I am using the Mixingstation for both type of the X-Consoles and also for the M-Console because it adds extra value to these products.

So I would like to have also the same extra values for the SQ, and probably in future also for the dLive.

Dont have too much expectation regarding the possible functionality of the mixingstation for the SQ. I think that the remote protocol is limited to exact those functions which are available at the SQ-Mix app.


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The building automation system (BAS) ready ADMS can be configured with strainers, building recirculation pump and Flow/BTU monitor package to allow facilities managers to remotely monitor and control distribution water temperatures along with monitoring of flow and energy consumption. Unlike the traditional thermostatic mixing valves, it is capable of functioning under varying pressure differentials across the inlets. The ADMS when paired with an AERCO water heater provides a fully integrated and proven solution from a common manufacturer for safe and reliable hot water distribution.

Mixing Station is probably the best 3rd part remote mixing app I've ever used. It's been my go to when remote mixing a Behringer Wing for over a year now. It's so much better than the Wing CoPilot app and the Presonus UC Surface app.

So, when I started mixing on an old Soundcraft Si Expression, I was thrilled to see that Mixing Station supports it. But that's where the happy train stopped. Mixing Station won't sync with the mixer. Using the troubleshooter, Mixing Station reports that it can "see" the mixer, but the mixer won't sync. My first thought was to check the HiQNet access permissions on the mixer. Screeching halt... There is no menu option for HiQNet. Is there something else I can check on the mixer? Thanks!

Conventional washdown mixing stations that rely on multiple moving parts and use old spool and diaphragm technology are prone to premature failure due to mineral deposits and scaling. The necessary regular maintenance of these units to keep them running safely is very time-consuming and costly. The rugged STVM mixer is unique because it has only one moving part, a thermal actuator within the mixing valve cartridge.

The patented mixing design ensures extended, uninterrupted use even if the water contains high mineral content. As the opposing vortices of steam and water enter the mixing valve, a scouring action occurs that minimizes the buildup of minerals and scale.

The STVM steam and water mixer station is used for cleaning processing machinery or chemical tanks and equipment in food processing, dairy, breweries, wineries, chemical, petrochemical, and pharmaceutical facilities where high-temperature steam and cold water mixer stations are required.

The 9" wide helix and side bars lift and shear the product quickly and efficiently to produce an excellent mix consistency and thorough mixing of colors and additives. The paddle's large 9" diameter provides increased peripheral speed which eliminates the need for high-RPM mixing and helps to prevent flash curing.


For a brief look at two very successful SuperKlean customers who use stainless steel hot and cold water mixing valves, please feel free to click on the two videos below, where SuperKlean toured a leading New Jersey brewery called River Horse Brewery, and a well-known, highly respected California Winery called Dorcich Family Vineyards, just south of San Jose California.

Dorcich Family vineyards grows many different varieties of grapes, creating a wide range of superb wines in a beautiful wine-growing region of California. Master winemaker Allesio Carli takes us, and you, on a wonderful tour of his winery, showing how effective utilization and spacing of his 3600 Series hot and cold hose stations and SuperKlean industrial hose nozzles can improve productivity and employee efficiency. Please note that Allesio prefers that each of his hot and cold water mixing valves include SuperKlean low cost temperature gauges so his employees can insure they use just the right temperature of water during their washdown process with SuperKlean hose stations.

For more information on SuperKlean stainless steel 3600 hose stations, or our full line of industrial spray nozzles and hot water washdown hose and hose adapters, please call 800-769-9173 or fill in our Request for Information form on our website www.superklean.com. The team at SuperKlean looks forward to serving you with our famous same-day delivery and industry-leading products.

Our hot and cold water mixing valves come with a mounting plate for easy behind the unit cleanup, an industrial hose rack for easy user access to the hose, and an optional temperature gauge for accurate temperature readings at outlet.

Save your time and use one, complete solution for mixing various liquid products. Mixing Station is an automated system for highly efficient mixing in an IBC. It is available both in stationary and mobile execution, allowing use in various locations.

Mixing stations are convenient and very easy to use. All operations are performed from the integrated control panel, which starts and stops the unit while also adjusting the speed of rotation. The only manual work to be done is the delivery of the IBC, and collecting it when mixing time is finished. Such a design allows for swift positioning and lowering of the mixer as well as setting the mixing timer.

The shafts and impellers are available in a range of materials (AISI 316, PP, PFA, ECTFE). The operator, via a frequency inverter, can adjust the rotational speed of the mixer which allows it to be used for many different applications. IBC mixing station has been designed for mixing different liquids with each other or with powders ensuring their full dissolution in liquids.

To use the Mixing Station the tank with liquid need to be positioned under the mixer. Alternatively, in a case of a mobile mixing station, the unit needs to be transported to the location of the tank. Proper positioning of the container (coaxiality of the container axis and mixer impeller axis) is ensured by the guiding rails. After the placement, the mixer is to be lowered and the rotational speed and mixing time are to be set.

With the continuous development of China's economy, the country's infrastructure and the rapid development of computer industry, concrete mixing station weighing control system for improving production efficiency plays a decisive role. As the core part of concrete production, the weighing control system of concrete mixing station plays an important role in the weighing of concrete materials and the performance of finished concrete. In this paper, the mixing station structure and construction technology analysis of the mixing station weighing system, using control algorithm to achieve the mixing station weighing function to replace the control of conventional instruments. The stability of system operation is improved, the intelligent diagnosis function is increased, and the hardware cost is reduced.

The major components of the project include two chemical mixers to mix materials, a 2-inch suction pump to supply water from non-powered sources, and a flatbed trailer to encompass the unit as a whole. Other components that were fabricated in addition to those purchased include: a platform to hold the mixers, pump, and their plumbing, as well as, cages for storing materials. After evaluating numerous structural designs and possible plumbing diagrams, the designs that provided the best mixing system for McKean Farms were selected and constructed.

An experiment involving 25 experiment stations in the North Central and Southern regions (NCR-42 and S-288, respectively) was conducted to assess the degree of uniformity of diet mixing among stations and to assess the variability among station laboratories in chemical analysis of mixed diets. A fortified corn-soybean meal diet was mixed at each station using a common diet formula (except for vitamin and trace-mineral additions). The diet was calculated to contain 14% crude protein (CP), 0.65% Ca, 0.50% P, and 125 ppm Zn (based on 100 ppm added Zn). After mixing, samples were collected from the initial 5% of feed discharged from the mixer, after 25, 50, and 75% was discharged, and from the final 5% of discharged feed. The five samples were sent to the University of Kentucky, finely ground, and divided into subsamples. Each set of five subsamples from each station was distributed to three randomly selected stations for analysis of CP, Ca, P, and Zn (i.e., each station analyzed five diet sub-samples from three other stations). In addition, two commercial and two station laboratories analyzed composites of the five subsamples from each of the 25 mixed diets. Based on the laboratories that analyzed all diets, means were 13.5, 0.65, and 0.52%, and 115 ppm for CP, Ca, P, and Zn, respectively. Ranges of 11.8 to 14.6% CP, 0.52 to 0.85% Ca, 0.47 to 0.58% P, and 71 to 182 ppm of Zn were found among the 25 diet mixes. The coefficients of variation among the 25 diet samples for CP, Ca, P, and Zn were 4.3, 9.3, 4.1, and 17.4%, and among the 25 laboratories were 3.6, 12.5, 10.7, and 11.1%, respectively. Overall analyses of the five sub samples were, respectively, CP: 13.4, 13.6, 13.4, 13.5, and 13.4% (P < 0.06); Ca: 0.66, 0.67, 0.67, 0.66, and 0.67%; P: 0.50,0.51,0.51,0.50, and 0.50%; and Zn: 115, 116, 112, 113, and 120 ppm (P < 0.001). Diets were not uniformly mixed at all stations (station x sample No. was P < 0.08 for Ca and P < 0.01 for CP, P, and Zn). Among stations, the range of the five samples, expressed as a percentage of the mean and averaged for CP, Ca, P, and Zn, varied from +/- 1.1% (i.e., 98.9 to 101.0%) to +/- 12.9% (84.6 to 110.4%), with an overall average of +/- 5.2%. Neither type nor volume of mixers was related to mixing uniformity. The results suggest that uniformity of diet mixes varies among experiment stations, that some stations miss their targeted levels of nutrients (especially Zn), and that the variability among experiment station laboratories in analysis of dietary Ca, P, and Zn in mixed diets is quite large. e24fc04721

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