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020 _a3319573306
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020 _a9783319573304
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020 _z3319573292
020 _z9783319573298
040 _aYDX
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050 4 _aR895
_b2017 EB
100 1 _aPisano, Antonio,
_eautor
_934340
245 1 0 _aPhysics for anesthesiologists :
_bfrom daily life to the operating room
_cAntonio Pisano.
264 1 _aCham, Switzerland
_bSpringer International Publishing
_c2017
300 _a1 recurso en línea (171 páginas)
336 _aTexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _atext file
_bPDF
504 _aIncluye referencias bibliográficas e índice
505 0 _aPreface; Contents; Part I: Gases, Bubbles and Surroundings; 1: Perfect Coffee and Oxygen Cylinders: The Ideal Gas Law; 1.1 A Delicious Aroma... and a Nauseating Stench; 1.2 Ideal Gas Law; 1.2.1 Boyle's Law; 1.2.2 First Law of Gay-Lussac (or Charles's Law); 1.2.3 Second Law of Gay-Lussac (or, Simply, Gay-Lussac's Law); 1.2.4 Avogadro's Law; 1.2.5 Dalton's Law; 1.3 Calculating the Duration of an Oxygen Cylinder; 1.4 Decompression Illness and Hyperbaric Therapy; References; 2: Boats, Balloons, and Air Bubbles: Archimedes' Principle
505 8 _a2.1 Archimedes' Principle: Gravity Not Always Makes You Fall2.2 The Anesthesiologist and Archimedes' Principle; References; 3: Air Bubbles in the Blood Sample: Better or Worse Oxygenation? Dalton's Law and Fick's Law; 3.1 Dalton's Law: When You Do the Math, It All Adds Up!; 3.2 Down the Slope: Fick's Law; 3.3 Air Bubbles and Blood Gas Analysis; References; 4: Cold, Sparkling Drinks, and Blood Gas Analysis: Henry's Law; 4.1 The Physics in a Soda Bottle: Henry's Law; 4.2 Acid-Base Management During Cardiopulmonary Bypass; 4.3 Pathophysiology and Treatment of Decompression Sickness
505 8 _a5.3.4 Air EmbolismReferences; Part II: Fluids in Motion: Masks, Tubes, and Hemodynamics; 6: The Venturi Mask Works (In Part) Like an Airplane: Continuity Equation and Bernoulli's Theorem; 6.1 Garden Hoses and Heart Valve Stenosis: Continuity Equation; 6.2 How Does an Airplane Fly? Bernoulli's Theorem; 6.2.1 And Now...Let This Plane Fly!; 6.3 Continuity and Bernoulli's Equations Work Together in a Venturi Mask; References; 7: From Tubes and Catheters to the Basis of Hemodynamics: The Hagen-Poiseuille Equation; 7.1 Real Fluids Flow in a Different Way: Viscosity and Hagen-Poiseuille Equation
505 8 _a7.1.1 Viscosity7.1.2 Hagen-Poiseuille Equation; 7.2 Tubes and Catheters: Some Implications of Hagen-Poiseuille Equation; 7.3 Hagen-Poiseuille Equation and Hemodynamics; References; Part III: Hemodynamic Monitoring; 8: Toothpaste, Sea Deeps, and Invasive Pressure Monitoring: Stevin's Law and Pascal's Principle; 8.1 Fluids at Rest: Stevin's Law and Pascal's Principle; 8.1.1 Under the Sea: Stevin's Law; 8.1.2 Push, Squeeze, and Lift: Pascal's Principle; 8.2 Invasive Pressure Monitoring; 8.2.1 Leveling: How Important Is the Difference?
520 3 _aThis book discusses, explains and provides detailed, up-to-date information on physics applied to clinical practice in anesthesiology, with the aid of simple examples from daily life. Almost everything that happens around us, including in the operating room and intensive care units, can be explained by physical laws. An awareness and understanding of relatively simple laws such as Bernoulli's theorem, Hagen-Poiseuille equation and Pascal's principle, to name just a few, offer anesthesiologists and intensivists fascinating insights into why they do what they do. Each of the 16 chapters starts with an everyday phenomenon, explains it with a physical law, and then shows why that law is important in anesthesia practice. Numerous illustrations are included for extra clarity. It is intended for anesthesiologists, intensivists, anesthesia teachers, anesthesia trainees, and medical students.
650 7 _aFísica médica
_2embne
_0(OCoLC)fst01014499
_0
_9143365
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-57330-4
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
988 _aSpringer_Medicine_2017
998 _b02/2018
_dz
_e-
_zSI
999 _c96428
_d96428
_x1