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Hcl formation in the stomach
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HCL
P5 HCL Chap 13 词语
alcl3 hcl h2so4 a;
Sc.8.p.8.5 Students will be able to: • Recognize that there are a finite number of elements and that their atoms combine in a multitude of ways to produce compounds that make up all the living and nonliving things that we encounter. • Distinguish among mixtures (including solutions) and pure substances. • Recognize that elements are grouped in the periodic table according to similarities of their properties • Recognize that atoms are the smallest unit of an element and they are composed of sub-atomic particles (electrons surrounding a nucleus containing protons and neutrons) • Explain why theories may be modified but are rarely discarded Advanced Benchmarks: • Write chemical formulas for simple covalent (HCl, SO2, CO2, and CH4) and ionic (Na+ + Cl- + NaCl) and molecular (O2, H2O ) compounds. Predict the formulas of ionic compounds based on the number of valence electrons and the charges on the ions (912.P.8.7) • Use the periodic table and electron configuration to determine an element’s number of valence electrons and its chemical and physical properties. Explain how chemical properties depend almost entirely on the configuration of the outer electron shell (912.P.8.5) • Explain that electrons, protons, and neutrons are parts of the atoms and the nuclei of atoms are composed of protons and neutrons, which experience forces of attraction and repulsion consistent with their charges and masses (912.P.8.4)
Câu 1: Chất khử là A. chất nhường electron. B. chất nhận electron. C. chất nhường proton. D. chất nhận proton. Câu 2: Phản ứng oxi hóa - khử là A. phản ứng hóa học trong đó có sự chuyển proton. B. phản ứng hóa học trong đó có sự thay đổi số oxi hóa. C. phản ứng hóa học trong đó phải có sự biến đổi hợp chất thành đơn chất. D. phản ứng hóa học trong đó sự chuyển electron từ đơn chất sang hợp chất. Câu 3: Sự oxi hóa một chất là quá trình A. nhận electron của chất đó. B. làm giảm số oxi hóa của chất đó. C. nhường electron của chất đó. D. làm thay đổi số oxi hóa của chất đó. Câu 4: Phát biểu nào dưới đây không đúng? A. Sự khử là sự mất hay cho electron. B. Sự oxi hoá là sự mất electron. C. Chất khử là chất nhường electron. D. Chất oxi hoá là chất nhận electron. Câu 5: Trong các phản ứng sau, phản ứng nào là phản ứng oxi hóa - khử? A. CaCO3 CaO + CO2. B. 2KClO3 2KCl + 3O2. C. 2NaHCO3 Na2CO3 + H2O + SO2. D. 2Fe(OH)3 Fe2O3 + 3H2O. Câu 6: Cho phương trình phản ứng: Fe + CuSO4 Cu + FeSO4. Vai trò của Fe trong phản ứng là A. chất oxi hóa. B. chất bị khử. C. chất khử. D. vừa là chất khử, là chất oxi hóa. Câu 7: Cho phương trình phản ứng: Cl2 + 2H2O 2HCl + 2HClO. Vai trò của Cl2 trong phản ứng là A. chất oxi hóa. B. chất bị khử. C. chất khử. D. vừa là chất khử, là chất oxi hóa. Câu 8: Cho phương trình phản ứng: AgNO3 + HCl AgCl + HNO3. Vai trò của AgNO3 trong phản ứng là A. chất oxi hóa. B. chất bị khử. C. không là chất khử, không là chất oxi hóa. D. vừa là chất khử, là chất oxi hóa. Câu 9: Trong các phản ứng sau, phản ứng nào không phải là phản ứng oxi hóa khử? A. Fe + 2HCl FeCl2 + H2. B. Zn + CuSO4 ZnSO4 + Cu. C. CH4 + Cl2 CH3Cl + HCl. D. BaCl2 + H2SO4 BaSO4 + 2HCl. Câu 10: Trong các phản ứng sau phản ứng nào là phản ứng oxi hóa - khử? A. NaOH + HCl NaCl + H2O. B. 2Fe(OH)3 + 3H2SO4 Fe2(SO4)3 + 6H2O. C. CaCO3 + 2HCl CaCl2 + H2O + CO2. D. 2CH3COOH + Mg (CH3COO)2Mg + H2. Câu 11: Số oxi hóa của S trong SO2 bằng A. +4 B. -4 C. +2 D. -2 Câu 12: Số oxi hóa của C trong CH4 bằng A. +4 B. -4 C. +1 D. -1 Câu 13: Sơ đồ: Cu → Cu+2 + 2e biểu thị quá trình A. oxi hóa. B. nhận electron. C. phân hủy. D. khử Câu 14: Sơ đồ: N+5 + 3e → N+2 biểu thị quá trình A. oxi hóa B. khử C. nhận proton D. hóa hợp Câu 15: Sục khí SO2 vào dung dịch KMnO4 (thuốc tím), màu tím nhạt dần rồi mất màu (biết sản phẩm tạo thành là K2SO4, MnSO4, H2SO4 và H2O). Nguyên nhân là do A. SO2 đã oxi hóa KMnO4 thành MnO2. B. SO2 đã khử KMnO4 thành Mn+2. C. KMnO4 đã khử SO2 thành S+6. D. H2O đã oxi hóa KMnO4 thành Mn+2. Câu 17: Hỗn hợp tecmit dùng hàn gắn đường ray có thành phần chính là aluminium (Al) và iron (III) oxide (Fe2O3). Phản ứng xảy ra khi đung nóng hỗn hợp tecmit như sau: Fe2O3 + 2Al 2Fe + Al2O3. Phát biểu nào dưới đây là đúng? A. Al là chất bị oxi hoá. B. Fe2O3 là chất nhường electron. C. Fe2O3 là chất bị oxi hóa. D. Al2O3 là chất nhận electron. Câu 18: Phản ứng thu nhiệt là phản ứng A. giải phóng năng lượng dưới dạng nhiệt. B. hấp thu năng lượng dưới dạng nhiệt. C. cung cấp năng lượng dưới dạng nhiệt. D. hấp thu năng lượng dưới dạng hóa năng. Câu 19: Phản ứng nhiệt nhôm là phản ứng giữa bột nhôm và iron (III) oxide sinh ra một lượng nhiệt rất lớn và được ứng dụng dùng để hàn đường ray. Phản ứng nhiệt nhôm là phản ứng A. thu nhiệt. B. chưa xác định được. C. tỏa nhiệt. D. vừa thu nhiệt, vừa tỏa nhiệt. Câu 20: Phản ứng nào trong các phản ứng dưới đây là phản ứng thu nhiệt? A. Vôi sống tác dụng với nước: CaO + H2O → Ca(OH)2. B. Đốt cháy than: C + O2 CO2. C. Đốt cháy cồn: C2H5OH + 3O2 2CO2 + 3H2O. D. Nung đá vôi: CaCO3 CO2 + CaO. Câu 21: Điều kiện nào sau đây không phải là điều kiện chuẩn? A. Áp suất 1 bar và nhiệt độ 25 0C. B. Áp suất 1 bar và nhiệt độ 298 K. C. Áp suất 1 bar và nhiệt độ 25 0C hay 298 K. D. Áp suất 1 bar và nhiệt độ 25K. Câu 22: Điều kiện nào sau đây là điều kiện chuẩn? A. Áp suất 1 bar và nhiệt độ 25 K. B. Áp suất 1 bar và nhiệt độ 298 0C. C. Áp suất 1 bar và nhiệt độ 298 K. D. Áp suất 1 bar và nhiệt độ 25K. Câu 23: Nồng độ đối với chất tan trong dung dịch ở điều kiện chuẩn là? A. 0,01 mol/L. B. 0,1 mol/L. C. 1 mol/L. D. 0,5 mol/L. Câu 24: 1 mol chất khí ở điều kiện chuẩn chiếm thể tích bằng bao nhiêu? A. 24,79 lít. B. 2,479 lít. C. 22,4 lít. D. 2,24 lít. Câu 25: Kí hiệu nhiệt tạo thành chuẩn của một chất là A. . B. . C. H298.. D. . Câu 26: Số oxi hóa của một nguyên tử trong phân tử là A. điện tích quy ước của nguyên tử trong phân tử khi coi tất cả các electron liên kết đều chuyển hoàn toàn về nguyên tử của nguyên tố có độ âm điện lớn hơn. B. hóa trị của nguyên tử nguyên tố đó. C. điện tích thực của nguyên tử nguyên tố đó. D. độ âm điện của nguyên tử nguyên tố đó. Câu 27: Fe2O3 là thành phần chính của quặng hematite đỏ, dùng để luyện gang. Số oxi hoá của iron (Fe) trong Fe2O3 là A. +3. B. 3+. C. 3-. D. -3. Câu 28: Trong phản ứng oxi hóa – khử, chất nhận electron được gọi là A. chất khử. B. chất oxi hoá. C. acid. D. base. Câu 29: Các phản ứng quan trọng gắn liền với cuộc sống như sự cháy của than, củi; sự cháy của xăng, dầu trong các động cơ đốt trong,…thường thuộc loại phản ứng nào? A. Phản ứng thế. B. Phản ứng cộng. C. Phản ứng phân hủy. D. Phản ứng oxi hóa - khử. Câu 30: Enthalpy phản ứng chuẩn có kí hiệu là A. . B. . C. . D. .
Covalent Molecules and Compounds Just as an atom is the simplest unit that has the fundamental chemical properties of an element, a molecule is the simplest unit that has the fundamental chemical properties of a covalent compound. Some pure elements exist as covalent molecules. Hydrogen, nitrogen, oxygen, and the halogens occur naturally as the diatomic (“two atoms”) molecules H2, N2, O2, F2, Cl2, Br2, and I2 (part (a) in Figure 3.1.1). Similarly, a few pure elements exist as polyatomic (“many atoms”) molecules, such as elemental phosphorus and sulfur, which occur as P4 and S8 (part (b) in Figure 3.1.1). Each covalent compound is represented by a molecular formula, which gives the atomic symbol for each component element, in a prescribed order, accompanied by a subscript indicating the number of atoms of that element in the molecule. The subscript is written only if the number of atoms is greater than 1. For example, water, with two hydrogen atoms and one oxygen atom per molecule, is written as H2O. Similarly, carbon dioxide, which contains one carbon atom and two oxygen atoms in each molecule, is written as CO2. Covalent compounds that predominantly contain carbon and hydrogen are called organic compounds. The convention for representing the formulas of organic compounds is to write carbon first, followed by hydrogen and then any other elements in alphabetical order (e.g., CH4O is methyl alcohol, a fuel). Compounds that consist primarily of elements other than carbon and hydrogen are called inorganic compounds; they include both covalent and ionic compounds. In inorganic compounds, the component elements are listed beginning with the one farthest to the left in the periodic table, as in CO2 or SF6. Those in the same group are listed beginning with the lower element and working up, as in ClF. By convention, however, when an inorganic compound contains both hydrogen and an element from groups 13–15, hydrogen is usually listed last in the formula. Examples are ammonia (NH3) and silane (SiH4). Compounds such as water, whose compositions were established long before this convention was adopted, are always written with hydrogen first: Water is always written as H2O, not OH2. The conventions for inorganic acids, such as hydrochloric acid (HCl) and sulfuric acid (H2SO4), are described elswhere. Note! For organic compounds: write C first, then H, and then the other elements in alphabetical order. For molecular inorganic compounds: start with the element at far left in the periodic table; list elements in same group beginning with the lower element and working up. Write the molecular formula of each compound. a. The phosphorus-sulfur compound that is responsible for the ignition of so-called strike anywhere matches has 4 phosphorus atoms and 3 sulfur atoms per molecule. b. Ethyl alcohol, the alcohol of alcoholic beverages, has 1 oxygen atom, 2 carbon atoms, and 6 hydrogen atoms per molecule. c. Freon-11, once widely used in automobile air conditioners and implicated in damage to the ozone layer, has 1 carbon atom, 3 chlorine atoms, and 1 fluorine atom per molecule. Solution: a. • A The molecule has 4 phosphorus atoms and 3 sulfur atoms. Because the compound does not contain mostly carbon and hydrogen, it is inorganic. • B Phosphorus is in group 15, and sulfur is in group 16. Because phosphorus is to the left of sulfur, it is written first. • C Writing the number of each kind of atom as a right-hand subscript gives P4S3 as the molecular formula. b. • A Ethyl alcohol contains predominantly carbon and hydrogen, so it is an organic compound. • B The formula for an organic compound is written with the number of carbon atoms first, the number of hydrogen atoms next, and the other atoms in alphabetical order: CHO. • C Adding subscripts gives the molecular formula C2H6O. c. • A Freon-11 contains carbon, chlorine, and fluorine. It can be viewed as either an inorganic compound or an organic compound (in which fluorine has replaced hydrogen). The formula for Freon-11 can therefore be written using either of the two conventions. • B According to the convention for inorganic compounds, carbon is written first because it is farther left in the periodic table. Fluorine and chlorine are in the same group, so they are listed beginning with the lower element and working up: CClF. Adding subscripts gives the molecular formula CCl3F. • C We obtain the same formula for Freon-11 using the convention for organic compounds. The number of carbon atoms is written first, followed by the number of hydrogen atoms (zero) and then the other elements in alphabetical order, also giving CCl3F. Write the molecular formula for each compound. a. Nitrous oxide, also called “laughing gas,” has 2 nitrogen atoms and 1 oxygen atom per molecule. Nitrous oxide is used as a mild anesthetic for minor surgery and as the propellant in cans of whipped cream. b. Sucrose, also known as cane sugar, has 12 carbon atoms, 11 oxygen atoms, and 22 hydrogen atoms. c. Sulfur hexafluoride, a gas used to pressurize “unpressurized” tennis balls and as a coolant in nuclear reactors, has 6 fluorine atoms and 1 sulfur atom per molecule. Answer: a. N2O b. C12H22O11 c. SF6. Ionic Compounds The substances described in the preceding discussion are composed of molecules that are electrically neutral; that is, the number of positively-charged protons in the nucleus is equal to the number of negatively-charged electrons. In contrast, ions are atoms or assemblies of atoms that have a net electrical charge. Ions that contain fewer electrons than protons have a net positive charge and are called cations. Conversely, ions that contain more electrons than protons have a net negative charge and are called anions. Ionic compounds contain both cations and anions in a ratio that results in no net electrical charge. Note! Ionic compounds contain both cations and anions in a ratio that results in zero electrical charge.An ionic compound that contains only two elements, one present as a cation and one as an anion, is called a binary ionic compound. One example is MgCl2, a coagulant used in the preparation of tofu from soybeans. For binary ionic compounds, the subscripts in the empirical formula can also be obtained by crossing charges: use the absolute value of the charge on one ion as the subscript for the other ion. This method is shown schematically as follows: Crossing charges. One method for obtaining subscripts in the empirical formula is by crossing charges. When crossing charges, it is sometimes necessary to reduce the subscripts to their simplest ratio to write the empirical formula. Consider, for example, the compound formed by Mg2+ and O2−. Using the absolute values of the charges on the ions as subscripts gives the formula Mg2O2:Polyatomic Ions Polyatomic ions are groups of atoms that bear net electrical charges, although the atoms in a polyatomic ion are held together by the same covalent bonds that hold atoms together in molecules. Just as there are many more kinds of molecules than simple elements, there are many more kinds of polyatomic ions than monatomic ions. Two examples of polyatomic cations are the ammonium (NH4+) and the methylammonium (CH3NH3+) ions. P. The method used to predict the empirical formulas for ionic compounds that contain monatomic ions can also be used for compounds that contain polyatomic ions. The overall charge on the cations must balance the overall charge on the anions in the formula unit. Thus, K+ and NO3− ions combine in a 1:1 ratio to form KNO3 (potassium nitrate or saltpeter), a major ingredient in black gunpowder. Similarly, Ca2+ and SO42− form CaSO4 (calcium sulfate), which combines with varying amounts of water to form gypsum and plaster of Paris. The polyatomic ions NH4+ and NO3− form NH4NO3 (ammonium nitrate), a widely used fertilizer and, in the wrong hands, an explosive. One example of a compound in which the ions have charges of different magnitudes is calcium phosphate, which is composed of Ca2+ and PO43− ions; it is a major component of bones. The compound is electrically neutral because the ions combine in a ratio of three Ca2+ ions [3(+2) = +6] for every two ions [2(−3) = −6], giving an empirical formula of Ca3(PO4)2; the parentheses around PO4 in the empirical formula indicate that it is a polyatomic ion. Writing the formula for calcium phosphate as Ca3P2O8 gives the correct number of each atom in the formula unit, but it obscures the fact that the compound contains readily identifiable PO43− ions.Summary • There are two fundamentally different kinds of chemical bonds (covalent and ionic) that cause substances to have very different properties. • The composition of a compound is represented by an empirical or molecular formula, each consisting of at least one formula unit.Contributors The atoms in chemical compounds are held together by attractive electrostatic interactions known as chemical bonds. Ionic compounds contain positively and negatively charged ions in a ratio that results in an overall charge of zero. The ions are held together in a regular spatial arrangement by electrostatic forces. Most covalent compounds consist of molecules, groups of atoms in which one or more pairs of electrons are shared by at least two atoms to form a covalent bond. The atoms in molecules are held together by the electrostatic attraction between the positively charged nuclei of the bonded atoms and the negatively charged electrons shared by the nuclei. The molecular formula of a covalent compound gives the types and numbers of atoms present. Compounds that contain predominantly carbon and hydrogen are called organic compounds, whereas compounds that consist primarily of elements other than carbon and hydrogen are inorganic compounds. Diatomic molecules contain two atoms, and polyatomic molecules contain more than two. A structural formula indicates the composition and approximate structure and shape of a molecule. Single bonds, double bonds, and triple bonds are covalent bonds in which one, two, and three pairs of electrons, respectively, are shared between two bonded atoms. Atoms or groups of atoms that possess a net electrical charge are called ions; they can have either a positive charge (cations) or a negative charge (anions). Ions can consist of one atom (monatomic ions) or several (polyatomic ions). The charges on monatomic ions of most main group elements can be predicted from the location of the element in the periodic table. Ionic compounds usually form hard crystalline solids with high melting points. Covalent molecular compounds, in contrast, consist of discrete molecules held together by weak intermolecular forces and can be gases, liquids, or solids at room temperature and pressure. An empirical formula gives the relative numbers of atoms of the elements in a compound, reduced to the lowest whole numbers. The formula unit is the absolute grouping represented by the empirical formula of a compound, either ionic or covalent. Empirical formulas are particularly useful for describing the composition of ionic compounds, which do not contain readily identifiable molecules. Some ionic compounds occur as hydrates, which contain specific ratios of loosely bound water molecules called waters of hydration.
A solution is a mixture in which one or more substances are uniformly distributed in another substance. Solutions can be mixtures of liquids, solids, or gases. For example, plasma, the liquid part of blood, is a very complex solution. It is composed of many types of ions and large molecules, as well as gases, that are dissolved in water. A solute (SAHL-YOOT) is a substance dissolved in the solvent. The particles that compose a solute may be ions, atoms, or molecules. The solvent is the substance in which the solute is dissolved. For example, when sugar, a solute, and water, a solvent, are mixed, a solution of sugar water results. Though the sugar dissolves in the water, neither the sugar molecules nor the water molecules are altered chemically. If the water is boiled away, the sugar molecules remain and are unchanged. Solutions can be composed of various proportions of a given solute in a given solvent. Thus, solutions can vary in concentra- tion. The concentration of a solution is the amount of solute dis- solved in a fixed amount of the solution. For example, a 2 percent saltwater solution contains 2 g of salt dissolved in enough water to make 100 mL of solution. The more solute dissolved, the greater is the concentration of the solution. A saturated solution is one in which no more solute can dissolve. Aqueous (AY-kwee-uhs) solutions—solutions in which water is the solvent—are universally important to living things. Marine microorganisms spend their lives immersed in the sea, an aqueous solution. Most nutrients that plants need are in aqueous solutions in moist soil. Body cells exist in an aqueous solution of intercellu- lar fluid and are themselves filled with fluid; in fact, most chemical reactions that occur in the body occur in aqueous solutions. Copyright © by Holt, Rinehart and Winston. All rights reserved. Liquid water Solid water Ice (solid water) is less dense than liquid water because of the structure of ice crystals. The water molecules in ice are bonded to each other in a way that creates large amounts of open space between the molecules, relative to liquid water. FIGURE 2-12 solvent from the Latin solvere, meaning “to loosen” Word Roots and Origins CHEMISTRY OF LIFE 43 ACIDS AND BASES One of the most important aspects of a living system is the degree of its acidity or alkalinity. What do we mean when we use the terms acid and base? Ionization of Water As water molecules move about, they bump into one another. Some of these collisions are strong enough to result in a chemical change: one water molecule loses a proton (a hydrogen nucleus), and the other gains this proton. This reaction really occurs in two steps. First, one molecule of water pulls apart another water molecule, or dissociates, into two ions of opposite charge: H2O ∏ H OH The OH ion is known as the hydroxide ion. The free H ion can react with another water molecule, as shown in the equation below. H H2O ∏ H3O The H3O ion is known as the hydronium ion. Acidity or alkalin- ity is a measure of the relative amounts of hydronium ions and hydroxide ions dissolved in a solution. If the number of hydronium ions in a solution equals the number of hydroxide ions, the solution is said to be neutral. Pure water contains equal numbers of hydro- nium ions and hydroxide ions and is therefore a neutral solution. Acids If the number of hydronium ions in a solution is greater than the number of hydroxide ions, the solution is an acid. For example, when hydrogen chloride gas, HCl, is dissolved in water, its mol- ecules dissociate to form hydrogen ions, H, and chloride ions, Cl, as is shown in the equation below. HCl ∏ H Cl These free hydrogen ions combine with water molecules to form hydronium ions, H3O. This aqueous solution contains many more hydronium ions than it does hydroxide ions, making it an acidic solution. Acids tend to have a sour taste; how- ever, never taste a substance to test it for acidity. In concentrated forms, they are highly corrosive to some materials, as you can see in Figure 2-13. Bases If sodium hydroxide, NaOH, a solid, is dissolved in water, it dissociates to form sodium ions, Na, and hydroxide ions, OH, as shown in the equation below. NaOH ∏ Na OH Copyright © by Holt, Rinehart and Winston. All rights reserved. Eco Connection onnection Acid Precipitation Acid precipitation, more commonly called acid rain, describes rain, snow, sleet, or fog that contains high levels of sulfuric and nitric acids. These acids form when sulfur dioxide gas, SO2, and nitrogen oxide gas, NO, react with water in the atmosphere to produce sulfuric acid, H2SO4, and nitric acid, HNO3. Acid precipitation makes soil and bodies of water, such as lakes, more acidic than normal. These high acid levels can harm plant and animal life directly. A high level of acid in a lake may kill mollusks, fish, and amphibians. Even in a lake that does not have a very elevated level of acid, acid precipitation may leach aluminum and magnesium from soils, poisoning water- dwelling species. Reducing fossil-fuel consump- tion, such as occurs in gasoline engines and coal-burning power plants, should reduce high acid levels in precipitation. Sulfur dioxide, SO2, which is produced when fossil fuels are burned, reacts with water in the atmosphere to produce acid precipitation. Acid precipitation, or acid rain, can make lakes and rivers too acidic to support life and can even corrode stone, such as the face of this statue. FIGURE 2-13 44 CHAPTER 2 This solution then contains more hydroxide ions than hydronium ions and is therefore defined as a base. The adjective alkaline refers to bases. Bases have a bitter taste; however, never taste a substance to test for alkalinity. They tend to feel slippery because the OH ions react with the oil on our skin to form a soap. In fact, commercial soap is the product of a reaction between a base and a fat. pH Scientists have developed a scale for comparing the relative con- centrations of hydronium ions and hydroxide ions in a solution. This scale is called the pH scale, and it ranges from 0 to 14, as shown in Figure 2-14. A solution with a pH of 0 is very acidic, a solution with a pH of 7 is neutral, and a solution with a pH of 14 is very basic. A solution’s pH is measured on a logarithmic scale. That is, the change of one pH unit reflects a 10-fold change in the acidity or alkalinity. For example, urine has 10 times the H3O ions at a pH of 6 than water does at a pH of 7. Vinegar, has 1,000 times more H3O ions at a pH of 3 than urine at a pH of 6, and 10,000 times more H3O ions than water at a pH of 7. The pH of a solution can be measured with litmus paper or with some other chemical indicator that changes color at various pH levels. Buffers The control of pH is important for living systems. Enzymes can function only within a very narrow pH range. The control of pH in organisms is often accomplished with buffers. Buffers are chemi- cal substances that neutralize small amounts of either an acid or a base added to a solution. As Figure 2-14 shows, the composition of your internal environment—in terms of acidity and alkalinity— varies greatly. Some of your body fluids, such as stomach acid and urine, are acidic. Others, such as intestinal fluid and blood, are
Classifier Review Classifers CL: F, CL: Y, CL:G CL: 4, CL:1, CL: 3, CL: H CL: R CL: MODIFIED C CL: CLAW 5