www.geologia-croatica.hr ABSTRACT The sedimentary record is an inexhaustible repository of information on global climates. The study of documents of past climate change may help us to understand not only the causes and presumable effects of the current change, but also to reveal the often complex and subtle mechanisms regulating the system. Ferrallitic soils and soil-derived sediments (=bauxites) are generally considered as best climate-indicators on dry-land. Their frequency distribution through geologic time shows pronounced positive anomalies coincident with greenhouse pe- riods of Earths’ history. It is proposed that intense ferrallitic weathering instead of being sim- ply the passive product of the greenhouse could be also one of the negative feedbacks of the system counteracting warming by contributing to the pump-down of greenhouse gases from the atmosphere. In this way it helped to decelerate both the carbon-cycle and the hydrologi- cal-cycle. The mass-transfer of oxygen from the atmosphere to the lithosphere is tentatively considered as an additional negative feedback acting to slow down oxidative weathering on land. It is suggested that the study of bauxites and correlative anoxic sediments in the oceans should be used to reveal details of the above complex regulation mechanism. Keywords: ferrallitic weathering, bauxites, climate change, hydrological cycle, terrestrial carbon pump Article history: Received September 26, 2015 Revised and accepted December 11, 2015 Avaliable online February 29, 2016 79-87 8 Figs. 1 Tab. doi:10.4154/gc.2016.07 1. INTRODUCTION More than 25 years ago, an IGCP Project - No. 287 „Tethyan Bauxites” - was initiated and enthusiastically joined by all the karst-bauxite geologists of the Mediterranean and beyond. Along with Prof. Goran Durn (then a student), his supervisor Prof. L. Palinkaš and the late Prof. Šinkovec, Prof. Jurković was among the participants sharing his experience and ideas about the geology and the bauxite deposits of the Dinarids. The main goal of that project was to summarize all published and unpublished data on Mediterranean karst bauxites in or- der to improve our understanding of the controls of bauxite genesis. At that point, tectonics was in the focus of interest, climate was taken for granted, inasmuch as humid tropical to subtropical conditions were considered as causae sine qua non of bauxite formation, providing the necessary geochemi- cal environment of intense weathering. The localization of the deposits within the favourable climatic zone was assigned to geotectonic, geomorphologic and hydrologic factors and to the lithology of the karstic host rocks. That greenhouse condi- tions were of crucial importance in bringing about the anoma- lous abundance of bauxites in Cretaceous times was acknow- ledged by the community of IGCP-287 and tentatively ex- posed at EUG in Strasbourg 1991, then reiterated by D’ArGENIo & MINDSzENTy in their review on bauxites and palaeokarst in 1995. Major arguments for a causal rela- tionship existing between the frequency distribution of baux- ites and globally warm, humid climatic periods of the Earth history had perviously been put forward in 1982 by Bár- DoSSy, BárDoSSy & ALEvA (1990), D’ArGENIo & MINDSzENTy (1992) and FöLLMI et al. (1993). Though there are also some doubts regarding the simplistic climatic interpretation of palaeoclays (eg. SINGEr 1980;1984), or ThIry (2000), there is a general agreement about the anoma- lous abundance of bauxites in the stratigraphic record being the signs of long-lasting warm-humid conditions in suba- erially exposed areas. The aim of the present paper is to show that instead of being passive products of the greenhouse, bauxites might have acted (though in a rather subtle way), as one of the feedbacks during the development and fading of the Cretaceous greenhouse. 2. BAUXITES - RELIABLE CLIMATE INDICATORS The sedimentary record is an inexhaustible repository of in- formation on global climates (eg. ErhArT (1955, 1966, 1967), FrAKES (1979), PArrISh (1998) and many others). All the elementary processes of sedimentary rock formations, i.e. weathering, transportation, deposition even the early sta- ges of diagenesis are, at least to some extent, climate-con- trolled. Mineralogy, chemistry, texture, structure of sedi men- tary rocks and their characteristic fossil assemblages being the direct or indirect results of climate-dependent elementary processes, may faithfully record past climatic parametres like temperature, humidity, evaporation, hydrogeochemistry etc. however, since climate is by far not the only factor determi- ning the final appearance of a sedimentary rock, and since all postdepositional processes (including burial diagenesis) tend to conceal or at least to modify the original climate signal potentially preserved in sedimentary particles, there are but a few really reliable climate indicators. A literature review of past climate changes may help to understand not only the causes and presumable effects of the current change, but they may also help to reveal the often complex and subtle mechanisms regulating the system. To pursue this goal it is useful first to review available data on modern climate-specific sediments such as evaporites, aeolian deposits, coral reefs and bauxites. Bauxites: Feedbacks of System Earth at Greenhouse times Andrea Mindszenty Eötvös L. University, Department of Physical and Applied Geology; 1117 Budapest, Pázmány P. sétány 1/c, hungary (andrea.mindszenty@gmail.com) 80 vol. 69/1 Fig 1. shows the global distribution of modern climate indicators based on PArrISh et al. (1982), PArrISh (1998), BárDoSSy & ALEvA (1990) and SCoTESE (2001). Concise and also more sophisticated reviews are available in papers by PrICE et al. (1997a,b,) SELLwooD & PrICE (1994), ALLEN et al. (1994). They all confirm that in one way or another, all sediments are indeed climate-sensitive. There are two of them that seem to be properly restricted to one particular climatic zone, as bauxites and coral reefs occur exclusively in the tropics. In other words, in modern times, the best tropical climate indicators are coral reefs in the oceans and ferrallitic soils (oxisols i.e. eqivalents of bauxites in the stratigraphic record) on dryland, and at least as far as ferrallitic soils are concerned, this must have been the situation throughout the Phanerozoic. The role of bauxites as unequivocal climate indicators has been confirmed by PrICE et al. (1997) and more recently by rETALLACK (2010). It has to be noted, though, that most bauxites, occurring on tropical landmasses, having been exposed since Mesozoic to Early Tertiary times, are not necessarily the products of the current climatic scenario (e.g, ThIry (2000) and others). 3. BAUXITES AND GREENHOUSE PERIODS It was first pointed out by BárDoSSy (1982), then by Bár- DoSSy & ALEvA (1990), D’ArGENIo & MINDSzENTy (1992) and more recently by rETALLACK (2010) that the fre- quency distribution of bauxites through geological time shows pronounced positive anomalies coincident with the „green- house” periods of Earth history (Fig. 2). This trend is particu- larly well demonstrated by karst bauxites, the age of which is better constrained by the enclosing carbonates than that of those occurring in a lateritic association. when, as an example focussing on Cretaceous karst bauxites and apparently contemporaneous global events, it is easy to see that even though the age-resolution of the studied phenomena is very different, bauxite-peaks are, indeed, coincident with globally high temperatures, concommittant eustatic sea-level highs, positive anomalies of world-wide igneous activity and Figure 1. Global distribution of climate-dependent sediments (data from BárDoSSy & ALEvA, 1990, PArrISh 1998, SCoTESE, 2001). Legend: B=bauxites, S=evaporites, E=aeolian sands, asterisks=coral reefs Figure 2. relative abundance of bauxites in the stratigraphic record (af- ter BárDoSSy & ALEvA 1990). (grey shading= warm wet periods) 81 Mindszenty Andrea: Bauxites: Feedbacks of System Earth at Greenhouse times abundant oceanic anoxia (Fig. 3). The correlation of bauxite- type weathering with peak global temperatures and sea-level may arise simply from the fact that all are direct consequences of the Cretaceous greenhouse. The correlation with the peak of igneous activity is certainly indirect, either because of the enhancement of atmospheric Co2 and therefore a contribution to the greenhouse (LArSoN (1991), LArSoN & ErBA (1999), KUroDA et al. (2007), which is also favourable for bauxites, or because of the release of large amounts of volcanic dust, providing the necessary source material for bauxites (MarIć, (1966); D’ArGENIo (1970); BárDoSSy et al. (1977); D’ArGENIo & MINDSzENTy, (1991, 1992). It was this latter coincidence which at the time of IGCP-287 directed our attention to the relationship of bauxites and geodynamics, extensively discussed by BárDoSSy (1973), BárDoSSy & DErCoUrT (1990), CoMBES & BárDoSSy (1994), D’ArGENIo & MINDSzENTy (1991, 1995), MINDSzENTy et al. (1996). Peak abundance of Cretaceous bauxites in fact coincides with subduction and subsequent orogenic deformation all along the Alp-himalayan orogenic belt. The obvious reason for the coincidence with orogenic deformation is the requirement of exposed land for continental weathering. At times of globally high sea-level as in Cretaceous times, the only way to provide for subaerial weathering (sufficiently long-lasting for bauxites to form) is the tectonically controlled uplift of large previously submarine areas. In fact, Cretaceous karst bauxites occur on tectonically affected shallow-water carbonate platform sectors all over the Tethyan realm and beyond (Figs. 3 and 4). The correlation of bauxites with oceanic anoxia deserves special attention, because it connects two obviously climatically controlled, but seemingly unrelated, if not antagonistic phenomena: products of strongly oxidizing chemical weathering on land (which efficiently destroys/removes organic matter in/ from the soil, (e.g PATEL-SorrENTINo et al. (2007) and oxygen-deficient, organic-rich sediments in the sea. anoxic sediments form in places where the sediment surface intersects the oxygen-minimum zone of the oceanic water-mass. At greenhouse-times, when organic productivity is particularly high in the surface water-layer this may also happen in shallow shelf regions or else in partially closed compartments of the deep sea, where ventilation is insufficient to replace dissolved oxygen consumed by organic decay (Fig. 5) (e.g. SChLANGEr & JENKyNS (1976); wEISSErT & McKENzIE (1979); JENKyNS (1980); and many others). Figure 3. Cretaceous bauxites, geotectonics and paleoenvironmental factors (basic data from Scotese’s PALEoMAP Project (2002), LArSoN, 1990 and D’ArGENIo & MINDSzENTy (1994)) (white asterisks: position of the cartoons showing the geodynamic settings where bauxites occur). 82 vol. 69/1 4. BAUXITES AND OCEANIC ANOXIC EVENTS – THE TERRESTRIAL AND THE OCEANIC CARBON PUMP however unrelated those highly oxidized ferrallitic soils and anoxic sediments may seem to be, they may not only coincide in time but occur in close juxtaposition, as well. This is particularly well demonstrated by the Dinaric- Adriatic-Apenninic domain in Cretaceous times (see Fig. 6), where bauxites on the exposed sectors of the Campania- Lucania, Abruzzi and Apulia carbonate platforms correlate very well with anoxic sediments in the Umbria-Marche Basin and in certain Adriatic shelf sectors (BárDoSSy et al. (1977); JENKyNS (1980); and Fig. 6). when looking into the details of the geochemistry of anoxia and ferrallitic weathering both the apparent coincidence and the above juxtaposition may be explained. 2KAlSi3O8 + 2H2CO3 + 9H2O → 2K+ + 2HCO3 - + Al2Si2O5 (OH)4 + 4H4SiO4 (1) (felspar) (kaolinite) Al2Si2O5 (OH)4 + 5H2O → 2Al(OH)3 + 2H4SiO4 (2) (kaolinite) (gibbsite) Anoxic sedimentation in the oceans is considered as the essential part of the “biological carbon-pump” (eg. voLK & hoEFFErT (1985) in as much as Co2 taken up from air/water by photosynthesizing organisms is efficiently transferred from the atmosphere to the lithosphere when dead phytoplankton reaches the ocean-bottom, becomes buried and thus withdrawn for a long time from the carbon cycle (cf. with JENKyNS (1980); SChLANGEr et al. (1987); and Fig. 5). As pointed out by BErNEr et al. (1983), BErNEr (1991), AMIoTTE SUChET & ProBST (1994), vELBEL (1993); LASAGA et al. (1994); and several others, chemical weathering also consumes Co2 on land. So we may agree with BErNEr et al. (1983), that in addition to the well-known carbon-pump, driven by anoxic sedimentation in the oceans, there is another, land-based (or terrestrial) carbon-pump, operated by chemical weathering likewise transferring carbon from the atmosphere into the lithosphere i.e. into soils and sediments. As shown by AMIoTTE SUChET & ProBST (1994), more intense chemical weathering on the continents results in higher Co2 consumption so periods with abundant ferrallitic soils (bauxites) may be signs of particularly efficient performance of the terrestrial carbon-pump. The co-incidence of the anomalous abundance of anoxic sediments and bauxites in Cretaceous times as pointed out by D’ArGENIo & MINDSzENTy (1992), FoELLMI et al. (1993), JENKyNS (2003) suggests that the two carbon pumps may somehow be coupled and when that happens, their effects may be greatly enhanced (Fig. 7). Similar to Foellmi’s suggestion who, when explaining the anomalies of the Phosphorous-cycle, introduced the idea of the vITAMIN (Volcanicaly Induced Transfer and Accelerated Mineralization of Inhibiting Nutrients) periods (FoELLMI et al. (1993) and in agreement with JENKyNS (2003) who called attention to the increased amounts of continental runoff at times of peak greenhouse periods, we propose a Cretaceous scenario where nutrients (i.e. K, P, Ca, Mg, Na and also Fe) liberated by chemical weathering on land, reaching the ocean in solution by groundwater flow, and also by surface runoff (as fine hydrated particles) or as airborn dust, would significantly contribute to the increase of organic production in the photic Figure 4. Areal disribution of Cretaceous bauxites. Base map from zIEGLEr (1988). Key: 1 - continental crust, 2 - carbonate platforms/open shelves, 3 - pelagic/hemipelagic basins, 4 - terrige- neous shelves, 5 - deformed belts and ophiolites, 6 - oceanic crust anjd sediments, 7 - Tethyan karst baux- ites (insert: world bauxites karst+laterite), AM - Armorican Massif, MC -Massif Central, BM - Bohemian Massif, EA - Eastern Alps, Tr - Transdanubian range, MP -Moesia, hE -hellenids, hK - Dinaric high Karst, AP -Apulia, LA - Latium-Abruzzi, LC - Campania-Lucania, CS - Corsica-Sardinia, Py - Pyrenees, LP - Languedoc-Provence, IBM - Iberian Massif, 30o - estimated paleolatitudes (based on PArrISh et al., 1982, MárToN & MárToN, 1985 and SCLATEr et al., 1977). 83 Mindszenty Andrea: Bauxites: Feedbacks of System Earth at Greenhouse times zone (Fig. 8). In this way they may „prepare the ground” for anoxic sedimentation and thus trigger the withdrawal of excess carbon from the atmospheric reservoir. Calculations of LIU et al. (2010) for the recent world seem to support this idea even though they emphasize the need for further more detailed studies. Among the nutrients introduced into the ocean, iron seems to play a rather particular role. The idea that Fe, being a limiting nutrient for organisms including eg. Chrysophyta and Bacillariophyta, is likely to be decisive from the point of view of the organic productivity of the oceans is more and more popular. as pointed out first by MArTIN & GorDoN (1988) Fe-deficiency might result in zero productivity, even if all other conditions were favourable for life (=High Nutrient Low Chlorophyll areas). They suggested that in such low- productivity sectors of the oceans “iron-fertilization” would dramatically increase chlorophyll production. The hypothesis was tested in the late ‘80’s in the Pacific in the frames of the so called IronEx experiment (MArTIN & FITzwATEr (l988). That dust may be blown out from tropical areas and carried all across the Atlantic by the trade winds as far as Bermuda was previosuly detected by MUhS et al. (1990), and that South African dust may reach the South Indian ocean was shown by PIKETh et al. (2000). It was also shown that dust contains not only fine grained muscovite, felspar and quartz but also abundant iron-rich alteration products (hErwITz & MUhS (1995) or hErwITz et al. (1996), etc.). That together with clay particles iron-rich particulate material may be introduced into the ocean by river runoff has also been known for a long time (e.g. CArroL (1958); PoULToN & rAISwELL (2002). The possibility of natural iron-fertilization of the surface ocean by fine dust-related particulate Fe-oxides converted into bio-available iron by photochemical reactions was put forward by JooS et al. (1991), TorTELL et al. (1999), GNANADESIKAN et al. (2003), JICKELLS et al. (2005), rIJKENBErG et al. (2005). we have good reason to think that after long periods of particularly intense ferrrallitic weathering on land (as at grenhouse times), when climate change begins and formerly humid areas gradually change for drier environments, rain forests give way at least partially to savannah type vegetation on the continents. as erosion is increased first by torrential Figure 6. Areal distribution of bauxites and anoxic sediments in the Cretaceous of the Dinaride and Appenine sectors of the Mediterra- nean (base map and anoxic sediments from JENKyNS, 1980). Figure 5. The oceanic carbon pump. Figure 7. Coupling the terrestrial and the oceanic carbon pump. Figure 8. The Cretaceous Scenario with nutrients dissolved from the ferrallitic soil blanket and transported from the continent to the ocean as solutes by groundwater-flow and runoff and - as particulate mate- rial – by runoff and by wind. 84 vol. 69/1 rains then by wind, the amount of river-born particulate iron and later on also of airborn ferrallitic dust may be increased and transported over the oceans, contributing to the increase in organic productivity of the surface waters. In this way, the performance of the marine carbon pump becomes greatly enhanced i.e. ferrallitic weathering on land helps to contribute to the slow-down of the carbon cycle. This „natural iron- fertilization” mechanism - as suggested also by MINDSzENTy & BárDoSSy in 2008 - would explain both the areal and temporal coincidence of bauxites and anoxic sediments at greenhouse times, i.e. also in the Cretaceous as proposed above. 5. BAUXITES, THE HYDROLOGICAL CYCLE AND THE COMPOSITION OF THE ATMOSPHERE Molecular ratios of Co2 and h2o in the above simple equa- tions (see (1) and (2) suggest that when the end-product of ferrallitic weathering is bauxite (rich in gibbsite and goe- thite), weathering means efficient transfer not only of CO2 but also of the greenhouse-„accelerator” h2o from the atmo- sphere into the lithosphere. This is how it may contribute to the deceleration of not only the carbon cycle but also the wa- ter-cycle. At the same time ferrallitic weathering also con- sumes oxygen so in many ways it interferes with the compo- sition of the atmosphere (cf with TArDy et al. (1989), BErGMAN et al. (2004), BErNEr (2005). Oxygen is used in the oxidation of primary silicate minerals, organic matter and eventually pyrite. According to the calculations of CoMBES & BárDoSSy (1995), the oxygen content of any weathered rock in the ferrallitic suite is, on the average, 10 % higher than that of its fresh parent material. Table 1. shows the relative amount of atmospheric oxygen fixed in Cretaceous ferrallitic weathering products, as calculated by Combes & Bárdossy. As to the role of water-vapour in the atmosphere, there has been some debate among climatologists regarding its efficiency as a feedback mechanism amplifying/accelerating climate change when global warming has already begun ShErwooD & MEyEr (2006). Though the magnitude is still difficult to estimate, nowadays there is a general agreement, as a result of model simulations and satellite observations, that it works as a strongly positive feedback indeed (DESSLEr & ShErwooD, 2009). when focussing our attention on the relative proportions of water molecules participating in the afore-mentioned equations (1), (2), the amount of water fixed in the alteration products is apparent at first glance. Interestingly enough, unlike the role of silicate weathering in regulating the carbon-cycle previosuly discussed by BErNEr et al. (1983), the possibility of hydrolithic i.e. ferrallitic weathering regulating the water-cycle (particularly when reaching the bauxite stage) has not been discussed by either of the available moisture budgets (eg. TArDy et al. (1989), TrENBErTh et al. (2006), LIU et al. (2010). A very simple minimum estimate of water chemically bound in Cretaceous ferrallitic weathering products can be attempted when taking into account the extent of continental areas for a Cretaceous palaeogeography (suggested as 20 502 x 103 km2 by TArDy et al. (1989) and calculating with only 10 metres of weathered material accumulated between 0 to 10 degrees latitudes N & S. This is an obvious underestimation since we know very well that in recent tropical areas ferrallitic weathering profiles may be several tens of metres thick, however they are mineralogically heterogeneous, so for the sake of simplicity it is easier to calculate here with a reduced thickness and with a homogeneous mineralogy as shown below). The average bulk density of the weathering product is taken as 2.4 g/cm3 (based on PoSGAy (1967), BárDoSSy & ALEvA (19909 and hILL et al. (2006). The amount of water chemically bound in such a 10 m thick weathered mantle can be calculated on the basis of the water-content of a 50-50% mixture of the two most abundant alumina minerals (gibbsite and boehmite) while the water bound in goethite and kaolinite is ignored at this point. This is again an oversimplification which may, however, be compensated for by the reduced thickness introduced above. Based on the data of hILL et al. (2006), and BrowN et al. (1953) for the water content of the alumina minerals (34.65 % for gibbsite and 15.02 % for boehmite), when calculating with an average water content of 24.84 weight percent, the resulting total amount of water chemically bound in ferrallitic weathering products of the Cretaceous world is 122.225x103 km3. It is almost equivalent to the amount of water estimated by TrENBErTh et al. (2007) in their Global water Budget recently stored as 122x103 km3 „soil moisture” in the land reservoir and - regarding its order of magnitude - it is even comparable to the amount of water stored in lakes and rivers of the current land reservoir (178 x103 km3). Therefore, even this rough estimate calls attention to the role of hydrolithic weathering in the global water cycle. Continental runoff is, as a rule calculated by looking for the difference between the amounts of rainfall and evapotranspiration (eg. TArDy et al. (1989), sometimes also taking into consideration changes of soil moisture and groundwater (TrENBErTh et al., 2007). however it is generally ignored that the part of what is supposed intensity of weathering (m/Myr) 2 m/Myr 3 m/Myr 4 m/Myr 5 m/Myr percent oxygen bound in bauxite (oxbx/oxatm x 0.1) (from Albian to Cenomanian, in 23 Myrs) 4.40% 6.50% 8.70% 10.90% percent oxygen bound in bauxite (oxbx/oxatm x 0.1) (from Turonian to Senonian, in 26 Myrs) 4.50% 6.70% 8.90% 11.20% Table 1. Combes & Bárdossy (1995) 85 Mindszenty Andrea: Bauxites: Feedbacks of System Earth at Greenhouse times qualified as „runoff” is in fact transferred into the lithosphere and thus in the long run withdrawn from the water cycle. It is suggested that over geological time scales the latter helps to remove not only carbon but also substantial amounts of water from the atmosphere. In other words: intense chemical weathering may substantially contribute to the slow down not only of the accelerated carbon-cycle but also the accelerated hydrological cycle. In addition, ferrallitic weathering may counteract even one of the inherent positive feedbacks of greenhouse-warming, namely the production of Co2 on oxidation of continental organic matter (peat). As pointed out above, CoMBES & BárDoSSy (1995) suggested that the amount of oxygen bound in bauxites may be about 10 percent higher than in any of their fresh parent rocks. They calculated the quantity of oxygen bound in bauxites formed throughout Cenomanian and Turonian-Senonian times and compared the data to the quantity of atmospheric oxygen of each of those periods (as given by BUDyKo et al. (1987). They concluded that depending on the rate and the duration of the weathering process, about 4 to 11 pecent of atmospheric oxygen may have become chemically bound to the alteration product, i.e. transferred from the atmospheric to the lithospheric reservoir. This is how ferrallitic weathering could have contributed to the decrease of the amount of free oxygen available for the oxidation of more terrestrial organic matter. 6. BAUXITES: POSITIVE OR NEGATIVE FEEDBACKS? - CONCLUSIONS Even though their effect may be modest, it is suggested that in the long run, bauxites are undoubtedly one of the negative feedbacks: they release nutrients into the ocean (both via groundwater-flow and by air) and this way may help to inten- sify the oceanic carbon pump (i.e. contribute to the drawdown of Co2 from the atmosphere). By chemically fixing part of the oxygen content of the atmosphere they may also help to de- crease the rate of oxidation of terrestrial organic matter and thus slow down the rate of additional Co2-release. By trans- ferring h2o into the lithospheric reservoir they may also help to decelerate the hydrological cycle. To improve our understanding of System Earth, its controlling mechanisms and its feedbacks it is inevitable to look into the past and search for the documents of even minor feedbacks in the stratigraphic record. As the oceanic carbon- pump was recognized by looking into the details of anoxic sedimentation and its effects on the carbon-budget of the system (PrEMoLI-SILvA et al. (1999), ErBA (2004) and others), it is very likely that additional, more detailed and quantitative study of bauxites may contribute to an improved understanding of the operation of the land-based h2o (and carbon) pump as well. It is suggested that bauxites (palaeo- ferrallitic soils) were not only passive products of Phanerozoic greenhouse-episodes but they were parts of the feed-back loops helping the system to return to equilibrium after each large-scale greenhouse episode. This complies very well with the ideas of BErNEr et al. (1983), FoELLMI et al. (1992), yUAN GAo et al. (2003) and rIDGEwELL et al. (2002) regarding the role of chemical weathering in controlling the carbon-budget of System Earth. Indeed, the comparative study of bauxites, coeval anoxic sediments and modelled palaeo- wind trajectories (as in LINEN & hEATh (1981), would certainly disclose hitherto unknown details of this complex interaction. Closing remark: After having submitted this manuscript I re- ceived a copy of the paper of LEChLEr et al. (2015) in which the authors present convincing isotope-geochemical evidence for the importance of silicate weathering in seques- tering atmospheric Co2 during one of the Cretaceous oceanic Anoxic Events (oAE 1a, Selli), so at least part of the theory seems to work also in practice. Acknowledgement The efforts of Editor Alisa MArTEK, L. PALINKAŠ and another - anonymous - reviewer to improve the paper are greatly appreciated. Thanks are due to the community of the former IGCP-287, particularly B. D’ArGENIo and the late Prof. BárDoSSy for thought provoking discussions on the subject and to O. PIrOS for grooming the figures. REFERENCES ALLEN, J.r.L., hoSKINS, B.J., vALDES, P.J., SELLwooD, B.w. & SPI- CEr, r. (1994): Paleoclimates and their Modelling with special reference to the Mesozoic era.− Springer, 140 p. AMIoTTE SUChET, P. & ProBST, J.L. (1995): A global model for present- day atmospheric/soil Co2 consumption by chemical erosion of continen- tal rocks (GEM_CO2).− Tellus, 7B, 273−280. GNANADESIKAN, A., SArMIENTo, J.L. & SLATEr, r.D. (2003): Effects of patchy ocean fertilization on atmospheric carbon dioxide and biologi- cal production.− Global Biogeochemical Cycles, 17/2, 1050. doi: 10.1029/2002GB001940 ArThUr, M.A., SChLANGEr, S.o. & JENKyNS, h.C. (1987): The Ceno- manian-Turonian oceanic Anoxic Event,II. Palaeogegraphic controls on organic matter production and preservation.− Geol. Soc. London, Spec. Publ., 26, 401−420. BÁrDOSSY, GY. (1973): Bauxite Formation and Plate Tectonics.− acta Geol. acad. Sci. Hung., 17/(1−3), 141−154. BárDoSSy, Gy. & DErCoUrT, J. (1990): Les gisements des bauxites Te- thysiennes (Mediterranée, Proche et Moyen orient): cadre paléo- geographique et controls genetiques. Bull. Soc. Geol. France, 8, 4/6, 869−888. BárDoSSy, Gy. (1982). Karst Bauxites. Bauxite Deposits on Carbonate rocks.− Developments in Economic Geology, 14. Elsevier, amsterdam, 441 p. BárDoSSy, Gy., BoNI, M., DALL’AGLIo, M., D’ArGENIo, B. & PAN- TÓ, Gy. (1977): Bauxites of Peninsular Italy. Composition, origin and Geotectonic Significance. Monogr, Ser. on Miner. Deposits, Gebr. Born- traeger, Berlin, 15, 61 p. BárDoSSy, Gy. & ALEvA, G.J.J. (1990): Lateritic Bauxite. Developments in Economic Geology, 27, Elsevier, Amsterdam 624 p. BErGMAN, N.M., LENToN, T.M. & wATSoN, A.J. (2004): CoPSE: A new Model of Biogeochemical Cycling over Phanerozoic Time.− amer. Journ. Sci., 304, 397−437. doi: 10.2475/ajs.304.5.397 BErNEr, r.A. (1991): A model for atmospheric Co2 over Phanerozoic time.− amer. Journ. Sci., 291, 339−376. BErNEr, r.A. (2006): GEoCArBSULF: a combined model for Phanero- zoic atmospheric O2 and CO2.− Geochim. Cosmochim. acta, 70, 5653−5664. doi: 10.1016/j.gca.2005.11.032 BErNEr, r.A. (2005): The carbon and sulfur cycles and atmospheric oxygen from Middle Permian to Middle Triassic.− Geochim. Cosmochim. acta, 69, 3211−3217. doi: 10.1016/j.gca.2005.03.021 BErNEr, r.A., LASAGA, A.C. & GArrELS, r.M. (1983): The carbonate- silicate geochemical cycle and its effects on atmospheric carbon dioxide over the past 100 million years.− amer. Journ. Sci., 283, 641−683. doi: 10.2475/ajs.283.7.641 BrowN, J.F., CLArK, D. & ELLIoTT, w.w. (1953): The thermal decompo- sition of the alumina trihydrate, gibbsite.− J. Chem. Soc., 1953, 84−88. doi: 10.1039/jr9530000084 BUDyKo, M.J., roNov, A.B. & yANShIN, A.L.(1987): history of the Er- ath’s Atmosphere. Springer, Berlin, 138 p. 86 vol. 69/1 CArroLL, D.L. (1958): role of clay minerals in the transportation of iron.− Geochim. et Cosmochim. acta, 14, 1−27. CoALE, K., JohNSoN, K. & 17 oThErS (1996): A massive phytoplankton bloom induced by an ecosystem-scale iron fertilization experiment in the equatorial Pacific.− Nature, 383, (10 October 1996), 495−501. doi: 10.1038/383495a0 CoMBES, J.P. & BArDoSSy, Gy. (1994):. Typologie et controle geody- namique des bauxites tethysiennes.− Comptes rend. acad. Sci. Paris, t. 318, ser., II., 359−366.. COMBES J.P. & BÁrDOSSY, GY. (1995): Controlling influence of bauxites and laterites on the Earths atmosphere.− Comptes.rendus de l’academie des Sciences, Ser.II., 320/2, 109−116. D’ArGENIo, B. (1970): Central and Southern Italy Cretaceous Bauxites, Stratigraphy and Paleogeography.− ann. Inst. Geol. Publ. Hung., 56/3, 221−233. D’ArGENIo, B. & MINDSzENTy, A. (1991): Karst bauxites at regional unconformities and geotectonic correlation in the Cretaceous of the Medi- terranean.− Boll. Soc Geol. Ital., 110, 85−92. D’ArGENIo, B. & MINDSzENTy, A. (1992): Tectonic and climatic control on paleokarst and bauxites.− Giorn. Geol., 54/1, 207−218. D’ArGENIo, B. & MINDSzENTy, A. (1995): Bauxites and related paleo- karst: Tectonic and climatic event markers at regional unconformities.− Eclogae Geol. Helv., 88, 453−499. DESSLEr, a.E. & SHErWOOD, C.S. (2009): a Matter of Humidity.− Sci- ence, 323, 1020−1021. ErBA, E. (2004): Calcareous nannofossils and Mesozoic oceanic anoxic events.− Marine Micropaleontology, 52/1−4, 85−106, doi: 10.1016/j.mar- micro.2004.04.007 ErhArT, h. (1955): „Biostasie” et „rhexistasie”. Esquisse d’un theorie sur le role de la pedogenese entant que phenomene geologique.− C. r. acad. Sci., Paris, t. 241, 1218−1220. ErhArT, h. (1966): Bio-rhexistasie, biostasie evolutives, heterostasie. Im- portance de ces notions en geologie miniere exogene.− C.r. acad. Sci. Paris, t. 263, 1049−1051. ErHarT, H. (1967): La genese des soils entant que phenomene geologique.− Masson, Paris, p. 88. FöLLMI, K.B., wEISSEr, T.h. & LINI, A. (1993): Nonlinearities in phopho- genesis and phosphate-carbon coupling and their implications for global climate change.− In: WOLLaST, r., MaCKENZIE, F.T. & CHOU, L. (eds.): Interactions of C, N, P and S Biogeochemical Cycles and Global Change. NATo ASI series I. Global Environmental Change, vol. 4, 447−474. FraKES, L.a. (1979): Climates Throughout Geologic Time.− Elsevier, 310 p. FrAKES, L.A., FrANCIES, J.E., SyKTUS, J.I. (1992): Climate Modes of the Phanerozoic.− Cambridge Univ. Press, 286 p. doi: 10.1017/ CBo9780511628948 FrITz, B. & TArDy, y. (1973): Etude thermodynamique du systeme gibbsite, quartz, kaolinite gaz carbonique: application a la genese des podzols et des bauxites.− Sci. Geol. Bull., 26/4, 339−367. yUAN GAo, SoNG-MIAo FAN & SArMIENTo, J.L. (2003): Aeolian in- put to the ocean through precipitation scavenging: A modeling perspec- tive and its implication for natural iron fertilization in the ocean.− Journ. Geoph. res., 108 No D7, 4221. doi: 10.1029/2002JD002420 GNANADESIKAN, A., SArMIENTo, J.L., SLATEr, r.D. 82003):Effects of patchy ocean-fertilization on atmospheric carbon dioxide and biologi- cal production.− Global Biogeochemical Cycles, 17, 1050. doi: 10.1029/2002GB001940 hErwITz, S.r. & MUhS, D.r. (1995): Bermuda solution pipe soils. A geo- chemical evaluation of eolian parent materials.− Spec. Pap. Geol. Soc. amer., 300, 311−323. doi: 10.1130/0-8137-2300-0.311 hErwITz, S.r., MUhS, D.r., ProSPEro, J.M., MAhAN, S. & vAUGhN, B. (1996): origin of Bermuda’s clay-rich Quaternary paleosols and their paleoclimatic significance.− J. Geoph. res., 101, NoD18, 23389−23400. HILL, V.G. & SEHNKE, E.D. (2006): Bauxite.− In: KOGEL, J.E., TrIVEDI, N.C., BArKEr, J.M. & KrUKowSKI, S.T. (eds.): Industrial Minerals and rocks (7th edition) Commodities and Markets, USGS. Soc. Mining, Metallurgy and Expl., Inc. (DME), 1507 p. JENKyNS, hC. (1980): Cretaceous anoxic events: from continents to oceans.− Journ. Geol. Soc., 137, 171−188. doi: 10.1144/gsjgs.137.2.0171 JENKyNS, h.C. (2003): Evidence for rapid Climate Change in the Meso- zoic Paleogene Greenhouse world. Phil. Transact. Math. Phys. and Engi- neering Sci., 361, No.1810, Abrupt Climate Change. Evidence, Mecha- nism and Implications, 1885−1916. JICKELLS, T.D., AN, z.S., ANDErSEN, K.K., BAKEr, A.r., BEr- GAMETTI, G., BrooKS, N., CAo, J.J., BoyD, P.w., DUCE, r.A., hUNTEr K.A., KAwAhATA, h., KUBILAy, N., La roChE, J., LISS, P.S., MAhowALD, N.,PProSPEro, J.M., rIDGwELL, A.J., TEGEN, I. & TorrES, r. (2005): Global Iron Connections Between Desert Dust, Ocean Biogeochemistry and Climate.− Science, 306, 67−71. doi: 10.1126/ science.1105959 JooS, F., SArMIENTo, J.L. & SIEGENThALEr, U. (1991): Estimates of the effect of Southern ocean iron fertilization on atmospheric Co2 con- centrations.− Nature, 349,772−775. doi: 10.1038/349772a0 KUroDA, J., oGAwA, N.o., FANIMIzU, M., CoFFIN, M.F., ToKUyAMA, h., KITAzALo, h. & ohKoUChI, N. (2007): Contemporaneous mas- sive subaerial volcanism and late Cretaceous Oceanic anoxic Event 2.− Earth and Planetary Science Letters, 256, 211−223. doi: 10.1016/j. epsl.2007.01.027 LarSON, r.L. (1991): Geological consequenes of superplumes.− Geology, 19, 963−966. LArSoN, r.L. & ErBA, E. (1999): onset of the mid-Cretaceous greenhouse in the Barremian-Aptian: igneous events and the biological, sedimentary and geochemical responses.− Paleoceanograhy 14, 663−678. doi: 10.1029/1999PA900040 LASAGA, A.C., SoLEr, J.M., GANor, J., BUrCh, T.E. & NAGy, K.L. (1994): Chemical weathering rate laws and global geochemical cycles. Geochim. Cosmochim. acta, 58 , 2361−2386. doi: 10.1016/0016- 7037(94)90016-7 LEChLEr, M., PhILIP, A.E., von STrANDMANN, P., JENKyNS, h., ProSSEr, G. & PArENTE, M. (2015): Lithium-isotope evidence for enhanced silicate weathering during OaE 1a (Early aptian Selli event).− Earth and Planetary Science Letters, 432, 210−222. doi: 10.1016/j. epsl.2015.09.052 LINEN, M. & hEATh, G.r. (1981): Sedimentary indicators of atmospheric activity in the Northern Hemisphere during the Cenozoic.− Palaeogeogra- phy, palaeoclimatology, Palaeoecology, 36, 1−21. LIU, z., DrEyBroDT, w. & wANG, h. (2010): A new direction in effective accounting for the atmospheric Co2 budget: Considering the combined action of carbonate dissolution, the gobal water cycle and photosynthetic uptake of DIC by aquatic organisms.− Earth Sci. rev., 99, 162−172. doi: 10.1016/j.earscirev.2010.03.001 MarIć, L. (1966): Untersuchungen zur Genesis der Karstbauxite in den Di- nariden Jugoslaviens.− Mitt. Inst. Lager. rohstoff. Techn. Univ. Berlin, 2, 1−49. MarTIN, J.H. & GOrDON, r.M. (1988): Northern Pacific iron distribution in relation to phytoplakton productivity.− Deep Sea research, 35, 177−196. MarTIN, J.H.& FITZWaTEr, S.E. (1988): Iron deficiency limits Phyto- plankton growth in the North-east Pacific subarctic.− Nature, 331, 341−343. doi: 10.1038/331341a0 MárToN, E. & MárToN, P. (1985): Tectonic and paleoclimatic aspects of paleomagnetism studies in the Transdanubian Central Mountains.− acta Geol. Hung., 28/1−2, 59−70. MINDSzENTy, A. & BárDoSSy, Gy. (2008): Bauxites as Potential Feed- back mechanisms of System Earth: An Unconventional view of the rela- tionship between Bauxites and Global Change.− Proc. Xth Congress IC- SOBa, 28-30 November 2008, Bhubaneswar, India, 15−23. MINDSzENTy, A., D’ArGENIo, B. & AIELLo, G. (1996): Lithospheric bulges at regional unconformities. The case of Mesozoic-Tertiary Apu- lia.− Tectonophysics, 252, 137−161. doi: 10.1016/0040-1951(95)00091-7 MINDSzENTy, A. & D’ArGENIo, B. (1994): Carbonate platform emer- gence and bauxite formation.− aaPG annual Convention 06.12.−06.15.1994., Denver, US, p. 217. MUhS, D.r., BUDAhN, J.r., ProSPEro, J.M., SKIPP, G. & hErwITz, S.r. (2012): Soil genesis on the island of Bermuda in the Quaternary. The importance of african dust transport and deposition.− J. Geoph. res., Earth Surface, 117, F3. doi: 10.1029/2012JF002366 PArrISh, J.T.,zIEGLEr, A.M. & SCoTESE, C.r. (1982): rainfall patterns and the distribution of coals and evaporites in the Mesozoic and Cenozo- ic.− Palaeogeogr. Palaeoclim. Palaeoecol., 40, 67−101. doi: 10.1016/0031- 0182(82)90085-2 PArrISh, J.T. (1998): Interpreting pre-Quaternary climate from the geologi- cal record. (Perspectives in paleobiology and earth history series).− Co- lumbia University Press, 338 p. PATEL-SorrENTINo, N., LUCAS,y., EyroLLE, F. & MELFI, A.J. (2007): Fe, Al and Si species and organic matter leached off a ferrallitic and podzolic soil system from Central amazonia.− Geoderma, 137, 444−454. doi: 10.1016/j.geoderma.2006.10.002 PIKETh, S.J., TySoN, P.D. & STEFFEN, w. (2000): Aeolian transport from southern Africa and iron fertilization of marine biota in the south Indian ocean.− South afr. Journ. Sci., 96/5, 244−246. POSGaY, K. (1967): a bauxit térfogatsúlya (The bulk density of bauxite).− Bull. Geol. Soc. Hung., 97/4, 414−422. PoULToN, S.w. & rAISwELL, r. (2002): The low-temperature geochemi- cal cycle of iron: From continental fluxes to marine sediment deposition.− amer. Journ. Sci., 302/9, 774−805. doi: 10.2475/ajs.302.9.774 PrEMoLI-SILvA, I., ErBA,.E., SALvINI, G.,vErGA, D. & LoCATELLI, C. (1999): Biotic changes in Cretaeous anoxic events.− Journ. Foraminif- eral res., 29, 352−370. 87 Mindszenty Andrea: Bauxites: Feedbacks of System Earth at Greenhouse times PrICE, G.D. & vALDES, P.J., & SELLwooD, B.w. (1997a): Quantitative palaeoclimate GCM validation: Late Jurassic and mid Cretaceous case studies.− Journ. Geol. Soc., 154, 767−772. doi: 10.1144/gsjgs.154.5.0769 PrICE, G.D.,vALDES, P.J. & SELLwooD, B.w. (1997b): Prediction of modern bauxite occurrence: implications for climate reconstruction.− Pa- laeogeograhy, Palaeoclimatology, Palaeoecology, 131, 1−13. doi: 10.1016/S0031-0182(96)00145-9 rETaLLaCK, G.J. (2010): Lateritization and Bauxitization Events.− Econ. Geol., 105, 655−667. doi: 10.2113/gsecongeo.105.3.655 rIDGwELL, A.J. (2002): Dust in the Earth system: the biogeochemical link- ing of land, air and sea Philosophical Transactions: Mathematical, Physi- cal and Engineering Sciences 360/1801, December 2002, 2950−2924. doi: 10.1098/rsta.2002.1096 rIJKENBErG, M.J.A., FISChEr, A.C., KrooN, J.J., GErrINGA, G.J.A., TIMMErMANS, K.r.,woLTErBEEK, h.T. & DE BAAr, h.J.w. (2005): The influence of UV irradiation on the photoreduction of iron in the Southern Ocean.− Mar. Chem., 93, 119−129. doi: 10.1016/j. marchem.2004.03.021 SChLANGEr, S.o. & JENKyNS, h.C. (1976): Cretaceous oceanic Anoxic Events, causes and consequences.− Geol. Mijnb., 55, 179−184. SChLANGEr, S.o., ArThUr, M.A., JENKyNS, h.C. & SChoLLE, P.A. (1987): The Cenomanian-Turonian oceanic Anoxic Event, IU. Stratogra- phy and distribution of organic carbon-rich beds and the marine δ13C excursion.− Goel. Soc. London, Spec. Publ. No 26, 371−399. SCLATEr, J.G., hELLINGEr, S. & TAPSCoTT, h. (1977): T/he paleo- bathymetry of the atlantic ocean from the Jurassic to the present.− J. Geol., 85, 509−552. doi: 10.1086/628336 SCOTESE, C.r. (2001): atlas of Earth History, Vol.1. Paleogeography.− Pa- LEoMAP Project, Arlington, Texas, 52 p. SCoTESE, C.r. (2002): http://www.scotese.com (PALEoMAP website) SELLwooD, B.w. & PrICE, G.D. (1993): Sedimentary facies as indicators of Mesozoic paleoclimate.− Phil. Trans. r. Soc. London, B 341, 225−233. ShErwooD, S.C. & MEyEr, C.L. (2006): The General Circulation and robust relative Humidity.− Journ. Climate, 19, 6278−6290. doi: 10.1175/ JCLI3979.1 SINGEr, A. (1980): The paleoclimatic interpretation of clay minerals in soils and weathering profiles.− Earth Sci. rev., 15, 303−327. doi: 10.1016/0012- 8252(80)90113-0 SINGEr, A. (1984): The Paleoclimatic interpretation of Clay Minerals in Sediments – a review. Earth Sci. rev., 21, 251−293. doi: 10.1016/0012- 8252(84)90055-2 TArDy,y., N’KoUNKoU, r. & ProBST, J-L. (1989): The Global water Cycle and Continental Erosion during Phanerozoic Time (570 my). Amer. Journ. Sci., 289, 455−483. doi: 10.2475/ajs.289.4.455 TorTELL, P.D., MALDoNADo, M.T., GrANGEr, J. & PrICE, N.M. (1999): Marine bacteria and biogeochemical cycling of iron in the oceans.− FEMS Microbiology Ecology, 29/1, 1−11. doi: 10.1111/j.1574-6941.1999.tb00593.x ThIry, M. (2000): Palaeoclimatic interpretation of clay minerals in marine deposits: an outlook from the continental origin.− Earth Sci. rev., 49, 201−221. doi: 10.1016/S0012-8252(99)00054-9 TrENBErTh, K.E., SMITh, L., QIAN, T., DAI, A. & FASULLo, J. (2007): Estimates of the Global water Budget and Its Annual Cycle Using obser- vational and Model Data.− Journ. Hydrometeorology – Spec.Section (amer.Meteor.Soc.), 8, 758−769. doi: 10.1175/JHM600.1 vELBEL, M.A. (1993): Temperature dependence of silicate weathering in na- ture: how strong a negative feedback on long-term accumulation of atmo- spheric CO2 and global warming?− Geology, 21, 1059−1062. doi: 10.1130/0091-7613(1993)021%3C1059:TDoSwI%3E2.3.Co;2 wEISSErT, h. & McKENzIE, J. (1979): Cyclic anoxic events in the Early Cretaceous Tethys Ocean.− Geology, 7, 147−151. doi: 10.1130/0091-7613(1979)7%3C147:CAEITE%3E2.0.Co;2 voLK, T. & hoEFFErT, M.I. (1985): ocean carbon pumps: Analysis of relative Strengths and Efficiencies in Ocean-Driven atmoapheric CO2- Changes.− In: SUNDQUIST, E.T. & BrOECKEr, W.S. (eds.): The Car- bon Cycle and Atmospheric Co2: natural variations Archean to Present. Geoph. Monograph Series, vol. 32, 99−100. doi: 10.1029/GM032p0099 zIEGLEr, P.A. (1988): Evolution of the Arctic North Atlantic and the west- ern Tethys. − aaPG Mem., 43, p. 198.