News & Blog

MC Academy – Seeding system technical training

5 August 2021

MC Academy never stops! On Tuesday 2nd and Wednesday 3rd August 2021, we had the pleasure of hosting the technical team of Nik, our Bulgarian customer, for a training on MC Elettronica complete systems dedicated to the control and monitoring of row seeding and precision seeding. For MC Elettronica, technical and commercial courses with its customers are an essential element to provide an increasingly qualified product suitable to market needs. Our specialized technicians prepare specific training sessions on the needs of the individual customer, to increase their skills. The training path begins in the internal Academy of the company with the theoretical notions on the products, and then continues in the field, where all the functionality and quality of the systems installed directly on the machine are tested. Here are some significant moments during the two days of training.
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Expansion of Production Area

15 February 2021

With the goal of the continuous improvement of the company's production, MC Elettronica, this year, completed the expansion of its production area, increasing the logistic area by 500 square meters, for a total usable space of 2500 sqm.The introduction of innovative technologies and methodologies for the improvement of industrial production processes, allows the company to offer increasingly competitive products than meet the needs of the market, while reducing the time to market. Despite some slowdowns related to Covid-19 pandemic, the expansion was completed, as planned, before the end of the year, and the new production area was inaugurated on Saturday, December 12th
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Agriculture 4.0 – The 5+2 factors that identify the agriculture 4.0 machines

19 January 2021

The fourth industrial revolution is in full swing and the concepts on which it is based are data connection, exchange and management, and remote control. Taking reference from the requirements defined in attachments A and B, annexed to the law dated 11 December 2016, n. 232 related to tax credit and applied to “Agriculture 4.0”, a declination of Industry 4.0 for agriculture, we can see the type of features an agricultural machine must have in order to be recognised as such. What does attachment A have to say regarding Agriculture 4.0The main point of attachment A regarding Agriculture 4.0 machines (it is not the only one) states “Capital goods whose operation is controlled by computerised systems or via suitable sensors and drives” with reference to the sub-group “machines, including driving and operating machines, tools and devices for loading and unloading, handling, weighing and automatic piece sorting, lifting devices and automated handling, AGV and flexible conveying and handling systems and/or equipped with piece recognition (for example RFID, visors and vision and mechatronic systems)”. For the agricultural machine to meet the requirements set forth for Agriculture 4.0, the following requirements must therefore be fulfilled: R1. Control via CNC (Computer Numerical Control) and/or PLC (Programmable Logic Controller) or equivalent solutions (e.g. micro controllers): reference is made to the fact that, in Agriculture 4.0 machines, control hardware of the system is implemented and supervised with drives having digital functions;R2. Interconnection with the factory’s IT systems with remote loading of instructions and/or part program, which means the interconnection system that enables communication of the control system of point R1 with the remote system via appropriate protocols;R3. Automated integration with the logistics system of the factory or with the supply network and/or other machines since the control and automated systems exchange data with a monitoring system (e.g. a PC with a data transmission and recording software) or with other machines involved. In order to comply with the definition of Agriculture 4.0, this process must be able to be managed via a remote interface (image A) Image A R4. Simple and intuitive man-machine interface that operators can access and interact with safely; R5. Meeting the most recent standards with regard to safety, health and hygiene, which is related to the above point and refers to, for example, the construction standards provided for by the Machinery Directive and other relevant standards. To which these two additional characteristics (there are five in all) are usually added: RA. Remote maintenance and/or remote diagnosis and/or remote control systems for which there is a remote monitoring system both for functional checks but also to repair compromised machine functions; RB. Continuous monitoring of the work conditions and process parameters via appropriate sets of sensors and process deviation activities, which is of fundamental importance since it is precisely the presence of the sensors that enables you to monitor the performance, presence of functional errors and malfunctions; Image B: PRO-SEEDER - Counter and seed passage check sensors by MC elettronica In actual fact, attachment A and B annexed to the law dated 11 December 2016, n. 232 contain additional options, which we can possibly discuss in a future article, but which we invite you to consult by finding it easily with a Google search. Written by Dr. Agr. Mattia Trevini PhD - Agroingegno
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What about remote management of agricultural machines? With agriculture 4.0 it is possible!

19 January 2021

Using Wikipedia as reference, the main principles of Industry 4.0 are represented by the logics of automation to improve the work conditions, generate new business models, increase the yield and production quality of the machines and systems. Logic 4.0 is strictly linked to the concept of smart factory. Three elements are linked to this approach, which are: collaboration between the production players (man, machines and tools), integration of IT infrastructures to integrate systems and companies together, optimization of energy consumption by reducing waste. This entire logical system is based on the concept of a cyber-physical system, meaning the integration and connection of physical systems with IT systems that are in turn inserted into a larger integration and network. The cyber-physical system for application of Agriculture 4.0 systemsIn this regard, the technologies involved in this new world are advanced production systems (e.g. robot, cobot), Additive Manufacturing (3D printing), augmented reality, virtual computer simulations, integration and exchange of information, industrial internet, cloud platforms (cloud computing), IT protection and security, data analyses (big data concept). All concepts related to Industry 4.0 can be perfectly implemented in the agricultural sector, thereby improving the performance and operating quality of the farming machines with a strong impact on an agronomical level for agricultural crops and on a zootechnical level regarding animal production in a precision and more efficient business management. In this context, Agriculture 4.0 is the last piece of the puzzle that raises the technical level in business management. Agriculture 4.0, a site exampleAmong the many things that can be done is sowing with machines connected remotely via the web to a cloud platform, equipped with sensors and data acquisition systems with mapping of the area worked and georeferencing of the operating data (agronomic and machine operation), which are sent, stored and made available to the business management logistic system, but also with the option to integrate with on-board systems remotely (Image A). In this example, there are at least four players involved and the data exchanged with administration and related services can have multiple purposes: figura A The operator that manages the functions on the machine is no longer the driver but is extremely facilitated in running the area and in guaranteeing its regular operation, in particular with regard to the supply of seeds, any faults signalled in time to service already notified by an alarm, the feed-rate and status of the work, etc…; USC-PRO sowing control system by MC elettronica The entrepreneur or administration department that knows what the machine is doing in real time in order to manage all services related to sowing, meaning the work of employees, the relationship with suppliers, store management, sowing quality, etc;The manufacturer, since familiarity with the malfunctions and performance parameters make it possible to have precise and detailed information at hand to improve the design of its machines;The service department or whoever deals with the commercial and assistance part, entering a preventive or predictive maintenance logic, managing its customers more precisely and guaranteeing a faster service in providing spare parts or in guaranteeing interventions directly on site. Agriculture 4.0 in the near futureWe are clearly generalising and the logic of Agriculture 4.0 must be duly adapted to the different farming conditions and business systems, especially since agriculture is not a precise science and is subject to many variables to be managed as opposed to an industrial production system, but this does not exclude the adoption in a sector where tradition, experience and technology have always found strong interaction. The problem is likely to be in the technical skills that require new professional people or updating those already present. Written by DR Agr. Mattia Trevini PhD - Agroingegno
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Precision farming – 5 considerations with regard to implementing variablerate machines

19 January 2021

Let’s start by asking a simple question. What are variable rate agricultural machines? When referring to agricultural equipment, the variable rate is a production factor supply method based on prescription maps reading. Once the maps are set and loaded onto the control system’s memory of the equipment, which is often transmitted by ISObus systems on the tractor via USB pen drive or remote wireless connection, they simply make georeferenced information available to the control software. The software running on the machine basically compares the GPS coordinates where the equipment is located, thanks to the GPS antenna, with the coordinates uploaded via the prescription maps that associate information regarding the specific application. Variable rate agricultural operationsThis approach can be used, for example, for variable dose distribution of a determined factor to be distributed such as seeds fertiliser, and water, but it can also be used for different work on the field, to implement the herbicide and plant protection control. Generally speaking, it is precisely the use of sensors that makes it possible to perform the operations on the field since being familiar with the operating parameters is what makes it possible to control the actuators. ESD system by MC Elettronica Hydra system by MC Elettronica These systems, if also applied in managing farming wastewater, can, for example, mitigate their impact on the environment as in the distribution of wastewater with direct injection systems. In this regard,cross checking the position data detected in real time with the data uploaded by the prescription map based on the nitrogen to be distributed and the data of the NIR sensor on board the machine that measures the nitrogen content in the wastewater enable you to control the rotation speed of the pump and, with the help of the automatic guide, to implement site-specific distribution. Variable rate agricultural equipment: Five valid considerationsBased on what has just been said and the agricultural needs to be fulfilled with the equipment, five considerations are being proposed from among the many that can be made in using machines for variable rate precision farming: Technical skills: implementing variable rate machines undoubtedly requires new skills in which operators are no longer simple machine drivers but must also be able to know how to manage the control systems on board the machine;Variable rate to manage and maps: the most important properties with regard to agricultural technique and yield are mapped, classifying them in adjoining homogeneous areas from which the prescription maps are obtained and which guide operation of the operating machines. However, the areas must be of a sufficient size but with a limited number of classes since considering the speed with which the machines modulate the rate of application in relation to the feed-rate speed, a high efficiency and work precision must still be maintained; Calibration: the machines that distribute the products, whether they are seeds, fertiliser, water, etc., must guarantee precision. It seems obvious, but it is not because if an operating machine is not fitted with adequately calibrated sensors and drives, the purpose of managing the site with precision is useless. This is why is it important to pay due attention to the operation of the sensors;The size of the company is definitely a parameter to keep in mind for the financial sustainability in the introduction of equipment and technologies for precision farming, but it also depends on the type of crops and organisation. In this context, if the cropping farm cannot sustain the investment of a tool, it doesn’t mean that it cannot enjoy the benefits of precision farming but, rather, in this sense, resorting to subcontracting can fulfil the purpose very well, leaving the cropping farm to only deal with data management with, all things considered, a minimal investment;Machines and industry 4.0: variable rate machines become part of the IoT (Internet of Things) logic in which remote data reception and transmission, with the possibility of also having remote control, are the basis. In this sense, the logic of automated management of information forms part of the fourth industrial revolution, significantly raising the technological content of the machines and ultimately of the way of implementing agriculture; Although agriculture is not like the industry, fast, efficient and precise systems are increasingly sought after, innovating while respecting tradition. What do you think? Written by Dr. Agr. Mattia Trevini PhD - Agroingegno
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Precision Farming – The concept, processing and use of data

19 January 2021

The idea of precision farming and the basic concepts related to the spatial variability of the soil’s characteristics and the resulting need to compensate for the differences, especially with regard to the impact on production, was already applied in the first experiences back in the 1920s in the field of agricultural experimentation. It is clear that electronic tools did not exist in that period, and everything was carried out manually, for example, when measuring the pH, samples were taken from points in the soil while counting steps in the field on a previously set regular grid. The said map was then used to apply the addition of a soil improver and corrective. It was definitely an arduous and difficult task but one that was spurred by skill and a golden rule, typical of precision farming, which you can only improve what you can measure! Precision Farming: All part of Measurements and mappingTaking a leap in time and returning to the present day, the introduction of electronics and IT applied to these operating principles in agriculture have also made it possible to implement the method outside the experimental field by automating it. In this sense, applying precision farming today means fulfilling a series of structured steps, which in a nutshell are: Using special instruments and sensors to measure the chemical/physical parameters on the soil and cultivated plants, associating geographic information or, rather, georeferencing the data measured with spatial coordinates, usually latitude and longitude;Creating the map of variability defined through geostatistical approaches of the data detected in which we will represent how this parameter changes in space (the cultivated field);Defining the variability in the map where the variability is represented by analysing the data of the homogenous areas for characteristics defined with measurements, which are normally between 3 to 5 areas or classes;By using the variability maps and applying specific algorithms, obtaining prescription maps that are used to provide the production factors based on the variability found, and implementing appropriate agronomic strategies (e.g. seed, fertiliser or water doses). A few examples of the technologies used to apply Precision FarmingToday, all this work is carried out with the data acquisition and georeferencing technologies. It is possible to map the variability ranging from the measurement of the soil’s texture via electrical conductivity sensors, to the use of multispectral sensors to detect the vigour of the crops by calculating the NDVI (Image A) with sensors airborne by drones (Image B) or using weighing and humidity sensors on combine harvesters to define production maps (Image C). Image A Image B Image C The data collected are then subjected to processing through special software available in the management and interpretation of field data to create prescription maps and use electronic control variable rate equipment (Image D). Image D  In this context, integration with the control technologies on machines is a strategic and essential element, with many application examples now available, from the adoption of the variable rate fertilizer spreader managed with sensors on board the machine capable of calculating the NDVI index and adjusting in real time the dose of nitrogen to be supplied (A) or the adoption of electronic systems with control of the distributor units in seed drills electrically driven and managed through a sowing map loaded on the control terminal of the operating machine (for example in image E – USC Pro control system by MC Elettronica). Image E The farmer’s roleIn this regard, we can consider precision farming as a team effort where technologies and farming expertise come together in a multidisciplinary approach. It is obvious that precision farming is not about having a GPS and driving straight ahead the tractor, as is often heard. On the contrary, the GPS is only a small part of a much larger and more important puzzle to make the use of the machines, the farming technique and ultimately the efficiency of the company’s operation more efficient. In all of this, the farmer has an important role since the precision farming technologies condensed in his hands enhance his decision-making and entrepreneurial abilities... don’t you agree? Written by Dr. Agr. Mattia Trevini PhD - Agroingegno
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MC Academy – Technical Training

30 January 2020

Thanks to our internal Academy, we constantly train customers with the aim to transmit to them new skills related to our products.On Tuesday 28 and Wednesday 29 January 2020, we gave a technical training course addressed to our French distributor Vantage Nord – Trimble and personalised to meet their specific needs. Our specialised technicians illustrated in detail the operation of our most innovative control electronic systems for plantingand row sowing.
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News products 2020

14 January 2020

PREVIEW: NEW FROM MC ELETTRONICA IN 2020presented at the Trade Fair AGRITECHNICA 2020 USC-PRO - UNIVERSAL SEEDER CONTROLUSC-PRO is a modular system for air drills designed to monitor and control all machine functions: blockage monitor, variable rate and tramline.New! Fitting the USC-PRO system with the new PRO-SEEDER seed sensors, which allow you to count and check the seed flow, ELIMINATING SEED DRILL CALIBRATION.MORE INFO PRO-SEEDER SEED SENSORThe PRO-SEEDER seed sensor makes it possible to count the seeds and monitor the flow for each individual seed drill row. Thanks to the integrated seed sensor, the seed drill requires no calibration, as it is possible to set the number of seeds/ha as well as kg/ha.MORE INFO PRO-VALVEThe new PRO-VALVE motorised electric valve allows the operator to close the sowing rows when Tramline type operations are required (automatic row exclusion with GPS systems).MORE INFO ESD ISOBUS - ELECTRONIC SEED DRIVERESD is a simple and modular system for planters that electrifies the sowing and fertiliser distributors by means of Brushless motors, eliminating all mechanical seed drill transmission.MORE INFO UNI-SEEDER SEED SENSORUNI-SEEDER is a special seed sensor, which, unlike traditional ones, can be configured to vary its performance. Thanks to a microcontroller, it assures a direct analysis of the analogue signals from the IR receivers.MORE INFO HYDRA 700The HYDRA 700 system can be applied on sprayers, atomizers and inter-row cultivators. It is a universal system that uses CAN BUS and ISOBUS technology.MORE INFO ECU BRIDGE ISOBUSThe ECU BRIDGE ISOBUS control unit makes it possible to interface the MC electronic systems with any UNIVERSAL TERMINAL or ISOBUS tractor (of different brands and features). The control unit communicates with the MC electronics through a proprietary CAN protocol and then transmits the information, processed according to the ISO 11783/6 communication protocol, to the ISOBUS UT located on the tractor.MORE INFO
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Confagricoltura Rovigo event

10 January 2020

Electronic systems for precision farming On the occasion of the event organised by the trade association Confagricoltura Rovigo on 21 November 2019, MC Elettronica had the pleasure of being invited to speak on the interesting topic of “Electronic systems for precision farming”. Our speakers were tasked with explaining to the many attendees the evolution of Precision Farming in Italy and around the world. To make people understand the importance of this innovative way of thinking of agriculture, we had to show the new technological tools that are now available on the market, and all the benefits that derive from their use.
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Experimental fields

13 October 2019

Thanks to 5 ha of land earmarked as experimental fields, normally used to test its Control Electronic Systems directly in the field, MC Elettronica played host to the 2019 edition of Agricamp.The first experiment, open to 7 different manufacturers, was performed on 16 March, with corn sowing tests. Following this test, periodic samples were taken from the field. The sampling was followed by the analysis and comparison by sector experts of all data obtained from the plants’ growth; lastly, these data were presented to the public in September 2019.
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