating slurry at mixing vat [0073] Flow rate of activator [0074] Total amount of fireproofing material powder in batch [0075] Total amount of fireproofing material powder used per day [0076] Total amount of water in batch [0077] Total amount of water used per day [0078] Total amount of slurry pumped from hopper [0079] Identity of operators
[0080] In one embodiment, this data is automatically and continuously detected by sensors at the various components, then provided via a communications protocol such as Bluetooth to the central database. Reports may be generated from the central database to provide quality control and worker efficiency information.
[0081] Monitoring and recording this data is especially important because the environment and requirements for applying fireproofing coating can change throughout a day. For example, the coating density, thickness, and flow rates required may vary considerably depending on the type of surface to which the coating is applied, e.g., whether decking, columns, or girders.
[0082] The term “fireproofing coating liquid” as used in the claims means any desired liquid that may be mixed with a fireproofing coating powder to create a fireproofing coating slurry, and may include water. While the embodiment disclosed herein utilizes an electrically powered pump, a pump powered by other means such as a liquid fuel or hydraulic power source may also be used.
[0083] Those of skill in the art will understand that various details of the invention may be changed without departing from the spirit and scope of the invention. Furthermore, the foregoing description is for illustration only, and not for the purpose of limitation, the invention being defined by the claims. For example, while fireproof coating has been described as the exemplary construction material with which the system may be used, the systems and methods described herein may be used with other coatings such as mortars, plasters, epoxy, and other thick-bodied construction coatings containing small aggregates.
[0084] While the invention has been illustrated and described in detail in the foregoing drawings and description, the same is to be considered as illustrative and not restrictive in character, it being understood that only illustrative embodiments thereof have been show and described and that all changes and modifications that are within the scope of the following claims are desired to be protected.
[0085] All references cited in this specification are incorporated herein by reference to the extent that they supplement, explain, provide a background for or teach methodology or techniques employed herein.