Category: Technology

  • National Cucurbit Project Reupped for $7.1 Million

    The Cucurbit Coordinated Agricultural Project (CucCAP), a multi-institution, nationwide research and outreach initiative led by Michigan State University and dedicated to cucurbit crops — cucumbers, squashes, melons and watermelon — has been awarded $7.1 million from the U.S. Department of Agriculture’s (USDA) Specialty Crop Research Initiative.

    The new funding extends the project that began in 2015 for four years. The goals of CucCAP, which is led by Rebecca Grumet, a professor in the MSU Department of Horticulture, are to harness genomic resources for disease resistance and management in cucurbit crops.

    “Producers and processors of cucurbit crops throughout the country consistently identify diseases as one of their most serious and costly problems,” Grumet said. “The diseases cause severe reductions in yield and crop quality, sometime causing total crop loss.

    “Control measures are expensive due to chemical costs, time and labor. The most cost-effective and environmentally desirable solution is disease-resistant varieties in combination with effective integrated disease management strategies.”

    To address these problems, the CucCAP team, with members from 10 institutions around the country combines expertise in genomics, bioinformatics, plant breeding, genetics, plant pathology, outreach and economics.

    The partners are: Boyce-Thompson Institute, Clemson University, Cornell University, North Carolina State University, University of Florida, University of Georgia, University of Puerto Rico, USDA Agricultural Research Service, and West Virginia State University.

    The project’s new phase, CucCAP2, will focus on the development of advanced genomic, bioinformatic and breeding tools; disease resistant materials; disease management strategies and economic analyses for critical diseases threatening cucurbit production.

    Genomics, which helps researchers understand the genetic makeup of cucurbit species and breed disease-resistant varieties, is one CucCAP scientists’ most important approaches. Tools developed through the project have allowed identification of genetic regions associated with resistance to important diseases.

    Grumet has worked with Michigan specialty crop growers for decades on disease management issues. Her research has concentrated on reproductive development and disease resistance in cucurbits — particularly cucumbers.

    This research is especially relevant to Michigan, as the state is home to the nation’s largest pickling cucumber industry, valued at nearly $50 million per year.

    Through CucCAP, researchers have been addressing two devastating diseases threatening cucumbers — downy mildew and Phytophthora fruit rot, caused by a pathogen called Phytophthora capsici. Grumet said these diseases cost U.S. cucumber growers roughly $5 million annually.

    Mary Hausbeck, a University Distinguished Professor in the MSU Department of Plant, Soil and Microbial Sciences, is also a part of the CucCAP team. Her work for the project includes development of effective practices and timely extension resources for management of cucurbit diseases and resistance to Phytophthora fruit rot in processing squash. Additionally, researchers at partner institutions are working with a variety of fungal, oomycete and viral pathogens infecting the different cucurbit crops throughout the country.

    CucCAP projects are geared toward the entire production process, from breeding and pathology to economic analysis and outreach. Commodity organizations and seed industry representatives from around the world assist in setting research priorities.

    Getting information to growers about research findings is also a fundamental part of CucCAP. Outreach is conducted through meeting with growers and providing easily accessible online resources, such as disease control information on the CucCAP website. In addition, the team created a cucurbit genomics database website to serve as a central portal for genomics data and research.

    “Using modern genomic tools, we can more efficiently introduce and combine genes for different resistances while maintaining high yield and important fruit quality traits,” Grumet said. “This is critically needed given the tremendous losses that can be caused by these destructive diseases.” – By Cameron Rudolph, Michigan State University

  • Autonomous Robot to Sample Leaves and Measure Water Potential

    Every backyard gardener knows how hard it can be to tell when to water the plants. Multiply that by tens or hundreds of acres and it’s easy to see the challenges growers face keeping their crops healthy while managing water resources wisely.

    To determine water needs accurately, growers hand-pluck individual leaves from plants, put them in pressure chambers, and apply air pressure to see when water begins to leak from the leaf stems. That kind of testing is time consuming and means growers can only reach so many areas of a field each day and cannot test as frequently as needed to accurately determine optimal irrigation scheduling patterns.

    A group of researchers from UC Riverside and UC Merced have received a grant for more than $1 million from the U.S. Department of Agriculture through the National Science Foundation’s National Robotics Initiative to address these challenges. From UC Riverside are Assistant Professor Konstantinos Karydis and Professor Amit K. Roy-Chowdhury, both from the Department of Electrical and Computer Engineering. UC Merced, which leads the effort, is represented by Stefano Carpin, professor of computer science; and Joshua Viers, professor of environmental engineering.

    UC Riverside Assistant Professor Konstantinos Karydis

    As part of the project, the group is developing a robotic pressure chamber that can autonomously sample leaves and immediately test them on site to provide the freshest data. The system will work to gather data even in large fields, and over a period of time, rather than just providing a snapshot.

    Frequently updated data can help growers better plan irrigation schedules to conserve water, optimize the time and effort spent by crop specialists tasked with determining and analyzing lead water potential, and help decrease some of the costs in the food-production chain.

    UC Riverside Professor Amit K. Roy-Chowdhury

    Current measuring techniques involve collecting leaf samples and transporting them to an off-site location, where testers can use very accurate, expensive pressure chambers; or sampling and analyzing leaf samples in the field using hand-held pressure chambers.

    “In the first category, leaf samples can get mixed up, making it impossible to track them back to the specific areas of the field they came from, Karydis said. “In addition, the properties of the leaf might vary given the time elapsed between being sampled and being analyzed, which in turn may yield misleading results.”

    Hand-held instruments in the field can be less accurate, but testing can be done multiple times with different leaves from the same plants. This method is time- and labor-intensive, and must be undertaken by specially trained personnel.

    Carpin has already worked with colleagues at UC Davis and UC Berkeley to create the Robot-Assisted Precision Irrigation Delivery, or RAPID, system, which travels along rows of crops adjusting irrigation flows according to sensor data that tells the robot precisely what’s needed for each plant.

    The project will use the same mobile base robot as in RAPID but equip it with a custom-made robotic leaf sampler and pressure chamber being designed by the researchers at UC Riverside, and pair it with drones that can survey the fields and direct the robot to areas of interest.

    “Using this process, growers could survey plants all day long, even in large fields,” Carpin said.

    The four-year project will support graduate students as well as summer research opportunities for undergraduates. The project has four phases: development of the chamber; developing machine vision so the robot can “see” the water coming from the leaf stems; coordinating multiple robots — in the air and on the ground; and evaluation.

    The researchers plan to have the first set of automated pressure chamber prototypes fabricated by spring 2021, and to evaluate their performance and refine designs in controlled settings over spring and summer 2021. They expect to have a completed setup by winter 2022, so they can begin controlled field testing.

    “We have to be quick about it because if we miss a peak growing season, we have to wait another nine months for the next one,” Carpin said. “We’d like to be able to start testing next summer and test every summer, and we need to be able to maximize the tests.”

    When all of the components have been designed, the designs and code will be made open source, and all the data collected during the project will be made available to the scientific community, the researchers wrote in their proposal.

    The project came about after Carpin and Viers, director of the Center for Information Technology Research in the Interest of Society, or CITRIS, at UC Merced, had been talking with area farmers about the challenges of growing almonds and grapes. Karydis and Roy-Chowdhury had been hearing the same challenges from citrus and avocado growers in the Riverside area, so the four partnered up.

    “California agriculture presents a challenge in terms of scalability,” Carpin said. “But this an exciting collaboration because we’ll get to develop a system that will work on different kinds of crops.” — By Holly Ober, UC Riverside

  • Fall Microirrigation System Maintenance

    California Avocado Commission — Microirrigation systems (microsprinklers, drip emitters and drip tape) tend to provide better distribution/emission uniformity than other irrigation methods. However, the miniscule flow passages in these systems can become clogged and thus disrupt the uniformity of water applied to a crop.

    Late fall and winter are an ideal time to review irrigation systems for needed repairs or malfunctions. A great resource is the University of California Division of Agriculture and Natural Resources’ (UCANR) webpage that outlines various causes of microirrigation clogging and means of preventing or mitigating the problems.

    The first step in alleviating clogs is identifying the problem. Clogs can be caused by:

    • Particulates — sand, silt, clay — from surface water sources
    • Biological materials — algae, bacterial slimes — from surface water sources
    • Chemical precipitates — such as iron and calcium carbonate — from groundwater sources or fertigation

    To identify the issues, UC ANR recommends first flushing water from the lateral lines through a nylon stocking or paint straining cloth and examining what material is collected. If you see mineral particles, you have identified your problem. If you notice that clogging tends to occur at the ends of the lines, this also tends to indicate particulate clogging.

    If you identify organic matter when flushing the line, then biological materials are the issue. You also can open the end of a lateral line and feel inside the tube to see if it is slimy. If so, biological materials are the source of your problem.

    If you note white, crusty materials or reddish staining of the soil near the emitters, this is indicative of chemical precipitates.

    Once you have identified the clogging source, you can take steps to address the issue.

    Particulate issues can be prevented by regular line flushing and the use of filters. UCANR provides a list of various filters and a table noting which filter to choose based on water source, particulates and irrigation system. To adequately flush the lines, water must flush at least 1 foot per second at the end of the drip line — 1 gallon/minute for 5/8” diameter and 2 gallons/minutes for 7/8” diameter drip lines.

    If organic matter is the source of the clogging, the best mode of treatment is a good filtration system combined with use of a biocide to remove the biological contaminants. Visit the UCANR site for a list of filters and the aforementioned “how to choose a filter” table.

    If calcium carbonate (lime) or iron is clogging your emitters, strong acid can make either disappear if emitters are left in it overnight. Lowering the pH (6 or below) of the water by injecting common acids — sulfuric acid, muriatic acid or hydrochloric acid — can help prevent clogging due to lime. UCANR provides specific formulas to help growers determine the injection rate needed to alter water pH.

    If high iron levels are the source of the clogging, aerating the water to oxidize the iron and then allowing the precipitates to settle before irrigating (a reservoir or settling basin is necessary) is the most practical option. Common acids also can be injected to decrease the pH of the water (4 or less).

    For more information on routine microirrigation tasks, visit the UCANR website.

  • CDFA Environmental Farming Program Saves Water & Energy

    Recent heat waves have caused California’s energy grid to take a beating, which forced the California Independent System Operator, the entity that operates the state’s power grid, to institute rolling blackouts.

    Fresno County fruit grower Balvinder Purewall points to his variable frequency drive, which saves on energy use when irrigating. His solar array in the background produces energy for use on his farm

    How do California’s farmers and ranchers deal with energy uncertainty during times like this, when the intense heat demands an increase in irrigation? For many years, they have been working to improve both energy and water efficiency of their irrigation systems. And since 2014, CDFA’s State Water Efficiency and Enhancement Program (SWEEP) has been an important resource for California farmers, providing financial support for long-term efficiency improvements with a focus on greenhouse gas reductions.

    “For many years, SWEEP has been funding grants that help California farmers and ranchers save water and reduce greenhouse gases through reduced energy consumption,” said CDFA Secretary Karen Ross. “The proactive, hard work of these farmers really shines when the state deals with challenges like the recent heat waves. Our farmers’ and ranchers’ contributions provide us with food security plus a host of other benefits seen through SWEEP efforts, which are invaluable to the state, especially now.”

    Some SWEEP grant recipients, for example, have installed energy efficient technologies such as efficient pumping systems coupled with variable frequency drives to reduce energy demands of irrigation. Other grant recipients have also installed solar and other forms of renewable energy, resulting in less imported energy and thus reducing the strain on the grid. Energy-saving practices like these also result in reduced greenhouse gas production.

    Central Coast citrus and avocado grower Daryn Miller received a SWEEP grant, which helped provide two small solar arrays, one for each irrigation pump, to offset his farm’s GHG production use and save water. The project also included installation of soil moisture and weather sensing technologies that help the farmer make data-driven choices on when and for how long to irrigate his crops.

    “The objective overall was mostly to cut down our energy,” said Miller, “to really see how much water we were using … to get a good idea of where we’re at on a total amount of water and a total amount of electricity, and to essentially create our own little electric grid.”

    Fresno County fruit grower Balvinder Purewal received a SWEEP grant to enhance his 37-acre farm’s irrigation system with a high-efficiency pump, soil moisture sensors, double-line drip system and 25-kilowatt solar array. “The SWEEP program is going to help us save on both water from the ground level and save energy,” he said. This energy savings results in statewide GHG savings by reducing the energy grids reliance of other forms of energy production.

    In 2019 alone, SWEEP supported 122 projects with an estimated reduction in greenhouse gas emissions equal to 3,200 metric tons of carbon dioxide equivalent per year. This is equivalent to supporting the electricity needs for nearly 550 homes for one year, based on federal EPA equivalency factors. SWEEP utilizes similar incentive strategies to the United States Department of Agriculture: Natural Resources Conservation Service: Environmental Quality Incentives Program (NRCS:EQIP).

    Scientists tell us that extreme heat days and extreme heat waves are becoming more common in California due to climate change, and reports developed by CDFA in collaboration with several partners and engagement with the farmer community, further highlight the same concerns. With compounding impacts of climate change and other stressors on our environment and natural resources, SWEEP and other CDFA Climate Smart Agriculture programs are helping build a more resilient ‘California For All.’

  • Automation Helps Solve Specialty Crop Challenges

    With support from the National Institute of Food and Agriculture’s Multistate Research Fund, researchers at 17 land-grant universities are working together to develop automated systems that work well for labor-intensive specialty crops like fruits, vegetables, tree nuts, and nursery plants. A multi-state collaborative approach lifts the burden of research and development from a single specialty crop sector and spurs major advances.

    Automation is helping the specialty crop industry overcome labor shortages, fine-tune management decisions, conserve resources and meet growing demand. Consistent with the USDA Agriculture Innovation Agenda, advances in technology for growing, harvesting, handling, and processing are generating significant savings for growers and consumers, while improving sustainability.

    University of Florida scientists developed a robot that counts and maps the fruit on citrus trees, and University of California-Davis researchers developed fruit-picking carts with instruments that map orchard fruits. These automated devices have helped farmers see if and where production issues arise, so they can make targeted, effective management decisions. Accurate yield estimates are also important for programming harvest machines and making marketing decisions.

    Automated disease detection and management technologies could mitigate crop losses. For example, Iowa State University scientists are guiding the manufacturing of technology that reduces pesticide drift. Washington State University scientists developed drones to deter birds that eat and damage fruit crops. And, handheld devices designed by University of Hawaii researchers give coffee growers an inexpensive way to spot leaf water stress and optimize irrigation.

    To overcome labor shortages and cut labor costs, Washington State University scientists designed a robotic twining machine for hops, and University of Georgia researchers are perfecting affordable automated technologies for efficient blueberry harvest. A new pruning method recommended by Pennsylvania State University Extension could cut pruning time by 42% and save $136 per acre. Automation can also make labor less dangerous. For example, a harvest-assist device designed at Penn State eliminated ladder falls and reduced the time apple pickers spent in awkward, dangerous postures from 65% to 43% of picking time.

    Automation won’t soon replace the keen eye of talented growers, but these technologies will reduce costs, improve quality, and ensure consumer satisfaction, while eliminating some on-farm health risks, increasing efficiency, and reducing environmental impacts.

    Learn more about this USDA-NIFA funded project: W2009: Integrated Systems Research and Development in Automation and Sensor for Sustainability of Specialty Crops(link is external) (2013-2018). Learn more about NIFA Impacts.

    This research supports the “value-added innovation” theme outlined in the USDA Science Blueprint and moves us closer to meeting the goals outlined in USDA’s Agriculture Innovation Agenda. Learn more about The Hatch Act of 1887 (NIFA’s Multistate Research Fund).

    Advances in technology, automation, and remote sensing is a cross-cutting, macro movement in science impacting agriculture outlined in the USDA Science Blueprint (PDF, 2.6 MB). The Science Blueprint guides USDA’s science priorities for the next 5 years, building from past success. Relative to other crops, many specialty crops are more dependent on agricultural labor for production, harvesting, and processing. This is part of a blog series that highlights research investments to advance automation and mechanization for specialty crops. — By Sara Delheimer, NIFA-funded Multistate Research Fund Impacts Program

  • Automation Helps Solve Specialty Crop Challenges

    With support from the National Institute of Food and Agriculture’s Multistate Research Fund, researchers at 17 land-grant universities are working together to develop automated systems that work well for labor-intensive specialty crops like fruits, vegetables, tree nuts, and nursery plants. A multi-state collaborative approach lifts the burden of research and development from a single specialty crop sector and spurs major advances.

    Automation is helping the specialty crop industry overcome labor shortages, fine-tune management decisions, conserve resources and meet growing demand. Consistent with the USDA Agriculture Innovation Agenda, advances in technology for growing, harvesting, handling, and processing are generating significant savings for growers and consumers, while improving sustainability.

    University of Florida scientists developed a robot that counts and maps the fruit on citrus trees, and University of California-Davis researchers developed fruit-picking carts with instruments that map orchard fruits. These automated devices have helped farmers see if and where production issues arise, so they can make targeted, effective management decisions. Accurate yield estimates are also important for programming harvest machines and making marketing decisions.

    Automated disease detection and management technologies could mitigate crop losses. For example, Iowa State University scientists are guiding the manufacturing of technology that reduces pesticide drift. Washington State University scientists developed drones to deter birds that eat and damage fruit crops. And, handheld devices designed by University of Hawaii researchers give coffee growers an inexpensive way to spot leaf water stress and optimize irrigation.

    To overcome labor shortages and cut labor costs, Washington State University scientists designed a robotic twining machine for hops, and University of Georgia researchers are perfecting affordable automated technologies for efficient blueberry harvest. A new pruning method recommended by Pennsylvania State University Extension could cut pruning time by 42% and save $136 per acre. Automation can also make labor less dangerous. For example, a harvest-assist device designed at Penn State eliminated ladder falls and reduced the time apple pickers spent in awkward, dangerous postures from 65% to 43% of picking time.

    Automation won’t soon replace the keen eye of talented growers, but these technologies will reduce costs, improve quality, and ensure consumer satisfaction, while eliminating some on-farm health risks, increasing efficiency, and reducing environmental impacts.

    Learn more about this USDA-NIFA funded project: W2009: Integrated Systems Research and Development in Automation and Sensor for Sustainability of Specialty Crops(link is external) (2013-2018). Learn more about NIFA Impacts.

    This research supports the “value-added innovation” theme outlined in the USDA Science Blueprint and moves us closer to meeting the goals outlined in USDA’s Agriculture Innovation Agenda. Learn more about The Hatch Act of 1887 (NIFA’s Multistate Research Fund).

    Advances in technology, automation, and remote sensing is a cross-cutting, macro movement in science impacting agriculture outlined in the USDA Science Blueprint (PDF, 2.6 MB). The Science Blueprint guides USDA’s science priorities for the next 5 years, building from past success. Relative to other crops, many specialty crops are more dependent on agricultural labor for production, harvesting, and processing. This is part of a blog series that highlights research investments to advance automation and mechanization for specialty crops. — By Sara Delheimer, NIFA-funded Multistate Research Fund Impacts Program

  • Fennimore Receives 2020 EurAgEng Outstanding Paper Award

    Steve Fennimore, UC Davis Cooperative Extension Weed Specialist

    Steve Fennimore, UC Davis Plant Sciences faculty member and UC Cooperative Extension weed specialist, and colleagues received the 2020 EurAgEng Outstanding Paper Award for the paper, “Crop Signalling: A Novel Crop Recognition Technique for Robotic Control,” which was published in Biosystems Engineering.

    The research represents a breakthrough in differentiating weeds from crops using machine vision systems. The technology could help California growers address challenges in managing weeds in in dozens of crops with limited herbicide options, and significant hand-weeding costs due to a growing labor shortage.

    “California growers would benefit from improved weeding technology,” said Fennimore. “This technology certainly has commercialization potential by improving the accuracy, speed and reliability of weed/crop differentiation by weeding machines.”

    Rekha Raja, a postdoctoral scholar in the UC Davis Department of Biological and Agricultural Engineering

    Field experiments were successfully conducted for real-time weed control in tomato and lettuce. The paper was a collaborative effort led by first author Rekha Raja, a postdoctoral scholar in the UC Davis Department of Biological and Agricultural Engineering, and included researchers from the UC Davis Departments of Plant Sciences and Plant Biology; UC Cooperative Extensions in Santa Cruz and Monterey Counties; and the Department of Biosystems Engineering at the University of Arizona.

    Awarded by the European Society of Agricultural Engineers, the EurAgEng Outstanding Paper Award is only awarded once every two years and is selected out of all the papers published in Biosystems Engineering. – By Kristin Burns, UCANR

  • Certis USA Donates Another $20,000 to Help Citrus Industry Fight Its Greatest Threat

    For the fourth consecutive year, Certis USA, the leader in biopesticides, has donated $20,000 to the Citrus Research and Development Foundation, Inc. (CRDF) to help fund the non-profit’s research aimed at finding a cure for Huanglongbing (HLB; citrus greening). The company’s successful “Certis for Citrus” program utilizes sales from their top citrus products to annually support CRDF’s mission.
     
    The donation came during the organization’s board meeting, held this year via teleconference on June 23, 2020. During the meeting, Certis USA product manager Jeremy Adamson expressed gratitude for the Florida citrus community and the work done by the CRDF to solve one of the biggest issues facing it.

    “The Florida citrus community trusts our Kocide® family of products for the effective control of bacterial and fungal diseases in their groves,” he said. “We are happy to show our gratitude for that support each year through the ‘Certis for Citrus’ donation to fund the amazing work being done by our friends at the CRDF.”

    Certis USA hails their Kocide® family of products as the most technologically advanced copper fungicide/bactericide products on the market, delivering maximum concentration of biologically-active copper ions while preserving the safety of the plant. Both Kocide® formulations (Kocide® 3000-O and Kocide® 2000-O) are NOP-Compliant and OMRI-Listed®.

    “Once again, Certis USA has demonstrated its commitment to the Florida citrus industry by providing financial support for the Citrus Research and Development Foundation, for which CRDF is grateful,” said COO Rick Dantzler. “It’s all-hands-on-deck as we work together to provide growers with products that help grow citrus in this HLB environment.”

    “As the industry leader in providing biopesticide solutions, we feel that it is imperative that we have the answers that growers need for the pests and diseases that threaten their crops and their operations,” said Mike Allan, Certis USA Vice-President, North America. “When we are unable to provide that solution directly through our broad portfolio of products, we are happy to provide the support needed for organizations like the CRDF to reach that solution and provide peace of mind for the community.”

    Growers who are interested in any of Certis USA’s portfolio of products should contact their local retailer or distributor, Certis USA sales representative or visit www.certisusa.com.

  • New Resources for Farmers with CA Irrigation Management Information System

    Many farmers are already familiar with California DWR’s CIMIS program, with weather stations that collect data for them all over the state. What they may not know is some newer features to the program that can help them better determine irrigation needs for their crops wherever they may be. Watch this brief interview with Steve Ewert as he explains.

  • New Resources for Farmers with CA Irrigation Management Information System

    Many farmers are already familiar with California DWR’s CIMIS program, with weather stations that collect data for them all over the state. What they may not know is some newer features to the program that can help them better determine irrigation needs for their crops wherever they may be. Watch this brief interview with Steve Ewert as he explains.