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1.
地热水中的硫化物(H_2S、HS~-和S~(2-))通常受到硫酸根、亚硫酸根、硫代硫酸根等硫元素的共存干扰,并且硫化物具有热、光、氧不稳定性,在水样保存、前处理、标准溶液配制等环节影响着测试的准确度和精密度。本文在现场采集的地热水水样中加入乙酸锌及氢氧化钠,使硫化物形成硫化锌沉淀而与溶液分离,将此沉淀溶于双氧水和逆王水,使低价态的S2-氧化成稳定的SO_4~(2-),选择易于纯化且性质稳定的硫酸钠配制硫标准储备液,以182.624 nm谱线作为硫元素分析谱线,应用电感耦合等离子体发射光谱法测定出地热水样中的硫化物含量。硫的浓度在0.1~100 mg/L范围内与其发射强度呈线性(相关系数为0.9994);方法检出限为0.009 mg/L,相对标准偏差(n=11)低于1.80%,实际水样中硫化物的加标回收率介于99.0%~103.0%。与前人相关测试方法相比,本方法的技术指标具有优势。  相似文献   

2.
地下水中六项指标(pH、总碱度、氯离子、钙离子、镁离子及硫酸根)的分析需要对每个指标单独进行取样检测,步骤繁琐且效率较低。同时总碱度、氯离子、钙离子、镁离子及硫酸根通常采用手动目视滴定,检测结果存在人为操作误差,精密度和准确度相对较差。本文建立了准确快速测定地下水中六项指标的分析方法,只需2次取样,采用自动电位滴定仪自动判定终点,加液器可精确控制标准溶液加入量至0. 1μL,并且通过调整检测顺序、溶液酸度和加入掩蔽剂的方法消除相互干扰。本方法的加标回收率为93. 5%~120. 0%,相对标准偏差(RSD,n=10)为0. 18%~11. 33%。电位滴定法得到的数据相比标准方法的平行性更好,尤其是当所测定水样较为浑浊或者有颜色时测定数据更稳定。  相似文献   

3.
基体分离-电位滴定法测定高硫金属矿中的微量氯   总被引:2,自引:1,他引:1  
使用碳酸钠-氧化锌混合碱焙烧样品,将硫化物矿中的低价硫转化为硫酸盐或高价硫,过滤分离基体,采用电位滴定法测定硫化物矿(铜精矿、锌精矿、硫铁矿)中的微量氯,消除由于硫化银沉淀的产生对氯化银测定结果的干扰。通过电位突越,确定滴定终点,消除色度和浊度对滴定终点的影响。采用电极电位-浓度二次微商滴定曲线,计算滴定终点。对混合碱的选择及加入量、焙烧温度、溶液酸度、测定温度、滴定介质以及基体和共存元素的干扰进行了试验。方法精密度(RSD,n=9)均小于9%,回收率为94.1%~105.6%。  相似文献   

4.
使用元素分析仪测定海洋沉积物中的硫化物   总被引:2,自引:2,他引:0  
建立了使用元素分析仪直接固体进样测定海洋沉积物中硫化物的方法——差减法。样品称取两份,一份直接测定总硫,另一份在500℃灼烧3 h除去硫化物后测定剩余的硫,两个结果的差值为硫化物中硫的含量。与常规测定方法相比,方法具有称样量少、操作简便、准确可靠等优点,检出限为0.018%,精密度(RSD,n=12)为2.50%~5.48%,回收率为97.7%~99.3%。  相似文献   

5.
掺锡氧化铟粉样品经氢氧化钠熔融,热水浸出盐酸酸化后,用电感耦合等离子体原子发射光谱仪直接测定试料溶液中待测元素特征谱线的强度,通过标准曲线法计算出试料中铁、铝、铅、镍、铜、镉、铬和铊量。方法检出限为0.0023~0.0075μg/mL,精密度(RSD值)为1.56%~11.15%,加标回收率在95.0%~112.1%之间。方法准确可靠,已被推荐为有色金属行业标准。  相似文献   

6.
付琳  王哲  王玉学  孙博 《铀矿地质》2017,(2):108-112
建立了碳酸盐预分离-紫外脉冲荧光法快速测定高硬度地下水中微量铀的方法。试验发现,预先向20.00mL高硬度水样中加入70mg·mL~(-1)的碳酸钠溶液1.20mL,将大部分共存的Ca~(2+)和Mg~(2+)以碳酸盐沉淀的形式与UO_2(CO_3)_2~(2-)有效分离后,应用紫外脉冲荧光法测量铀浓度,不但溶液保持澄清,pH值也可保持在7~9的约束范围之内。该预处理程序简单快速,测量结果准确可靠。方法的检出限为0.02μg·L~(-1),全程加标回收率在99%~101%之间,测量结果的相对标准偏差(RSD)小于5%。  相似文献   

7.
Needle trap-顶空进样-气相色谱法分析地下水中的苯系物   总被引:3,自引:2,他引:1  
利用Needle trap集现场采样、无溶剂提取和热解吸进样等多功能为一体的特点,针对密闭的20mL顶空样品瓶(10mL样品),通过优化提取温度、样品平衡时间、注射器推杆循环抽拉体积、加盐量及现场采样保存时间等条件,确定了Needletrap吸附提取地下水中7种苯系物的最佳条件,用顶空进样气相色谱法测定,方法加标回收率为84.27%~115.03%,检出限为0.06~0.09μg/L,精密度(RSD,n=7)<7%,符合EPA相关标准。建立的方法表明Needle trap适用于地下水中苯系物的提取分析。  相似文献   

8.
离子色谱法检测饮用水中的草甘膦   总被引:3,自引:0,他引:3  
建立了离子色谱法直接测定饮用水中草甘膦的分析方法。水样加入抗坏血酸除去余氯,微孔滤膜过滤后直接进样测定。用IonPac AS11-HC阴离子交换柱为分析柱,淋洗液为20 mmol/L KOH溶液,流速为1.00mL/min,进样量100μL进行检测。方法的线性范围0~1.5 mg/L,检出限为0.1 mg/L,加标回收率为95%~106%,相对标准偏差为5.08%~7.09%。方法操作简便快捷,灵敏度高,结果准确可靠。  相似文献   

9.
熊文明  张志军 《岩矿测试》2011,30(6):768-771
玻璃样品中加入氢氧化钠,在700℃马弗炉中加热熔融,热水浸提,所得溶液通过OnGuardⅡAg/H柱后上机测定,消除加入的氯和碱的干扰,再经IonPac AG14柱和AS14柱分离,采用小体积的定量环直接进样,离子色谱法测定氟离子和硫酸根的含量。氟离子和硫酸根的线性范围分别为0.1~2μg/mL和0.5~20μg/mL,方法检出限氟为2.0 mg/kg和硫为1.0 mg/kg,测定结果的相对标准偏差(RSD)小于5.0%。实际玻璃样品用离子色谱法和化学法测定,两种分析方法的结果无显著性差异。  相似文献   

10.
固相萃取-气相色谱法测定饮用水中的多氯联苯   总被引:2,自引:2,他引:0  
研究了饮用水中84种多氯联苯的气相色谱分析方法。讨论了洗脱曲线、水样的pH值、甲醇加入量、含盐量、萃取流速等实验条件,并与经典的液-液萃取方法进行了对比。确定了样品在pH值为3,以5 mL/min的流速经大体积样品采样器-C18固相萃取柱富集,7 mL丙酮和5 mL乙腈洗脱,氮吹蒸发浓缩后正己烷定容至1.0mL,加入内标后使用电子捕获检测器气相色谱仪测定,并在选定的色谱条件下以选择离子监测方式进行验证。84种多氯联苯的方法检出限为1.2~15.0 ng/L,加标回收率为74.8%~126.8%,相对标准偏差为1.1%~14.8%。由于采用了大体积样品采样器,可实现多个样品的同时萃取富集,方法快速、低污染,低成本,可用于批量水样品中多氯联苯的分析测定。  相似文献   

11.
杨胜科  崔文夏  赵钺  陈静  刘凯  李斌 《岩矿测试》2012,31(4):677-681
在碱性条件下过硫酸钠能氧化腐植酸发生化学发光反应。本研究以过硫酸钠-腐植酸化学发光体系为基础,建立了腐植酸的过硫酸钠氧化-流动注射化学发光测定方法,同时对测定方法的负高压及增益、泵速、过硫酸钠浓度、氢氧化钠浓度等影响因素进行了优化实验。方法的线性范围为0.1~500 mg/L(相关系数为0.9985),检出限为0.076 mg/L,对浓度为0.5 mg/L的腐植酸进行11次平行测定,相对标准偏差(RSD)为3.47%。利用该方法对5种不同地区地下水中的腐植酸进行测定,样品的加标回收率在98.33%~107.50%之间。该方法无需分离,简单易行,对实际样品测定结果满意。  相似文献   

12.
In this study, a facile precipitation process to treat wastewater from zinc plating industry is presented. Water purification rates of Zn range between 96.40 % and 99.99 % depending on the reaction conditions. Optimal results are gained at a low pH value of 9, low temperature of 40 °C and a fast alkalization using NaOH solution containing 16 % pure NaOH. Traces of Ni, Fe, Zn, Cu and Cr present in the wastewater were almost completely removed. The precipitates were analysed by X-ray diffraction, infrared and Raman spectroscopy, electron microscopy and magnetic measurements. They consist of doped ZnO as a main phase. Although ZnO exclusively crystallizes in nanoparticle size, the morphology is directly influenced by the experimental parameters. Additionally, very small amounts of ZnCO3 and Zn(OH)2 were detected. Magnetic investigations indicate the incorporation of Ni and Fe into the ZnO lattice. The measured saturation magnetization is ~0.01 emu/g and the Curie temperature is ~75 °C.  相似文献   

13.
传统的液液萃取技术主要采用与水不相溶的有机溶剂作萃取剂,这种异相萃取的传质速率一般较低,需反复振荡或多次萃取.本文建立了以乙腈-硫酸铵-水的双水相萃取体系高效液相色谱法测定地下水中苯并(a)芘和苯并(e)芘的方法,以密度比水小的乙腈为萃取剂,将其与水样混合(互溶)获得乙腈-水体系,然后加入硫酸铵,溶液澄清、分相后取上层有机相(乙腈)进样分析.考察了萃取剂的选择、双水相的形成条件、离子强度以及pH等对测定结果的影响.两种化合物线性范围为2.00~ 400.00 ng/mL,相关系数大于0.999.方法检出限为0.012~0.020 ng/mL,平均回收率为94.6%~97.3%,相对标准偏差为1.3% ~2.5%.与传统萃取方法相比,该方法具有操作流程简单、快速的特点,可实现对野外环境水样进行原地样品前处理.  相似文献   

14.
对于总氮和总磷的测定,国家标准HJ636—2012和GB11893—89规定总氮用碱性过硫酸钾消解,紫外分光光度法测定,总磷用中性过硫酸钾消解,分光光度法测定,两种方法分别取样、消解,分析效率低。本文对国家标准方法进行改进,建立了在一份样品中用过硫酸钾作为氧化剂一次消解,分光光度法联合测定树干茎流液中总氮、总磷含量的方法。样品中的含氮化合物在碱性过硫酸钾溶液中,在高温下氧化分解转化为硝酸盐氮(NO-3-N),其吸光度与总氮浓度成正比;含磷化合物在酸性过硫酸钾溶液中,在高温下氧化分解转化成正磷酸盐(PO3-4-P),其吸光度与正磷酸盐浓度成正比。经实际样品验证,方法精密度(RSD,n=5)为总氮2%,总磷4%,加标回收率为98.0%~104.2%(总氮)和94.0%~107.0%(总磷)。本方法将国家标准方法中配制两条标准系列、两次高压消解改进为配制一条标准系列、一次消解,可以节省50%的样品使用量,且提高了分析效率。由于有机质含量较高时,在本法条件下样品不易消解清亮,影响总氮、总磷的测定,该方法适用于有机质含量较低的树干茎流样品分析。  相似文献   

15.
华明 《岩矿测试》2013,32(2):235-239
在高氯酸-硫脲介质中用原子吸收光谱法同时测定地质及选冶样品中银和铜已有文献报道;但在王水-硫脲介质中存在铜对银的测定干扰.本文采用盐酸-氢氟酸-硝酸-高氯酸四酸溶矿,王水提取、硫脲络合,用火焰原子吸收光谱法对银精矿中铜、银进行连续测定.通过筛选不同的样品消解方法,试验了硫脲介质浓度的影响,对共存元素的干扰进行消除.结果表明:四酸溶矿效果最好;通过加入过量的硫脲并控制其浓度在20 g/L以内,使溶液中银的白色沉淀与硫脲生成可溶的Ag[SC(NH2)2]3+配离子,消除了铜对银测定的干扰.该方法用于样品分析,相对标准偏差RSD(n =6)铜为1.20%~2.11%,银为0.61% ~1.18%;加标回收率铜为96.5% ~ 107.0%,银为97.3% ~ 104.7%.测定值与碘量法、火试金法结果相符.本法具有简单、实用、成本低等优点,可满足银精矿选矿工艺生产的需要.  相似文献   

16.
多壁碳纳米管固相萃取快速检测水样中铅镉铜铁   总被引:1,自引:1,他引:0       下载免费PDF全文
传统的固相萃取填料应用于环境样品的重金属处理过程中,存在pH不稳定和不同极性萃取物共同萃取较为困难等方面的不足,因此寻找新型固相萃取填料显得尤为重要。本文采用多壁碳纳米管填充固相萃取柱,萃取水中金属元素铅、镉、铜和铁,采用石墨炉原子吸收光谱法测定铅和镉,电感耦合等离子体发射光谱法测定铜和铁。实验考察了多壁碳纳米管的性质、溶液pH值、洗脱溶液、样品流速以及基体效应对测定结果的影响。结果显示:溶液pH=9,1 mol/L硝酸为洗脱溶液,样品流速为2 mL/min时,外径8 nm未修饰的多壁碳纳米管有较好的萃取效率,对溶液中铅、镉、铜和铁的最大吸附容量分别为44.91、42.31、54.68和49.07 mg/g,四种元素的吸附容量均衡;钾、钠、钙、镁离子以及苯和甲苯等基质对四种金属元素的萃取影响不大。方法回收率为95.3%~99.5%,精密度(RSD,n=7)为1.2%~3.2%。本方法采用外径8 nm的多壁碳纳米管固相萃取,与传统萃取方法相比,富集效果好、回收率较高,而且操作简便、准确度高;与前人采用外径20~30 nm的多壁碳纳米管的性能相比,镉和铜的吸附容量更高,还可实现对铁的吸附,且铅、镉、铜和铁四种元素的吸附容量均衡,更适合用于检测水样中的金属元素。  相似文献   

17.
Lignite samples from two deposits located in the Megalopolis Basin, Southern Greece, were evaluated for their potential applicability as raw materials for the production of organomineral fertilizers. Fundamental chemical analyses were carried out to demonstrate high humic substances and metal contents. To determine their relative distribution in the Megalopolis lignite extract, eight elements, namely Na, K, Cd, Mn, Mg, Pb, Zn, and Cu, were studied both in H2O and in Na4P2O7/NaOH solutions. The behavior of these metals showed significant variations; Zn, Pb, Cd, and Cu associate mostly to the humic substances and proved scarce in the water extract. Contrarily, K and Mg gave a significantly low total yield in the Na4P2O7/NaOH solution, while Mn was classified among the least extracted elements. Further enrichment of Megalopolis humic substances in these metals was achieved; Pb and Mg proved the most and least retained metal, respectively. Decomplexation titration curves of humic matter saturated with these metal ions demonstrated that novel organomineral fertilizing materials may develop based on optimized metal ion and humate contents, which can retain metals in a soluble form within a wide pH range. Formation of complexes between humic substances and Zn, Cd, and Mg was clearly indicated.  相似文献   

18.
Remediation of 56 ML of acidic, contaminant-laden Baal Gammon mine pit water was undertaken using in situ hydrotalcite formation. The pit water composition was modified via the addition of MgCl2·6H2O to form a 2.5:1 M2+:M3+ metal ion ratio followed by the addition of NaOH to increase the pH 10 to induce spontaneous hydrotalcite precipitation. As a result of the in situ hydrotalcite precipitation a broad spectrum of elements of environmental concern including Al, Cd, Co, Cr, Cu, Fe, In, Mn, Mo, Ni, V and Zn were removed from solution. Significantly, an ore grade hydrotalcite precipitate containing Cu (8.0 ± 1.0%) and Zn (3.9 ± 0.5%) was produced directly from the mine pit water column allowing for potential recovery of valuable metals to offset remediation costs. The final water quality produced after in situ remediation was of a simple Na–Cl–SO4 type.  相似文献   

19.
《Geochimica et cosmochimica acta》1999,63(19-20):3159-3169
Using zinc sulfide as an example, we demonstrate a plausible stepwise process for the formation of minerals from low temperature aqueous solutions. The process occurs with the formation of soluble complexes that aggregate into soluble rings and clusters. The final moiety in solution has a structure similar to the moiety in the first formed solid, which is a restatement of the Ostwald step rule. Titrations of aqueous Zn(II) with bisulfide indicate that sulfide clusters form at concentrations of 20 μM (or less) of metal and bisulfide. Precipitation does not occur according to voltammetric measurements using a mercury electrode and UV-VIS (ultra-violet to visible) spectroscopic data. UV-VIS data and filtration experiments indicate that the material passes through 0.1 μm Nuclepore and 1000 dalton filters. The complexes form rapidly (kf > 108 Ms−1), are kinetically inert to dissociation and thermodynamically strong. Although a neutral complex of 1:1 (ZnS) empirical stoichiometry initially forms, an anionic complex with an empirical 2 Zn:3 S stoichiometry results with continued addition of sulfide. Gel electrophoresis confirms the existence of a cluster that is negatively charged with a molecular mass between 350 and 750 daltons. On the basis of known mineral and thiol complex structures for these systems, a tetrameric cluster unit of Zn4S6(H2O)44− is likely. Molecular mechanic calculations show that this cluster is structurally analogous to ZnS minerals (particularly sphalerite) and is a viable precursor to mineral formation and a product of mineral dissolution.The formation of Zn4S6(H2O)44− can occur from condensation of Zn3S3(H2O)6 rings, which are neutral molecular clusters. The Zn atoms on one Zn3S3(H2O)6 ring combine with the S atoms on another Zn3S3(H2O)6, to lead to higher order clusters with loss of water. The Zn4S64− species form by the cross-linking of two neutral Zn3S3 rings by added sulfide; thus a Zn–S–Zn bridge forms across the rings with subsequent rearrangement and condensation to Zn4S64−; this combination results in a sphalerite-like cluster. If the rings condense without additional sulfide, a wurtzite-like structure could form. All condensations result in sulfide displacement of water from Zn to form Zn–S bonds. Water loss is an example of an entropy-driven process, which leads to a more favorable thermodynamic process. These clusters would be resistant to oxidation by O2. Voltammetric experiments indicate neutral and anionic clusters for Zn and agree with ion chromatographic data from the sulfidic waters of the Black Sea.  相似文献   

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