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1

DUPONT, G. "Van Copkin over Coppin naar Jacob." Naamkunde 33, no. 2 (2001): 111–217. http://dx.doi.org/10.2143/nk.33.2.583434.

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2

BEELE, W. "Nog eens van Copkin over Coppin naar Jacob." Naamkunde 35 (September 15, 2004): 213–23. http://dx.doi.org/10.2143/nk.35.0.2002107.

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3

Senouci, Abdelkader, and Bouharke Benaissa. "Some new integral inequalities via Steklov operator." Mathematica Montisnigri 49 (2020): 49–56. http://dx.doi.org/10.20948/mathmontis-2020-49-4.

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Hardy and Copson type inequalities have been studied by a large number of authors during the twentieth century and has motivated some important lines of study which are currently active. A large number of papers have been appeared involving Copson and Hardy inequalities (see [2-16] for more details). In this paper some Hardy-Steklov and Copson-Steklov type integral inequalities were established.
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4

Henderson, Nick. "Why Atlas Copco bought Edwards." World Pumps 2014, no. 5 (2014): 22–25. http://dx.doi.org/10.1016/s0262-1762(14)70108-7.

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5

Ross. "Copson Type Inequalities with Weighted Means." Real Analysis Exchange 18, no. 1 (1992): 63. http://dx.doi.org/10.2307/44133045.

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6

Xu, Yaofeng, Shuai Deng, Li Zhao, et al. "Application of the Thermodynamic Cycle to Assess the Energy Efficiency of Amine-Based Absorption of Carbon Capture." Energies 12, no. 13 (2019): 2504. http://dx.doi.org/10.3390/en12132504.

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The thermodynamic cycle, as a significant tool derived from equilibrium, could provide a reasonable and rapid energy profile of complicated energy systems. Such a function could strongly promote an in-depth and direct understanding of the energy conversion mechanism of cutting-edge industrial systems, e.g., carbon capture system (CCS) However, such applications of thermodynamics theory have not been widely accepted in the carbon capture sector, which may be one of the reasons why intensive energy consumption still obstructs large-scale commercialization of CCS. In this paper, a kind of thermod
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7

Saker, Samir H., Mahmoud M. Osman, Donal O’Regan, and Ravi P. Agarwal. "Inequalities of Hardy type and generalizations on time scales." Analysis 38, no. 1 (2018): 47–62. http://dx.doi.org/10.1515/anly-2017-0006.

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AbstractIn this paper, we prove some new dynamic inequalities on time scales which as special cases contain several generalizations of integral and discrete inequalities due to Hardy, Copson, Leindler, Bennett, Pachpatte and Pečarić and Hanjš.
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8

Leonard, Brian E. "Alec Coppen." Neuropsychopharmacology 44, no. 11 (2019): 1994. http://dx.doi.org/10.1038/s41386-019-0447-z.

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9

Křepela, Martin, and Luboš Pick. "Weighted inequalities for iterated Copson integral operators." Studia Mathematica 253, no. 2 (2020): 163–97. http://dx.doi.org/10.4064/sm181016-5-5.

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10

Norman, Richard. "Andrew Copson, Secularism: A Very Short Introduction." Theology 123, no. 6 (2020): 462–63. http://dx.doi.org/10.1177/0040571x20970883k.

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11

Carley, H., P. D. Johnson, and R. N. Mohapatra. "Unifying inequalities of Hardy, Copson, and others." Aequationes mathematicae 89, no. 3 (2013): 497–510. http://dx.doi.org/10.1007/s00010-013-0230-x.

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12

Saker, Samir, Mohammed Kenawy, Ghada AlNemer, and Mohammed Zakarya. "Some Fractional Dynamic Inequalities of Hardy’s Type via Conformable Calculus." Mathematics 8, no. 3 (2020): 434. http://dx.doi.org/10.3390/math8030434.

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In this article, we prove some new fractional dynamic inequalities on time scales via conformable calculus. By using chain rule and Hölder’s inequality on timescales we establish the main results. When α = 1 we obtain some well-known time-scale inequalities due to Hardy, Copson, Bennett and Leindler inequalities.
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13

Gogatishvili, Amiran, Rza Ch Mustafayev, and Tugce Ünver. "Pointwise multipliers between weighted copson and cesàro function spaces." Mathematica Slovaca 69, no. 6 (2019): 1303–28. http://dx.doi.org/10.1515/ms-2017-0310.

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Abstract In this paper the solution of the pointwise multiplier problem between weighted Copson function spaces Copp1,q1(u1, v1) and weighted Cesàro function spaces Cesp2,q2(u2, v2) is presented, where p1, p2, q1, q2 ∈ (0, ∞), p2 ≤ q2 and u1, u2, v1, v2 are weights on (0, ∞).
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14

Perrone, Carlo, William Schilling, James J. Callery, et al. "Good participatory practice for coronavirus disease 2019 (COVID-19) research: the case of a COVID-19 prevention study." Wellcome Open Research 6 (August 24, 2021): 216. http://dx.doi.org/10.12688/wellcomeopenres.16880.1.

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Background: The COPCOV study (chloroquine/ hydroxychloroquine prevention of coronavirus disease), which started recruitment in April 2020, is a multi-country double-blind, randomised, placebo-controlled trial which is being conducted in healthcare facilities involved in coronavirus disease 2019 (COVID-19) case management. COPCOV aims to recruit healthcare workers and other staff employed in facilities managing people with proven or suspected COVID-19. Methods: We conducted a series of engagement sessions, each involving a short presentation of the study, a section where attendees were asked to
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15

Taylor, Terrance J., K. B. Turner, Finn-Aage Esbensen, and L. Thomas Winfree. "Coppin' an attitude." Journal of Criminal Justice 29, no. 4 (2001): 295–305. http://dx.doi.org/10.1016/s0047-2352(01)00089-7.

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16

Bunney, William E. "Obituary: Alec Coppen." International Journal of Neuropsychopharmacology 22, no. 6 (2019): 371. http://dx.doi.org/10.1093/ijnp/pyz020.

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17

Atilgan, Yasemin Kayhan. "Robust Coplot Analysis." Communications in Statistics - Simulation and Computation 45, no. 5 (2016): 1763–75. http://dx.doi.org/10.1080/03610918.2013.875571.

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18

Gogatishvili, Amiran, Rza Mustafayev, and Tuğçe Ünver. "Embeddings between weighted Copson and Cesàro function spaces." Czechoslovak Mathematical Journal 67, no. 4 (2017): 1105–32. http://dx.doi.org/10.21136/cmj.2017.0424-16.

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19

Chen, Chang-Pao, and Kuo-Zhong Wang. "Lower bounds of Copson type for Hausdorff matrices." Linear Algebra and its Applications 420, no. 1 (2007): 208–17. http://dx.doi.org/10.1016/j.laa.2006.07.005.

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20

Chen, Chang-Pao, Meng-Kuang Kuo, and Kuo-Zhong Wang. "Lower bounds of Copson type for Nörlund matrices." Linear Algebra and its Applications 428, no. 8-9 (2008): 1939–48. http://dx.doi.org/10.1016/j.laa.2007.10.037.

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21

Saker, Samir H., Ramy R. Mahmoud, and A. Peterson. "Some Bennett-Copson type inequalities on time scales." Journal of Mathematical Inequalities, no. 2 (2016): 471–89. http://dx.doi.org/10.7153/jmi-10-37.

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22

Křepela, Martin. "Embeddings and associated spaces of Copson—Lorentz spaces." Journal d'Analyse Mathématique 140, no. 1 (2020): 227–66. http://dx.doi.org/10.1007/s11854-020-0087-6.

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23

Leśnik, Karol, and Lech Maligranda. "Interpolation of abstract Cesàro, Copson and Tandori spaces." Indagationes Mathematicae 27, no. 3 (2016): 764–85. http://dx.doi.org/10.1016/j.indag.2016.01.009.

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24

Schwabe, P., S. Greiner, R. Ganzert, et al. "Effect of a Novel Nonviral Gene Delivery of BMP-2 on Bone Healing." Scientific World Journal 2012 (2012): 1–9. http://dx.doi.org/10.1100/2012/560142.

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Background. Gene therapeutic drug delivery approaches have been introduced to improve the efficiency of growth factors at the site of interest. This study investigated the efficacy and safety of a new nonviral copolymer-protected gene vector (COPROG) for the stimulation of bone healing. Methods.In vitro, rat osteoblasts were transfected with COPROG + luciferase plasmid or COPROG + hBMP-2 plasmid.In vivo, rat tibial fractures were intramedullary stabilized with uncoated versus COPROG+hBMP-2-plasmid-coated titanium K-wires. The tibiae were prepared for biomechanical and histological analyses at
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25

He, Chun Ying, Wu Yi Qun, Zhi Min Chen, et al. "The Third-Order Nonlinear Optical Properties and the Optical Limiting Properties of Sulfonic Metallo-Phthalocyanines." Advanced Materials Research 233-235 (May 2011): 2468–71. http://dx.doi.org/10.4028/www.scientific.net/amr.233-235.2468.

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The optical limiting properties of CuPcTs, NiPcTs and CoPcTs were investigated with nanosecond pulses at the wavelength of 532nm. Among them, CuPcTs exhibits the strongest optical limiting effect. An explanation based on nonlinear absorption and refraction is provided. And also, the relationship between the d-electron configuration and the third-order nonlinear optical properties of CuPcTs, NiPcTs and CoPcTs were discussed.
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26

Zhan, Ling Ling, Hai Feng Chen, and Jian Qiang Ye. "Hydrothermal Synthesis of Phthalocyanine Sensitization TiO2 Nanowires." Advanced Materials Research 531 (June 2012): 387–90. http://dx.doi.org/10.4028/www.scientific.net/amr.531.387.

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Phthalocyanine sensitization nano-TiO2 have been successfully synthesized by controlling TiO2's nuclear growth and CoPcTs adsorption simultaneously via a hydrothermal way by using TiO2, NaOH and CoPcTs as raw materials. XRD, BET, TG-DTA and FI-IR were used to characterize the features of the as-synthesized phthalocyanine sensitization TiO2 nanowires. The results showed that anatase nano- TiO2 with phthalocyanine sensitization have been prepared after heat treatment and cyanine materials are easily decomposed when the temperature above 450 °C; the specific surface area TiO2 and phthalocyanine s
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27

Chanotiya, Chandan S., Anju Yadav, Anil K. Singh, and Chandra S. Mathela. "Composition of the Leaf and Inflorescence Essential Oil of Pogostemon benghalensis Burm. F. from Kumaon." Natural Product Communications 2, no. 9 (2007): 1934578X0700200. http://dx.doi.org/10.1177/1934578x0700200915.

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Two samples of Pogostemon benghalensis Burm. F. collected from different altitudes of the Kumaon region of Uttarakhand have been analyzed by GC and GC-MS. The inflorescence oil of sample I contained β-bisabolene (18%), ( E)-β-ocimene (3.7%), and 1-octen-3-ol (2.7%), but the leaf oil showed a high elemol content (20.5%), along with β-caryophyllene (12.5%), β-copaen-4α-ol (7.7%), α-humulene (4%), and linalool (2.1%). In contrast, the inflorescence oil of sample II possessed β-caryophyllene (15.2%), β-copaen-4α-ol (9.6%), and β-bisabolene (8%), while ( E)-β-ocimene (5.2%), elemol (4%), α-guaiene
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28

Chen, Chang-Pao, and Kuo-Zhong Wang. "Lower bounds of Copson type for Hausdorff matrices II." Linear Algebra and its Applications 422, no. 2-3 (2007): 563–73. http://dx.doi.org/10.1016/j.laa.2006.11.015.

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29

Kolyada, V. I. "On the Cèsaro and Copson Norms of Nonnegative Sequences." Ukrainian Mathematical Journal 71, no. 2 (2019): 248–58. http://dx.doi.org/10.1007/s11253-019-01642-7.

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30

KAYAR, Zeynep, and Billur KAYMAKÇALAN. "Hardy–Copson type inequalities for nabla time scale calculus." TURKISH JOURNAL OF MATHEMATICS 45, no. 2 (2021): 1040–64. http://dx.doi.org/10.3906/mat-2011-38.

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31

"Stephen Copson." Baptist Quarterly 37, no. 7 (1998): 364–65. http://dx.doi.org/10.1080/0005576x.1998.11752058.

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32

Saker, S. H., Maryam M. Abuelwafa, Ahmed M. Zidan, and Dumitru Baleanu. "On Cesàro and Copson sequence spaces with weights." Journal of Inequalities and Applications 2021, no. 1 (2021). http://dx.doi.org/10.1186/s13660-020-02526-2.

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AbstractIn this paper, we prove some properties of weighted Cesàro and Copson sequences spaces by establishing some factorization theorems. The results lead to two-sided norm discrete inequalities with best possible constants and also give conditions for the boundedness of the generalized discrete weighted Hardy and Copson operators.
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33

Saker, S. H., A. G. Sayed, Ghada AlNemer, and M. Zakarya. "Half-linear dynamic equations and investigating weighted Hardy and Copson inequalities." Advances in Difference Equations 2020, no. 1 (2020). http://dx.doi.org/10.1186/s13662-020-03006-z.

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Abstract In this paper, we employ some algebraic equations due to Hardy and Littlewood to establish some conditions on weights in dynamic inequalities of Hardy and Copson type. For illustrations, we derive some dynamic inequalities of Wirtinger, Copson and Hardy types and formulate the classical integral and discrete inequalities with sharp constants as particular cases. The results improve some results obtained in the literature.
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34

"Vernetzte Mobilhydraulik und -elektronik steigert den Fahr- und Bedienkomfort." Konstruktion 69, no. 03 (2017): 18–20. http://dx.doi.org/10.37544/0720-5953-2017-03-18.

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Mit dem „Dynapac Citypaver SD1800“ bringt Atlas Copco den Fahr- und Bedienkomfort der großen Straßenfertiger in die Kompaktklasse. Die Basis dafür legt eine hydrostatische Antriebslösung mit modernster Mobilelektronik und vordefinierten Software-Funktionen. Für die Visualisierung und Bedienung nutzt Atlas Copco ein frei konfigurierbares Display. Damit vereinfacht das neue Modell die Bedienung und automatisiert zahlreiche, bislang manuell ausgeführte Abläufe.
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35

Roopaei, Hadi. "A study on Copson operator and its associated sequence space II." Journal of Inequalities and Applications 2020, no. 1 (2020). http://dx.doi.org/10.1186/s13660-020-02507-5.

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AbstractIn this paper, we investigate some properties of the domains $c(C^{n})$ c ( C n ) , $c_{0}(C^{n})$ c 0 ( C n ) , and $\ell _{p}(C^{n})$ ℓ p ( C n ) $(0< p<1)$ ( 0 < p < 1 ) of the Copson matrix of order n, where c, $c_{0}$ c 0 , and $\ell _{p}$ ℓ p are the spaces of all convergent, convergent to zero, and p-summable real sequences, respectively. Moreover, we compute the Köthe duals of these spaces and the lower bound of well-known operators on these sequence spaces. The domain $\ell _{p}(C^{n})$ ℓ p ( C n ) of Copson matrix $C^{n}$ C n of order n in the sequence space $\ell
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36

"Atlas Copco AB, Sweden." Pump Industry Analyst 2018, no. 2 (2018): 8. http://dx.doi.org/10.1016/s1359-6128(18)30042-9.

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37

"Atlas Copco AB, Sweden." Pump Industry Analyst 2018, no. 10 (2018): 5. http://dx.doi.org/10.1016/s1359-6128(18)30265-9.

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38

"Atlas Copco AB, Sweden." Pump Industry Analyst 2019, no. 1 (2019): 5. http://dx.doi.org/10.1016/s1359-6128(19)30014-x.

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39

"Atlas Copco AB, Sweden." Pump Industry Analyst 2019, no. 6 (2019): 6. http://dx.doi.org/10.1016/s1359-6128(19)30155-7.

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40

"Atlas Copco AB, Sweden." Pump Industry Analyst 2019, no. 7 (2019): 5. http://dx.doi.org/10.1016/s1359-6128(19)30184-3.

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41

"Atlas Copco AB, Sweden." Pump Industry Analyst 2019, no. 10 (2019): 5. http://dx.doi.org/10.1016/s1359-6128(19)30269-1.

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42

"Atlas Copco AB, Sweden." Pump Industry Analyst 2020, no. 2 (2020): 5. http://dx.doi.org/10.1016/s1359-6128(20)30042-2.

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43

"Atlas Copco AB, Sweden." Pump Industry Analyst 2020, no. 4 (2020): 6. http://dx.doi.org/10.1016/s1359-6128(20)30107-5.

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44

"Atlas Copco AB, Sweden." Pump Industry Analyst 2020, no. 10 (2020): 5. http://dx.doi.org/10.1016/s1359-6128(20)30287-1.

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45

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2018, no. 2 (2018): 8. http://dx.doi.org/10.1016/s1365-6937(18)30040-6.

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46

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2018, no. 10 (2018): 4. http://dx.doi.org/10.1016/s1365-6937(18)30264-8.

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47

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2019, no. 1 (2019): 7. http://dx.doi.org/10.1016/s1365-6937(19)30009-7.

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48

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2019, no. 6 (2019): 5. http://dx.doi.org/10.1016/s1365-6937(19)30149-2.

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49

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2019, no. 7 (2019): 5. http://dx.doi.org/10.1016/s1365-6937(19)30178-9.

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50

"Atlas Copco AB, Sweden." Filtration Industry Analyst 2019, no. 10 (2019): 5. http://dx.doi.org/10.1016/s1365-6937(19)30270-9.

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