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Stændertorvet: Xenolit i granitten EarthCache

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Hidden : 8/25/2026
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Geocache Description:


Dansk/Danish - for English, please look below

 

Xenolit på Stendertorvet

Formålet med denne Earthcache er at lære om Xenolitter. Ved denne earthcache skal du lære noget om dannelsen af xenolitter. Du skal undersøge en xenolit der er indlejret i granit. Igennem dine observationer skal du blive klogere på xenolitter og deres egenskaber.

Logningskrav

Geocachen er en EarthCache. Dette betyder at du skal gøre dig nogle iagttagelser på de oplyste koordinater. Med basis i disse iagttagelser skal du besvare nedenstående spørgsmål. Svar på spørgsmål skal sendes til mig via Message Center.

Spørgsmål

Indledning

Gå hen til springvandet (Schmeltz's Springvand) og stil dig på den sydlige side af springvandet. Kig på granitstenene der omkranser springvandet. I venstre side af en af granitstenene, ca. 15 cm fra en af fugerne, er der en mørk plamage der tydeligt adskiller sig fra resten af granitten. Denne mørke plamage er en xenolit, og det er dem som er emnet for denne earthcache.

1. Farver og overgange: Se på farver og kornstørrelser i xenoliten og den omkringliggende granit. Hvilke farver er henholdsvis xenoliten og granitten. Beskriv overgangen mellem den granitten og xenoliten. Er det en knivskarp overgang mellem stentyperne eller er der en vis opblanding af stenmasser og farver?

2. Kornstørrelse og afkøling: Se på krystal- eller kornstørrelsen i xenoliten, og sammenlign den med kornstørrelsen i den omgivende granit. Er bjergarten i xenoliten mere finkornet eller grovkornet end granitten? Hvad fortæller det dig om de to bjergarters forskellige afkølingshastigheder?

3. Form og smelte: Er xenoliten afrundet og glat, eller kantet og uregelmæssig? Hvad fortæller formen dig om, hvor meget xenoliten nåede at smelte i den varme magma?

4. Vejrbestandighed: Lad fingrene vandre langs overgangen mellem granitten og xenoliten. Føles xenoliten som en fordybning, rager den op som en bule, eller er overfladen helt flad? Hvad fortæller det dig om den lokale forvitring? Dvs. hvilken stenart er mest bestandig?

5. Foto: Tag et billede ved springvandet (ikke af xenoliten) med noget af dig selv, dit geocachernavn eller en personlig genstand.

Schmeltz's Springvand og hvordan kom stenene hertil

Earthcachen CGBMDPV beskriver på udmærket vis historien om Schmeltz's Springvand. Springvandet er opstillet i 1895 på det daværende Råshustorv.

Springvandets bassin består af tre forskellige typer natursten. Bornhomsk granit, Nexø sandsten og Ølands kalksten. Earthcachen CGBMDPV  beskæftiger sig med Ølands kalksten. Med denne earthcache skal vi kigge nærmere på den bornholmske granit.

 

Geologisk introduktion: Historien om xenoliter

Når du står foran springvandet og kigger på xenoliten i granitten, er det som en slags tidsmaskine der kan fortælle en dramatisk historie fra dybt inde i Jorden. Stenene ispringvandets bassin er granit, men hvis du ser godt efter, vil du se at en af stenene har en sort "plamage/indeslutning" . Disse mørke indeslutninger kaldes xenoliter (fra græsk xenos = fremmed og lithos = sten). Og det er præcis, hvad de er: fragmenter af en helt anden og ældre bjergart, der er blevet fanget og "frosset fast" i den yngre granit.

Historien om hvor stenen i til springvandet kommer fra kendes ikke. Granitten er fra Bornholm, og her her en ganske almindelig stenart.

Hvordan opstår kontrasten i stenen?

  • Granit: Granit er en dybdebjergart (magmatisk bjergart), der størknede meget langsomt dybt inde i Jordens skorpe. På grund af den langsomme afkøling havde mineralerne god tid til at vokse, hvilket giver granitten dens karakteristiske grovkornede struktur. Den farven skyldes et højt indhold af mineralet kalifeltspat, som er typisk for magmatiske bjergarter i den kontinentale skorpe.

  • De sorte xenoliter: Disse er såkaldte mafiske bjergarter. De indeholder store mængder mørke, jern- og magnesiumrige mineraler som biotit (mørk glimmer) og amfibol. Xenoliterne stammer ofte fra et helt andet geologisk miljø (f.eks. vulkanske dagbjergarter, der afkølede meget hurtigt på Jordens overflade og derfor forblev ekstremt finkornede).

Historien begynder i et glødende magmakammer dybt i Jordens skorpe. Da den tyktflydende granitmagma langsomt trængte opad, brød den igennem ældre, mørke klippelag. Under denne voldsomme proces skete følgende:

  1. Afbrækning: Den ekstremt varme magma knuste og rev fragmenter løs fra de omgivende klippe- eller magmakammervægge.

  2. Fastlåsning og smeltning: Fragmenterne faldt ned i den flydende granitmasse. Da den omgivende magma var glødende varm, blev disse fangede klippefragmenter ofte delvist smeltet. Men fordi de mørke stykker havde et højere smeltepunkt end granitten, overlevede de varmen uden at smelte fuldstændigt.

  3. Størkning: Magmaen afkølede langsomt over tusindvis af år og størknede til fast granit. Dermed blev de mørke xenoliter fanget i deres nuværende position.

Vist som en tegneserie kunne dannelsen af en xenolit se sådan ud (billedet er AI genereret).


 

Forvitring og relief: Hvilken er stærkest?

Når granitten og xenoliterne udsættes for vind og vejr på Jordens overflade, begynder forvitringen. Ikke alle mineraler er lige holdbare overfor påvirkninger fra regn, frost og sol:

  • Hvis xenoliterne indeholder mange bløde mineraler (som glimmer), smuldrer de hurtigere end den hårde granit og danner en fordybning.

  • Hvis xenoliterne derimod er meget finkornede og tætte, modstår de vejret bedre end den omgivende granit og bliver stående som en hård bule eller et hævet område.

 

English

Xenoliths at Stændertorvet

The purpose of this EarthCache is to learn about xenoliths and how they are formed. You will examine a xenolith embedded in granite. Through your observations at the location, you will gain a better understanding of xenoliths and their properties.

 

Logging Requirements:

This geocache is an EarthCache. This means that you need to make some observations at the given coordinates. Based on your observations, you must answer the questions below. Send your answers to me via the Message Center.

Questions:

Introduction:

Walk over to the fountain (Schmeltz’s Fountain) and stand on the southern side of it. Look at the granite stones surrounding the fountain. On the left side of one of the granite blocks, about 15 cm from one of the joints, there is a dark patch that clearly stands out from the rest of the granite. This dark patch is a xenolith, which is the main topic of this EarthCache.

  1. Color & Transition: Look at the colors and grain sizes in the xenolith and the surrounding granite. What colors are the xenolith and the granite respectively? Describe the transition between the granite and the xenolith. Is it a razor-sharp boundary between the two stone types, or is there some blending of rock masses and colors?

  2. Grain Size & Cooling Rate: Look at the crystal or grain size in the xenolith and compare it to the grain size in the surrounding granite. Is the rock in the xenolith finer-grained or coarser-grained than the granite? What does this tell you about the different cooling rates of the two rock types?

  3. Shape & Melting: Is the xenolith rounded and smooth, or angular and irregular? What does its shape tell you about how much the xenolith managed to melt in the hot magma?

  4. Weathering & Relief: Run your fingers along the transition between the granite and the xenolith. Does the xenolith feel like a depression (dented inward), does it stick out like a bump, or is the surface completely flat? What does this tell you about local weathering—meaning, which rock type is more durable?

  5. Picture: Take a picture with the fountain (not of the xenolith) showing something of you, your geocacher name or a personal item of yours..

Schmeltz's Fountain and How the Stones Got Here

The EarthCache CGBMDPV nicely describes the history of Schmeltz's Fountain. The fountain was erected in 1895 at what was then known as Rådhustorvet.

The fountain basin consists of three different types of natural stone: Bornholm granite, Nexø sandstone, and Öland limestone. EarthCache CGBMDPV focuses on the Öland limestone. With this EarthCache, we will take a closer look at the Bornholm granite.

 

Geological Introduction: The Story of Xenoliths

When you stand in front of the fountain looking at the xenolith in the granite, it acts like a time machine revealing a dramatic story from deep inside the Earth. The stones in the fountain's basin are granite, but if you look closely, you will see that one of the stones has a black "patch/inclusion."

These dark inclusions are called xenoliths (from Greek xenos = foreign and lithos = stone). And that is exactly what they are: fragments of an entirely different and older rock type that became trapped and "frozen solid" inside the younger granite.

The exact history of where the specific stone for the fountain was quarried is unknown, but granite is native to Bornholm and a very common rock type there.

How Does the Contrast in the Stone Occur?

  • Granite: Granite is a plutonic rock (an intrusive igneous rock) that cooled very slowly deep inside the Earth's crust. Because of this slow cooling process, the minerals had plenty of time to grow, giving granite its characteristic coarse-grained texture. Its reddish/pinkish color comes from a high content of the mineral potassium feldspar, which is typical for igneous rocks in the continental crust.

  • Black Xenoliths: These are what geologists call mafic rocks. They contain high amounts of dark, iron- and magnesium-rich minerals such as biotite (dark mica) and amphibole. Xenoliths often originate from a completely different geological environment (for example, volcanic rocks that cooled very quickly on the Earth's surface and therefore remained extremely fine-grained).

The story begins in a glowing magma chamber deep within the Earth's crust. As the thick granite magma slowly pushed upward, it broke through older layers of dark rock. During this violent process, the following steps took place:

  1. Breaking Off: The extremely hot magma shattered and tore fragments loose from the surrounding rock or magma chamber walls.

  2. Trapping and Melting: The fragments fell into the liquid granite mass. Because the surrounding magma was white-hot, these trapped rock pieces were often partially melted. However, because dark mafic rocks have a higher melting point than granite, they survived the intense heat without dissolving completely.

  3. Solidification: The magma cooled down slowly over thousands of years and hardened into solid granite, permanently trapping the dark xenoliths in their current positions.

(If drawn as a comic strip, the formation of a xenolith would look like this. The picture is AI generated)

 

Weathering and Relief: Which One is Stronger?

When granite and xenoliths are exposed to wind and weather on the Earth's surface, weathering begins. Not all minerals are equally resistant to rain, frost, and sunlight:

  • If the xenolith contains soft minerals (like mica), it will weather faster than the hard granite, forming a depression.

  • If the xenolith is very fine-grained and dense, it will resist the weather better than the surrounding granite, remaining as a raised bump or ridge.

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