Preparation and Mechanism of HEDP-Intercalated Hydrotalcite Retarder
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摘要: 为解决现有缓凝剂在大温差条件下顶部强度发展缓慢的问题,通过离子交换法将羟基乙叉二磷酸(HEDP)插入水滑石层间,制备了羟基乙叉二磷酸插层水滑石Mg/Al-HEDP-LDH,并将其作为大温差缓凝剂,在水泥浆体系中进行了性能测试。研究结果表明,Mg/Al-HEDP-LDH的最佳制备工艺为pH值为4.5,晶化温度为150 ℃,晶化时间为6 h。Mg/Al-HEDP-LDH层间的HEDP会在水泥颗粒的水化过程中被释放出来起到缓凝的作用,加量在0.3%~0.7%的范围内均能呈现稳定的缓凝效果,且随着Mg/Al-HEDP-LDH加量的增加,稠化时间整体出现增加的现象。 Mg/Al-HEDP-LDH能提高水泥的早期强度,掺量为0.3%、0.5%、0.7%时,水泥石1、3、7、14 d的强度均高于纯水泥,尤其是其1~3 d强度提升明显,3 d强度达到最大值,相对于纯水泥提高了92.9%~103.6%。新型插层水滑石材料Mg/Al-HEDP-LDH在水泥浆体系中具有缓凝效果,能够促进水泥石的早期强度发展。Abstract: To address the problem of slow strength development of the top cement with retarders at large temperature differences, a 1-hydroxyethylidene-1,1-diphosphonic acid (HEDP) intercalated hydrotalcite Mg/Al-HEDP-LDH retarder was developed for use in large temperature difference environment. The retarder was prepared by intercalating HEDP in between the layers of hydrotalcite. Performance evaluation of the retarder in cement slurries shows that the optimal conditions for preparing Mg/Al-HEDP-LDH are as follows: pH = 4.5, crystallization temperature = 150 ℃, and crystallization time = 6 hours. The HEDP molecules between the layers of Mg/Al-HEDP-LDH is released during the hydration process of the cement particles to act as a retarder. At a concentration between 0.3% and 0.7%, Mg/Al-HEDP-LDH performs in a stable manner; with an increase of the concentration of Mg/Al-HEDP-LDH, the thickening time of the cement slurry increases. Mg/Al-HEDP-LDH increases the early strength of a cement slurry; at concentrations of 0.3%, 0.5% and 0.7%, the 1-day, 3-day, 7-day and 14-day strengths of the set cement are all higher than that of the blank cement slurry, especially the 1-day and the 3-day strengths, which increase significantly. The maximum 3-day strength is 92.9% – 103.6% higher than that of the blank cement slurry. The novel intercalated hydrotalcite Mg/Al-HEDP-LDH has retarding capacity in cement slurries, and can promote the development of the early strength of set cement.In summary, the novel intercalated hydrotalcite material Mg/Al-HEDP-LDH exhibits a retarding effect in cement slurry and can promote the development of the early strength of set cement.
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表 1 G级油井水泥主要化学成分及质量分数
化学
成分质量
分数/%化学
成分质量
分数/%化学
成分质量
分数/%Na2O 0.23 CaO 61.79 Fe2O3 4.15 Al2O3 3.37 SiO2 20.38 损失 2.61 MgO 1.95 K2O 0.45 其他 5.07 表 2 水泥浆配方
配方 G级
水泥/%水/
%HEDP/
%Mg/Al-
HEDP-LDH/
%G33S/
%SXY-2/
%消泡剂/
%C00 100 44 0 0 1 0.5 0.2 P03 100 44 0.3 0 1 0.5 0.2 P05 100 44 0.5 0 1 0.5 0.2 P07 100 44 0.7 0 1 0.5 0.2 P10 100 44 1.0 0 1 0.5 0.2 H03 100 44 0 0.3 1 0.5 0.2 H05 100 44 0 0.5 1 0.5 0.2 H07 100 44 0 0.7 1 0.5 0.2 表 3 不同晶化条件下Mg/Al-HEDP-LDH 和Mg/Al-CO3-LDH的晶格参数
Mg/Al-HEDP-LDH d(003)/
nmd(006)/
nmd(009)/
nm2θ(003)/
(°)pH T/℃ t/h 3.5 130 8 0.77 0.39 0.26 11.39 140 7 0.78 0.39 0.26 11.29 150 6 0.78 0.39 0.26 12.86 4.0 130 8 0.89 0.44 0.25 9.80 140 7 0.92 0.46 0.27 9.81 150 6 0.90 0.45 0.26 9.75 4.5 130 8 1.24 0.62 0.41 7.08 140 7 1.20 0.60 0.40 7.34 150 6 1.18 0.59 0.39 7.43 Mg/Al-CO3-LDH 0.76 0.38 0.26 11.56 表 4 Mg/Al-HEDP-LDH对油井水泥流动度及密度的影响
试样 ρ/(g·cm−3) 流动度/cm C00 1.91 24.5 H03 1.90 24.0 H05 1.90 24.0 H07 1.91 24.5 表 5 Mg/Al-HEDP-LDH对水泥浆流变性的影响
Mg/Al-HEDP-LDH/
%φ3/φ6/φ100/φ200/φ300/φ600 n K/
(Pa·sn)0 16/20/55/87/106/194 0.596 1.316 0.5 16/22/60/92/115/204 0.573 1.649 0.7 18/24/64/95/120/209 0.554 1.937 表 6 Mg/Al-CO3-LDH以及Mg/Al-TA-LDH对水泥浆稠化时间的影响
配方 Mg/Al-CO3-LDH/% Mg/Al-HEDP-LDH/% T/
℃p/
MPa稠化
时间/minC00 0 0 90 45 140 H03 0 0.3 90 45 381 H05 0 0.5 90 45 251 H07 0 0.7 90 45 >600 表 7 不同配方水泥石抗压强度
配方 养护
温度/℃不同养护时间(d)的抗压强度/MPa 1 3 7 14 C00 90 17.76 20.04 25.98 27.50 P03 90 0 16.40 18.29 22.46 P05 90 0 16.86 16.83 19.70 P07 90 0 17.47 22.20 28.34 P10 90 0 9.42 12.33 15.20 H03 90 28.92 40.81 39.42 32.36 H05 90 32.84 38.66 34.82 35.16 H07 90 34.66 36.04 34.26 31.68 表 8 Mg/Al-HEDP-LDH对不同顶底温差条件养护不同时间水泥石抗压强度的影响
预制
温度/℃p/MPa(60 ℃) p/MPa(90 ℃) 24 h 48 h 72 h 24 h 48 h 72 h 120 10.86 14.35 16.48 13.54 17.04 17.42 140 7.95 11.66 16.35 12.12 15.26 17.20 160 7.90 10.60 15.86 10.16 14.28 17.08 180 6.24 10.36 15.48 8.24 12.38 16.98 表 9 90 ℃不同配方水泥石养护3 d的EDS能谱元素分析
元素 区域A 区域B 原子分数/% 质量分数/% 原子分数/% 质量分数/% C 8.47 15.94 9.03 15.78 O 40.98 22.10 30.29 15.16 Al 5.60 5.09 6.72 5.67 Si 9.50 8.99 11.39 10.01 Ca 47.88 35.45 43.57 53.38 元素 区域C 区域D 原子分数/% 质量分数/% 原子分数/% 质量分数/% C 1.54 3.48 2.02 0.85 O 57.85 37.32 62.16 42.01 Al 1.90 2.06 1.36 1.55 Si 11.15 12.63 11.62 13.78 Ca 27.55 44.52 24.00 40.64 -
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