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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Tillverkningsteknik

    Ultrasound in Food Processing

    Recent Advances

    AvMar Villamiel,José V. García-Pérez

    Inbunden, Engelska, 2017

    Del i serien IFST Advances in Food Science

    2 381 kr

    Beställningsvara. Skickas inom 11-20 vardagar. Fri frakt över 249 kr.

    Beskrivning

    Part I: Fundamentals of ultrasound This part will cover the main basic principles of ultrasound generation and propagation and those phenomena related to low and high intensity ultrasound applications. The mechanisms involved in food analysis and process monitoring and in food process intensification will be shown.Part II: Low intensity ultrasound applicationsLow intensity ultrasound applications have been used for non-destructive food analysis as well as for process monitoring. Ultrasonic techniques, based on velocity, attenuation or frequency spectrum analysis, may be considered as rapid, simple, portable and suitable for on-line measurements. Although industrial applications of low-intensity ultrasound, such as meat carcass evaluation, have been used in the food industry for decades, this section will cover the most novel applications, which could be considered as highly relevant for future application in the food industry. Chapters addressing this issue will be divided into three subsections: (1) food control, (2) process monitoring, (3) new trends.Part III: High intensity ultrasound applicationsHigh intensity ultrasound application constitutes a way to intensify many food processes. However, the efficient generation and application of ultrasound is essential to achieving a successful effect. This part of the book will begin with a chapter dealing with the importance of the design of efficient ultrasonic application systems. The medium is essential to achieve efficient transmission, and for that reason the particular challenges of applying ultrasound in different media will be addressed.The next part of this section constitutes an up-to-date vision of the use of high intensity ultrasound in food processes. The chapters will be divided into four sections, according to the medium in which the ultrasound vibration is transmitted from the transducers to the product being treated. Thus, solid, liquid, supercritical and gas media have been used for ultrasound propagation. Previous books addressing ultrasonic applications in food processing have been based on the process itself, so chapters have been divided in mass and heat transport, microbial inactivation, etc. This new book will propose a revolutionary overview of ultrasonic applications based on (in the authors’ opinion) the most relevant factor affecting the efficiency of ultrasound applications: the medium in which ultrasound is propagated. Depending on the medium, ultrasonic phenomena can be completely different, but it also affects the complexity of the ultrasonic generation, propagation and application.In addition, the effect of high intensity ultrasound on major components of food, such as proteins, carbohydrates and lipids will be also covered, since this type of information has not been deeply studied in previous books.Other aspects related to the challenges of food industry to incorporate ultrasound devices will be also considered. This point is also very important since, in the last few years, researchers have made huge efforts to integrate fully automated and efficient ultrasound systems to the food production lines but, in some cases, it was not satisfactory. In this sense, it is necessary to identify and review the main related problems to efficiently produce and transmit ultrasound, scale-up, reduce cost, save energy and guarantee the production of safe, healthy and high added value foods.

    Produktinformation

    • Utgivningsdatum:2017-05-05
    • Mått:173 x 246 x 28 mm
    • Vikt:1 089 g
    • Format:Inbunden
    • Språk:Engelska
    • Serie:IFST Advances in Food Science
    • Antal sidor:544
    • Förlag:John Wiley and Sons Ltd
    • ISBN:9781118964187

    Utforska kategorier

    • Tillverkningsteknik inom Naturvetenskap och teknik

    Mer om författaren

    About the Editors Mar Villamiel and Antonia Montilla, Department of Bioactivity and Food Analysis, Institute of Food Science Research (CSIC-UAM), Spain José V. García-Pérez, Juan A. Cárcel, and Jose Benedito Analysis and Simulation of Agrofood Processes Group (ASPA), Food Technology Department, Universitat Politècnica de València, Valencia, Spain

    Innehållsförteckning

    • About the IFST Advances in Food Science Book Series xviList of Contributors xviiPreface xxPart 1 Fundamentals of Ultrasound 11 Basic Principles of Ultrasound 3Juan A. Gallego‐Juárez1.1 Introduction 41.2 Generation and Detection of Ultrasonic Waves: Basic Transducer Types 51.3 Basic Principles of Ultrasonic Wave Propagation 121.4 Basic Principles of Ultrasound Applications 151.4.1 Low‐intensity Applications 151.4.2 High‐intensity Effects and Applications: Power Ultrasound 181.5 Conclusions 23Acknowledgments 24References 24Part 2 Low‐intensity Ultrasound Applications 27Section 2.1 Food and Process Control 292 Ultrasonic Particle Sizing in Emulsions 30M.J. Holmes and M.J.W. Povey2.1 Introduction 302.2 Definitions: Emulsions and Ultrasound 322.3 Theoretical Models of Ultrasound Propagation in Emulsions 352.4 Diffraction and Scattering 412.5 Multiple Scattering 442.6 Mode Conversions 462.7 Perturbation Solutions 492.8 Two‐particle Models 532.9 Practical Particle Sizing Techniques 552.10 Conclusion 60Acknowledgements 60References 603 Ultrasonic Applications in Bakery Products 65J. Salazar, J.A. Chávez, A. Turó, and M.J. Garcia‐Hernández3.1 Introduction 653.2 Ultrasonic Properties of Materials 673.2.1 Ultrasonic Velocity 683.2.2 Attenuation 693.2.3 Acoustic Impedance 693.3 Experimental Set‐up for Ultrasonic Measurements 703.3.1 Bread Dough 703.3.2 Cake Batter 713.4 Experimental Results and Discussion 713.4.1 Wheat Dough 723.4.2 Rice Dough 783.4.3 Cake Batter 813.5 Discussion and Conclusion 82References 824 Characterization of Pork Meat Products using Ultrasound 86J.V. Garcia‐Pérez, M. De Prados, and J. Benedito4.1 Introduction 864.2 Ultrasonic Measurements: Devices and Parameters 894.3 Assessment of Fat Properties 914.3.1 Influence of Temperature on Ultrasonic Velocity 914.3.2 Classification of Meat Products by means of their Fat Melting/ Crystallization Behavior 924.3.3 Monitoring of Fat Melting/Crystallization 974.4 Composition Assessment 1014.5 Textural Properties 1044.6 New Trends 108Acknowledgements 110References 1105 The Application of Ultrasonics for Oil Characterization 115P. Kiełczyński5.1 Introduction 1165.1.1 Classical Methods for the Investigation of Physicochemical Parameters of Oils and Liquid Foodstuffs 1175.1.2 Ultrasonic Methods 1175.1.3 High‐pressure Physicochemical Properties of Oils 1205.2 Physicochemical Parameters of Liquids (Oils) that can be Evaluated by means of Ultrasonic Methods 1215.2.1 Ultrasonic Wave Velocity and Density Measurement 1215.2.2 Measurement of Sound Velocity, Density, and Liquid Viscosity 1245.3 Ultrasonic Measurements 1255.3.1 Sound Velocity 1255.3.2 Viscosity 1285.3.3 Attenuation 1295.4 Measurements of Selected Physicochemical Parameters of Oils at Elevated Pressures and Various Values of Temperature 1305.4.1 Sound Velocity 1315.4.2 Density 1315.4.3 Numerical Approximation of Density and Sound Velocity 1315.4.4 Adiabatic Compressibility 1325.4.5 Isothermal Compressibility 1335.4.6 Isobaric Thermal Expansion Coefficient 1345.4.7 Specific Heat Capacity 1345.4.8 Surface Tension 1345.4.9 Investigation of High‐pressure Phase Transitions in Oils by Ultrasonic Methods 1355.5 Conclusions 138List of Symbols 139References 1416 Bioprocess Monitoring using Low‐intensity Ultrasound: Measuring Transformations in Liquid Compositions 146L. Elvira, P. Resa, P. Castro, S. Kant Shukla, C. Sierra, C. Aparicio, C. Durán, and F. Montero de Espinosa6.1 Introduction 1476.2 Physical Models for Bioprocess‐related Media 1496.2.1 Modelling the Medium 1496.2.2 Modelling the Bioprocess: Obtaining Information about the Medium Composition 1546.3 Ultrasonic Measurement Techniques for Bioprocess Monitoring and Instrumentation 1566.3.1 Measurement Based on Pulsed‐wave Techniques 1566.3.2 Measurement Based on Resonance Techniques 1586.3.3 Control of External Conditions: Temperature and Pressure 1616.4 Applications of Ultrasonic Technologies to Bioprocess Monitoring 1616.4.1 Enzymatic Processes 1616.4.2 Fermentative Processes 1656.4.3 Microbial Growth 168References 171Section 2.2 New Trends in Ultrasonic Non‐destructive Testing 1757 Air‐coupled Ultrasonic Transducers 176T.E. Gomez Alvarez‐Arenas7.1 Introduction 1777.1.1 Low‐frequency (<60 kHz), High‐power Transducers 1777.1.2 Low to Medium Frequency (<120 kHz), Relatively Low‐power Transducers 1777.1.3 High‐frequency (>100 kHz), Relatively Low‐power Transducers 1787.2 High‐frequency Transduction Technologies 1787.2.1 Capacitive Transducers 1797.2.2 Piezoelectric Transducers 1797.2.3 Ferroelectret Polymer Film Transducers 1827.3 Uses and Applications of High‐frequency (>100 kHz) Ultrasonic Air‐coupled Transducers 1837.4 Design Criteria for High‐frequency Air‐coupled Transducers 1877.4.1 Requirements Imposed by the Sample Insertion Loss 1877.4.2 Main Design Parameters 1917.5 Design of Wideband and High‐frequency (>100 kHz) Air‐coupled Piezoelectric Transducers 1967.5.1 Materials Selection 1967.5.2 The Ideal Piezoelectric Air‐coupled Transducer 2007.5.3 The Realistic Piezoelectric Air‐coupled Transducer 2017.5.4 Why can Piezoelectric Transducers not be Designed Following the Optimum Design? 2067.5.5 Realistic Alternatives for the Design of Air‐coupled Piezoelectric Transducers 2077.5.6 Optimization under Realistic Constraints: The ML Detuning Technique 2097.6 High‐frequency and Wideband Piezoelectric Transducers: Realizations in the Frequency Range 0.20–2.0 MHz 2137.7 Focusing Techniques 2167.7.1 Geometrically Focused Transducer Aperture 2177.7.2 Fresnel Zone Plates 2177.7.3 Off‐axis Parabolic Mirror 218References 2188 Acoustic Microscopy 229N.J. Watson, M.J.W. Povey, and N.G. Parker8.1 Introduction 2308.2 Acoustic Microscope Theory 2318.3 Acoustic Contrast 2328.4 Focusing 2338.5 Spatial Resolution 2358.6 Temperature Effects 2378.7 Generation of an Acoustic Image 2388.8 Components and Operation of an Acoustic Microscope 2388.8.1 Transducer 2388.8.2 Sample Unit 2428.8.3 Positioning System 2448.8.4 Pulser and Receiver 2448.8.5 Control Software 2448.8.6 Sample Preparation and Operating Considerations 2448.9 Combination of Acoustic Microscopy with other Techniques 2458.10 Uses of Acoustic Microscopes in the Food Industry 2458.11 Future Trends for Acoustic Microscopes in the Food Industry 2498.11.1 Reduced Scanning Time 2508.11.2 Easier Sample Preparation 2508.11.3 Non‐immersion Operation 2508.11.4 Non‐contact Scanning 2508.12 Additional Resources 250Acknowledgements 250References 251Part 3 High‐intensity Ultrasound Applications 255Section 3.1 Ultrasound Applications in Liquid Systems 2579 The Use of Ultrasound for the Inactivation of Microorganisms and Enzymes 258Cristina Arroyo and James G. Lyng9.1 Introduction 2599.2 Microbial Inactivation by Ultrasound 2599.2.1 A Hint of History 2599.2.2 Mode of Action and Structural Studies 2609.2.3 Kinetics of Inactivation 2649.2.4 Factors Affecting the Lethal Effect of Ultrasound 2649.2.5 Ultrasound in Combination with other Hurdles 2729.3 Enzyme Inactivation by Ultrasound 2729.3.1 Alkaline Phosphatase (EC Number 3.1.3.1) 2739.3.2 Lactoperoxidase (EC Number 1.11.1.7) 2749.3.3 Lipase (EC number 3.1.1.3) 2749.3.4 Lipoxygenase (EC Number 1.13.11.12) 2759.3.5 Pectin Methylesterase (EC Number 3.1.1.11) 2759.3.6 Peroxidases (EC Number 1.11.1.7) 2769.3.7 Polyphenol Oxidases (EC Number 1.14.18.1) 2779.3.8 Proteases 2779.4 Conclusions and Future Trends 278References 27810 Ultrasonic Preparation of Food Emulsions 287A. Shanmugam and M. Ashokkumar10.1 Introduction 28710.2 Formation of Emulsions 28810.3 Conventional Emulsification Techniques 29010.4 Ultrasonic Emulsification 29210.5 Factors Affecting Sono‐emulsification 29310.5.1 Sonication Frequency 29310.5.2 Sonication Power 29410.5.3 Solution Temperature 29510.5.4 Sonication Time 29510.6 Role of Food Additives during Emulsification 29510.6.1 Emulsifiers 29510.6.2 Stabilizers 29610.7 Case Studies on Ultrasonic Emulsification 29710.8 Advantages of US over Other Emulsification Techniques 30210.9 Conclusions 306References 30611 Osmotic Dehydration and Blanching: Ultrasonic Pre‐treatments 311Fabiano A.N. Fernandes and Sueli Rodrigues11.1 Introduction 31211.2 Fundamentals 31211.3 Tissue Structure 31511.4 Pre‐treatment Equipments 31511.5 Mass Balances 31511.5.1 Fick’s Law 31511.5.2 Mass Transfer Model 31711.5.3 Correlations 31811.5.4 Water Loss and Sugar Gain 31811.6 Osmotic Solutes 31911.6.1 Binary Solutions 31911.6.2 Ternary Solutions 32011.7 Operating Conditions 32011.7.1 Ultrasound Frequency 32011.7.2 Osmotic Solution Concentration 32111.7.3 Temperature 32111.7.4 Immersion Time 32111.8 Preservation 32111.9 Quality Aspects 32211.9.1 Vitamin C Content 32211.9.2 Phenolics and Carotenoid Content 32311.9.3 Sensory Evaluation 32311.9.4 Color 32311.9.5 Mechanical Behavior 324References 32512 Ultrasonically Assisted Extraction in Food Processing and the Challenges of Integrating Ultrasound into the Food Industry 329T.J. Mason and M. Vinatoru12.1 General Introduction 33012.2 Extraction Methods for Food Technology 33112.2.1 Conventional Methods 33112.2.2 Non‐conventional Methods 33112.2.3 Ultrasonically Assisted Extraction 33212.2.4 Conclusions 34112.3 The Challenges of Integrating Ultrasound in the Food Industry 34112.3.1 The Scale‐up of Liquid Processing 34312.4 Concluding Remarks 349References 350Section 3.2 Ultrasound Applications in Gas and Supercritical Fluids Systems 35413 Ultrasonic Levitation Technologies 355K. Nakamura13.1 Introduction 35513.2 Near‐field Acoustic Levitation of a Planer Object 35613.2.1 Overview of Near‐field Acoustic Levitation 35613.2.2 Model of Levitation 35713.2.3 Levitation of Large Plate 35913.3 Non‐contact Transport of a Glass Plate 36013.3.1 Combination with a Motorized Stage 36013.3.2 Horizontal Force 36013.3.3 Non‐contact Transport Utilizing Traveling Wave Vibrations 36113.3.4 Large‐scale Transporter 36313.4 Levitation of Droplets in Standing Wave Field in Air 36413.5 Non‐contact Manipulation of a Small Particle or Droplet in Air 36613.5.1 High‐speed Transport of Particle/Droplet 36613.5.2 Step‐by‐step Transport 36713.5.3 Contactless Mixing of Two Droplets 36813.6 Summary 369References 36914 Ultrasonically Assisted Drying 371J.A. Cárcel, J.V. Garcia‐Pérez, E. Riera, C. Rosselló, and A. Mulet14.1 Introduction 37214.2 Why Ultrasound can Intensify Drying Processes 37314.3 Application of Ultrasound in Gas Media 37314.4 Influence of Process Variables on the Ultrasonically Assisted Drying Rate 37514.4.1 Drying Temperature 37514.4.2 Air Velocity 37614.4.3 Applied Ultrasonic Power 37714.4.4 Product Structure 37814.5 Influence of Ultrasound Application on the Quality of Dried Products 38014.5.1 Microstructure 38014.5.2 Physical Properties of Dried Materials 38314.5.3 Chemical Composition 38414.6 Main Conclusions and Research Trends 388Acknowledgements 388References 38815 Microbial and Enzyme Inactivation by Ultrasound‐assisted Supercritical Fluids 392C. Ortuño and J. Benedito15.1 Introduction 39315.2 Microbial and Enzyme Inactivation by High‐power Ultrasound 39315.3 Microbial and Enzyme Inactivation by Supercritical Carbon Dioxide 39415.3.1 Microbial Inactivation Mechanisms by SC‐CO2 39415.3.2 Factors Affecting SC‐CO2 Microbial Inactivation 39615.3.3 Mechanisms and Factors in the SC‐CO2 Enzyme Inactivation 39915.4 Combination of HPU and SC‐CO2 for Microbial/Enzyme Inactivation 40015.4.1 Synergistic Effect of HPU in the SC‐CO2 Inactivation Process 40015.4.2 Effect of Temperature, Pressure, and Culture Media on SC‐CO2+HPU Treatments 40215.4.4 Effect of the Type of Microorganism/Enzyme 41115.5 Conclusions 41215.6 Recommendations 412Acknowledgements 413References 413Section 3.3 Effect of Ultrasound on Food Constituents 41716 Impact of High‐intensity Ultrasound on Protein Structure and Functionality during Food Processing 418M. Corzo‐Martínez, M. Villamiel, and F. Javier Moreno16.1 Introduction 41816.2 Effect of High‐intensity Ultrasound on Protein Structure and the Physicochemical Properties of Food Proteins 42016.3 Effect of High‐intensity Ultrasound on the Technological Properties of Food Proteins 42316.4 Effect of High‐intensity Ultrasound on Protein Glycation by the Maillard Reaction 42616.5 Effect of High‐intensity Ultrasound on the Biological Properties of Food Proteins 42816.6 Conclusions and Future Trends 430Acknowledgements 431References 43117 Ultrasound Effects on Processes and Reactions Involving Carbohydrates 437A.C. Soria, M. Villamiel, and A. Montilla17.1 Introduction 43817.2 Sonophysical Effects 43917.2.1 Depolymerization 43917.2.2 Effects of Ultrasound on Functional Properties of Carbohydrates 44117.2.3 Use of Ultrasound in Carbohydrate Chemistry 44317.2.4 Crystallization 44417.3 Sonochemical Effects on Carbohydrate Depolymerization 44617.4 Effects of Ultrasound on Biotechnological Processes 44817.4.1 Depolymerization 44917.4.2 Other Bioprocesses 45317.5 Conclusions and Future Trends 457Acknowledgements 458References 45818 Effect of Ultrasound on the Physicochemical Properties of Lipids 464S. Martini18.1 Introduction 46418.2 Background 46518.2.1 Definition of Ultrasound 46518.2.2 Mechanism of Action of HIU 46618.3 Modifying the Physical Properties of Lipids with HIU 46718.3.1 Effect on the Induction Times of Crystallization 46818.3.2 Effect on Microstructure 46818.3.3 Effect on Solid Fat Content 47218.3.4 Effect on Texture and Viscoelasticity 47418.3.5 Effect on Melting Profile 47518.3.6 Effect on Polymorphism 47618.3.7 Effect on Phase Separation 47718.3.8 Combination with Other Process Variables 47718.3.9 Effect on Oxidation 47818.3.10 Use of HIU in a Flow Cell 48018.4 Concluding Remarks and Future Research 480Acknowledgments 482References 48219 Effect of Ultrasound on Anthocyanins 485J.A. Moses, G. Rajauria, and B.K. Tiwari19.1 Introduction 48519.2 Anthocyanins: Chemistry and Sources 48919.3 Degradation of Anthocyanins 49019.4 Ultrasound‐assisted Extraction and Processing of Anthocyanins 49119.5 Effect of Sonication on Anthocyanins 49219.6 Mechanism of Anthocyanin Degradation 49419.7 Kinetics of Anthocyanin Degradation 49619.8 Conclusions 498References 499Epilogue 506Index 508