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ThermoKarst

Under­ground cavi­ties are a fra­gile eco­sys­tem in which bio­geo­che­mi­cal pro­cesses are high­ly dependent on tem­pe­ra­ture. They also contain unique traces of their past envi­ron­ment, the inter­pre­ta­tion of which is clo­se­ly dependent on tem­pe­ra­ture.

In recent years, many stu­dies have focu­sed on spe­leo­thems, secon­da­ry car­bo­nate for­ma­tions such as sta­lag­mites and sta­lag­mi­tic flows, because of their abi­li­ty to archive palaeoen­vi­ron­men­tal infor­ma­tion that can be dated with pre­ci­sion over the last 0.5 Ma or so. Seve­ral mecha­nisms, inclu­ding ther­mal dif­fu­sion in the bedrock and advec­tion by water and air, trans­fer heat from the outer sur­face to the cavi­ty. Depen­ding on the rela­tive impor­tance of these dif­ferent flows, the under­ground tem­pe­ra­ture will be more or less atte­nua­ted and out of phase in res­ponse to tem­po­ral varia­tions in the out­side tem­pe­ra­ture.

Unders­tan­ding the ther­mal res­ponse of karst to cli­mate change is the­re­fore fun­da­men­tal to quan­ti­fying dissolution/precipitation rates, inter­pre­ting the geo­che­mi­cal varia­tions obser­ved in concre­tions and asses­sing the impact on living orga­nisms in caves.


Based on the lite­ra­ture, we have for­mu­la­ted three hypo­theses that we will seek to vali­date in the pro­ject :
  1. Ven­ti­la­tion of kars­tic mas­sifs is a domi­nant mecha­nism for heat trans­fer

  2. The reac­tion time of mas­sifs and caves depends main­ly on advec­tive flows (water and air), rather than on heat conduc­tion in the rock.

  3. Heat exchange is suf­fi­cient to pro­duce a signi­fi­cant quan­ti­ty of conden­sa­tion water to recharge kars­tic sys­tems, at least under cer­tain condi­tions.

The aim of the pro­ject is to car­ry out an in-depth ana­ly­sis of mass and heat trans­fer in karst sys­tems in order to ans­wer these ques­tions. In par­ti­cu­lar, we want to cha­rac­te­rise the conse­quences of cli­mate change on the under­ground envi­ron­ment and deter­mine the ther­mal res­ponse of a cavi­ty on dif­ferent spa­tial and tem­po­ral scales. We will deve­lop a sim­pli­fied glo­bal model of kars­tic mas­sifs made up of seve­ral sub-sys­tems (rock, conduit, epi­karst, etc.). Heat trans­fer by conduc­tion and advec­tion (water and air) in the rock and conduits will be ful­ly cou­pled. Howe­ver, the effects of natu­ral ven­ti­la­tion in the caves and of the epi­karst are not cur­rent­ly well quan­ti­fied, making their model­ling ris­ky. Field mea­su­re­ments will the­re­fore be car­ried out in paral­lel with the simu­la­tions.

To achieve this objec­tive, the pro­ject relies on two teams with com­ple­men­ta­ry skills, one spe­cia­li­sing in the moni­to­ring and concep­tua­li­sa­tion of kars­tic sys­tems (SISKA), the other in heat and mass trans­fer (FAST). These two aspects will the­re­fore be dealt with in paral­lel. Ini­tial­ly, a para­me­tric stu­dy (ini­tial model) will be car­ried out using sim­pli­fied ana­ly­ti­cal models to esti­mate the magni­tude of the res­pec­tive pro­cesses under dif­ferent condi­tions. This will enable the deve­lop­ment of the first nume­ri­cal model (part 1) and field data acqui­si­tion (part 2). The two com­po­nents will be syn­the­si­sed ite­ra­ti­ve­ly throu­ghout the research pro­gramme, enabling the three hypo­theses to be dis­cus­sed at the pro­ject’s conclu­sion. Two main sites will be ins­tru­men­ted, inclu­ding the Milandre under­ground labo­ra­to­ry where a large amount of data is alrea­dy avai­lable. The sites will be moni­to­red for tem­pe­ra­ture and for the main para­me­ters control­ling mass trans­fer : air and water flows, using direct (flow rates) and indi­rect (CO2 and radon) mea­su­re­ments.

A team of two PhD stu­dents is plan­ned to deploy the moni­to­ring in the field and deve­lop the skills and simu­la­tion tools nee­ded for the pro­ject. Expe­rien­ced resear­chers from SISKA and FAST will acti­ve­ly sup­port the PhD stu­dents to esta­blish the pro­ce­dures, deve­lop the skills and make the deci­sions nee­ded to solve the chal­lenges that will arise.

This pro­ject will undoub­ted­ly pro­vide new infor­ma­tion on the res­ponse of kars­tic mas­sifs to cli­mate change, on the ven­ti­la­tion of mas­sifs and on the impor­tance of conden­sa­tion in rechar­ging aqui­fers.

The results of the pro­ject will also pro­vide essen­tial data for other fields : drin­king water sup­ply (tem­pe­ra­ture varia­tions in kars­tic springs), public health (radon exha­led in dwel­lings), spe­leo­ge­ne­sis (conden­sa­tion cor­ro­sion), per­ma­frost (natu­ral gla­ciers), low-tem­pe­ra­ture geo­ther­mal ener­gy (effect of conduits on heat exchange), tun­nel­ling and mining (pre­dic­tion of voids and mas­sive water intru­sions), remote sen­sing (inter­pre­ta­tion of ther­mal ano­ma­lies), cave conser­va­tion (pro­tec­tion of archaeo­lo­gi­cal and tou­rist caves), the car­bon cycle (dis­so­lu­tion and pre­ci­pi­ta­tion of car­bo­nates are control­led by pCO2, and the­re­fore by ven­ti­la­tion), sub­ter­ra­nean bio­lo­gy (sub­ter­ra­nean bio­topes…), etc.

The results of this pro­ject will become a key step in unders­tan­ding heat trans­fer in car­bo­nate rocks.

Link to the SNSF Ther­mo­karst page

PHD Students


Contact

Amir Seda­ghat­kish
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Contact

Clau­dio Pas­tore
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PIs

Pierre-Yves Jean­nin (ISSKA), Fré­dé­ric Dou­menc (Sor­bonne), Marc Luet­scher (ISSKA).

Publications

Seda­ghat­kish A., Dou­menc F., Jean­nin PY., Luet­scher M., 2024. Mode­ling the effect of free convec­tion on per­ma­frost mel­ting rates in fro­zen rock-clefts. The Cryos­phere, 18, 4547–4565, doi.org/10.5194/tc-18–4547-2024

Pas­tore C., Seda­ghat­kish A., Schmid N., Weber E., Luet­scher M., 2024. Moni­to­ring air fluxes in caves using digi­tal flow meters. Inter­na­tio­nal Jour­nal of Spe­leo­lo­gy, 53, 63–73. doi.org/10.5038/1827–806X.53.1.2500

Seda­ghat­kish A., Pas­tore C., Dou­menc F., Jean­nin PY., Luet­scher M., 2024. Model­ling heat trans­fer for asses­sing the convec­tion length in ven­ti­la­ted caves. Jour­nal of Geo­phy­si­cal Research : Earth Sur­face129, e2024JF007646. doi.org/10.1029/2024JF007646

Pas­tore C., Weber E., Dou­menc F., Jean­nin PY., Luet­scher M., 2024. Dis­per­sion of arti­fi­cial tra­cers in ven­ti­la­ted caves. Inter­na­tio­nal Jour­nal of Spe­leo­lo­gy, 53(1), 51–62. doi.org/10.5038/1827–806X.53.1.2497

Gara­gnon J., Luet­scher M.Weber E., 2022. Ven­ti­la­tion regime in a kars­tic sys­tem (Milandre Cave, Swit­zer­land). Kars­to­lo­gia Memoirs, 23, 187–19

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