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47
VI/1/2015
INTERDISCIPLINARIA ARCHAEOLOGICA
NATURAL SCIENCES IN ARCHAEOLOGY
homepage: http://www.iansa.eu
Abies alba
and
Homo sapiens
in the Schwarzwald – a Diffcult Story
Manfred Rösch
a*
a
Laboratory of Archaeobotany, Regional Heritage Institute Baden- Württemberg, Fischersteig 9, 78343 Gaienhofen-Hemmenhofen, Germany
1. Introduction
The northern Schwarzwald (northern Black Forest) is
today one of the most densely-forested landscapes in
central Europe. In some parts, particularly in the higher-
altitude Grindenschwarzwald, forest cover is more than
90% (Fischer 1967; Huttenlocher, Dongus 1967). The
mountains have a north-south extension of less than 60 km
and a west-east extension of about 40 km, with an altitude
up to 1163 m asl (Hornisgrinde). If one ignores the deep
and narrow valleys of Enz, Nagold, Murg and some smaller
rivers, mean elevation increases from more than 600 m asl
in the east to more than 1000 m in the west. The bedrock
is mostly Triassic sandstone, but also granite, resulting in
rather poor and acidic soils. The climate is sub-oceanic,
with decreasing temperatures and increasing precipitation as
altitude increases. The Hornisgrinde (1163 m), for example,
has an annual mean temperature below 5°C and an annual
precipitation of 2000 mm.
The Schwarzwald National Park, since 1
st
January 2014,
is situated in the southwestern part of Nordschwarzwald,
with elevations over 1000 m. A major aim of the park`s
management policy is to re-establish a natural forest cover.
After an initial phase during which active – though restricted
– forest management is allowed, this re-establishment
of the natural forest should happen without any human
interference. Finally, the potential natural vegetation should
cover the entire park (Tüxen 1956; Dierschke 1994). In
the actual present-day vegetation,
Picea
abies
, introduced
and planted since the 19
th
century, is the most frequent tree
with a coverage of more than 60%.
Abies
alba
and
Fagus
sylvatica
, which are regarded as the main trees of the natural
mountain forest in Schwarzwald, are much rarer and cover
about the same area as
Pinus
sylvestris.
Other trees, such as
Acer
pseudoplatanus
,
Quercus
petraea
,
Alnus
glutinosa
and
incana
,
Fraxinus
excelsior
,
Tilia
platyphyllos
,
Sorbus
aria
,
Salix
caprea
,
Populus
tremula
, as well as the introduced
Volume VI ● Issue 1/2015 ● Pages 47–62
*Corresponding author. E-mail: manfred.roesch@rps.bwl.de
ARTICLE INFO
Article history:
Received: 11
th
March 2015
Accepted 4
th
September 2015
Keywords:
northern Schwarzwald
cirque lakes
national park
vegetation history
natural forest
ABSTRACT
High-resolution pollen profles from the centres of all the cirque lakes of the northern Schwarzwald
give new evidence on the forest and landscape history of the Schwarzwald National Park and its vici-
nity during the last six millennia. In the early 4
th
millennium,
Abies
alba
became the most frequent tree
of the mountain forest; it had invaded the region several centuries earlier together with
Fagus
sylvatica
.
The trees replaced were
Quercus
,
Ulmus
,
Tilia
,
Fraxinus
, and
Corylus
. The frst human impact occu-
rred towards the end of the 4
th
millennium: small-scale deforestation, followed by reforestation – star-
ting with
Betula
. As a consequence,
Fagus
increased and became more frequent than
Abies
. In spite of
heavy human impact and clearances, especially during the pre-Roman Iron Age and the High Medieval
period,
Fagus
and
Abies
remained the main trees of the mountain forest. Due to human promotion,
Quercus
petraea
, which before had nearly disappeared, became the third-most important tree during
the Late Medieval period. In the early Modern period, the forest became systematically over-exploited
and to a greater part destroyed, and
Quercus
and later
Abies
became seldom or even disappeared.
According to the pollen record,
Picea
abies
was not present in the area before the Medieval period, but
took advantage of the forest devastation of the early Modern period, and was planted preferentially as
a forest tree from the 19
th
century. But it remains unclear whether, in the Schwarzwald National Park
without any human impact in the future, the natural forest of
Abies
and
Fagus
will come back, because
there are still disturbances such as hurricanes and bark-beetle, and overstocking of red deer.
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Table 1.
The cirque lakes of Nordschwarzwald.
No.LakeNearKoordinatesElev.LengthWidthDepthWater
expense
Pollen
samples
14
C Datings
NEm.a.s.l.mmmha
1Herrenwieser See4 km w Forbach48°40'10"8°17'48"830200
80
9,51,236937
2Glaswaldsee4 km e Bad Peterstal48°25'36"8°15'45"839200200112,915316
3Mummelsee4 km ne Seebach48°35'56"8°12'07"1028250170173,319312
4
Schurmsee
4 km wnw
Schönmünzach
48°36'50"8°19'12"795175105131,624419
5
Wilder See am
Ruhestein
4 km e Seebach48°34'15"8°14'24"91017015011,52,125916
6Huzenbacher See3 km sw Huzenbach48°34'33"8°20'58"
747
2501557,52,536422
7
Buhlbachsee10 km w Baiersbronn48°30'06"8°14'43"
790
2001704,52,231818
8
Ellbachsee4 km wsw Baiersbronn48°29'03"8°18'20"
770
110
90
22,985
Figure 1.
The Schwarzwald National Park
and the cirque lakes of Nordschwarzwald.
Glaswaldsee is 6 km to the south of
Ellbachsee.
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species
Larix
decidua
and
Pseudotsuga
menziesii,
are rare
and of no economic importance.
The big question now is whether
Abies
will come back as
the main component of the area’s natural forest – as the forest
ecologists hope – or if the system is already too disturbed for
a natural resilience.
During the last ice age, the northern Schwarzwald was
partly glaciated. The glaciers left behind kettle holes, which,
flled with water, became lakes. During the Holocene,
most of these so-called cirque lakes developed into
mires; only the six largest and deepest, Herrenwieser See,
Schurmsee, Mummelsee, Huzenbacher See, Wilder See,
and Glaswaldsee, survived as lakes (Table 1, Figure 1).
Buhlbachsee and Ellbachsee also have open water surfaces,
but artifcially caused by dams in early Modern times; their
purpose was to fush wood into the valley. All the lakes are
rather small, with water surfaces between 1.3 and 3.7 ha.
All lakes are situated at distances of more than two km
from lowlands lower than 700 m asl and are either inside
or close to the national park. Thus a pollen analysis of their
sediments should be the optimal instrument for getting
to know the vegetation history of the national park: a
precondition for a prognosis and comprehension of the
park’s future development. The relationships between the
main components of the mountain forest,
Abies
,
Fagus
, and
Picea
, is thereby of particular interest.
Until recent years, the Schwarzwald was believed to
have been colonized rather late, more precisely not before
the High Medieval period (Hausrath 1938; Brückner 1981;
Ottnad 1981; Schaab 2003; Wilmanns 2001; 2009). After
the formulation of some doubts, based on palynological
and archaeological evidence (Frenzel 1982; Radke 1973;
Jensen 1986), mining-archaeological research of the last
decade has supported the idea of a much earlier colonization
of at least parts of the region (Gassmann
et al.
2006). But
archaeological evidence is still rare, especially for prehistory.
The reasons for this are: the lack of salvage excavations,
because there is neither agriculture nor extended building
activity; the diffculty of archaeological prospecting due to
the topography; and also due to the fact that in the acid soil
neither bones nor pottery are preserved.
To get a better understanding of the land-use history of
this region, differentiated in space and time, the Laboratory
for Archaeobotany of the Regional Heritage Institute Baden-
Württemberg, with fnancial support of the DFG, initiated
a fresh vegetation historical project, dealing frst with peat
profles from the mires Bruckmisse and Wildseemoor, and
later with lake sediments from the centres of the above-
mentioned cirque lakes (Rösch 2009a; 2009b; 2009/10;
2012; Rösch
et al.
2005; 2009, Rösch, Tserendorj 2011a;
2011b). This paper deals with the results of this project. It
tries to answer the questions: how was the vegetation and
particularly the forest in this region composed, before human
impact changed the situation? Can this early natural state be
regarded as a model for the potential natural vegetation? And
can this natural state be attained, without management, under
the given general setup?
2. Material and methods
Pollen analysis is the most used and approved method in
vegetation history (Berglund 1986). Its direct results are the
relative or absolute contents of pollen types in sediments –
and these are proxy data for forest cover and composition.
To come from pollen percentages to vegetation, these
proxy data must be calibrated. Calibration methods have
been developed, for example, by Andersen (1970) and by
Sugita (2007a; 2007b). They consider the differences in
pollen production and dispersion of different species.
But
these methods cannot answer the question about the point
of origin of a single pollen grain. This also infuences the
question of where does the pollen deposited in a lake or
mire come from (Tauber 1965). As a general rule we can
assume that with increasing distance between the point
of origin and the point of deposition the amount of pollen
decreases exponentially. The correlation between vegetation
and pollen spectra is not constant, but must be evaluated for
every region specifcally. Unfortunately a transfer into the
past is in principal impossible, but there is agreement that
small lakes generally refect the vegetation in a radius of
1–2 km (Sugita 1994; 2007b).
Most of a plant‘s pollen remains with the plant and in its
direct vicinity. Some pollen, especially of wind-pollinated
plants, can reach the upper atmosphere with the help of
updrafts. The speed of fall in air of pollen is low compared
to typical wind velocities; hence some pollen can be
transported rather far. Close to the ground, tall vegetation,
and particularly forest, flters much of the pollen from the
air, before it can be deposited on the surface of a lake or
mire. Therefore a small lake or mire whose surroundings
are densely forested has less infux of far-distance pollen
than a large basin in an open landscape. We can assume that
most of the pollen deposited in the small, forest-surrounded,
Schwarzwald lakes originated from distances of perhaps
1–2 km. The pollen component transported from further
away should not exceed 10% (see below). In a fat or hilly
landscape, a pollen input from several km would not be
problematic, because in such landscapes the same vegetation
units cover huge areas and vegetation gradients are shallow.
In mountains, a horizontal distance of a few km can involve a
vertical gradient of several hundreds of meters and therefore
sharp changes in vegetation. The horizontal component of
the transported pollen fux may be the same as in the fat
landscape area, but it is not possible to resolve from which
altitudinal belt the pollen has originated. The fact that not
all pollen types behave in the same way does not make the
problem any easier. We can assume that the pollen of wind-
pollinated trees, as for example
Pinus,
is capable of being
transported rather far, but pollen of wind-pollinated NAP
(Non-arboreal pollen), for example Poaceae, only in those
cases when they grow in open vegetation. Pollen of forest
grasses has only a very slight chance of escaping the forest
and travelling very far. Even such grasses of forest-recovery
stages as
Festuca
,
Deschampsia
,
Calamagrostis
,
Agrostis
and others, which are components of the natural forest, are
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hardly refected in the pollen spectrum outside of the forest:
because their pollen has hardly a chance of leaving the small
clearings and reaching the atmosphere (Tauber 1965). In
the natural forest, after the early Holocene reforestation, the
NAP percentages in lake sediments are therefore in most
cases clearly below 5%. Zoogamous plants have a much
lower pollen production than wind-pollinated plants. There
transport distance depends on the cruising radius of the animal
in question. Hexapods, for example the honey bee, can cover
several meters up to a few kilometres. Birds can carry pollen
in their intestines or in there plumages much farther.
Another problem, already discussed by Firbas (1949),
is how to interpret pollen percentages below 1. Generally,
vegetation history can prove the presence of a species, but
not its absence (recently Ammann
et al.
2013). The practical
approach is the assumption that a species which is neither
documented by pollen nor by other evidence, most probably
did not occur. If an anemophilous tree with a rather high
pollen production such as
Picea
should have less than
1%, then the pragmatic point of view would explain these
few pollen grains as being transported long-distance, and
conclude that
Picea
is not present in the immediate area.
A plausible conclusion maybe, but one that can only be
verifed by studies comparing actual vegetation and pollen
precipitation (
cf.
Pidek
et. al.
2013). But we can assume, with
very high certainty, that the species was at least very rare.
This discussion is important because we want to know if the
pollen infux into the high-altitude Schwarzwald lakes refect
local events, or events, that took place at some distance away
and at much lower elevations.
To estimate the amount of long-distance transported
pollen in the recent pollen spectrum, the registered pollen
and spore types were classifed into four classes “local AP”,
“local NAP”, “long-distance AP”, and “long-distance NAP”
(Table 2, Figure 2). The criteria for the classifcation were our
own vegetation observations and the upper-altitude limits for
plant species in the Schwarzwald in Oberdorfer (1970).
All cirque lakes were sampled using a modifed
Livingstone sampler with a tube length of 1 m and a tube
diameter of 5 cm (Merkt, Streif 1970). The cores were taken
in the centres of lakes at maximum water depth, using a
platform. All sediments from the water/sediment-limit down
to the Late Weichselian clay were taken. Each profle was
dated with about 20 radiocarbon dates to enable reliable time
models and the construction of time-linear pollen diagrams.
A test to compare the ages of bulk and plant macrofossil
data yielded no signifcant differences, because limestone is
lacking in the region. Therefore we could use bulk data.
All profles were investigated with sampling intervals
between 5 and 10 cm below the frst occurrence of
Abies
and
Fagus
, and above to the top of the core in 1 cm-intervals
without gaps. The pollen sum in each sample was at least
1000 arboreal pollen. Loss-on-ignition was determined
using the same sampling concept.
To evaluate the actual pollen spectra at each lake, samples
from mosses from their shores were used. The aim was to
evaluate the relation between recent vegetation and pollen
spectra, to detect long-distance transported pollen, and to
have a time control for the upper ends of cores. All data
were processed using the programs Tilia and Taxus. For
Figure 2.
Composition of the recent pollen spectra at Nordschwarzwald lakes, classifed into local and long-distance transported arboreal and non-arboral
pollen; NAP = Non-arboreal pollen, Ltd = Long-distance transported.
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Table 2.
Constancies and percentages of pollen types from surfaces samples (mosses) from the shores of the Nordschwarzwald cirque lakes. Evaluation
(column 2): 1 local arboreals 2 extralocal arboreals 3 local non-arboreals 4 extralocal non-arboreals 5 water and mire plants 6 spores; arrangement in groups
1–4 according to upper limit in Schwarzwald after Oberdorfer (2001).
Highest occurrence
Schwarzwald m a.s.l.
Group
ConstancyFrequency
n%n%
14801Abies alba2410014484,707
14501Acer1875
48
0,156
3Achillea T2
8
20,007
1100/13503Aconitum T1
4
10,003
2Aesculus hippocastanum1
4
10,003
3Alchemilla G1
4
10,003
13703Allium ursinum T2
8
20,007
1000/11001Alnus glutinosa T2410011533,748
11903Anthriscus sylvestris2
8
30,010
3Apiaceae undiff.
4
1750,016
10203Artemisia2083430,140
13501Aruncus T1
4
10,003
10003Astragalus T1
4
10,003
14503Athyrium1458
78
0,254
4
Avena T
4
1750,016
1400/12801Betula2410022537,324
13503Blechnum spicant31330,010
3Brassicaeae2292
80
0,260
6Bryideae31330,010
2Buxus sempervirens1
4
10,003
10255Callitriche1
4
10,003
14903Calluna vulgaris17711310,426
14503Caltha T1
4
10,003
970
2Carpinus betulus241004151,349
14453Carum carvi313280,091
10002Castanea sativa22922040,663
14003Centaurea jacea T31330,010
10003Centaurium pulchellum T2
8
20,007
12803Cerastium fontanum T31330,010
4
Cerealia T
7
29
8
0,026
14203Chaerophyllum hirsutum T1
4
10,003
3Chenopodiaceae1771370,120
3Cichoriaceae1146230,075
7502Cornus sanguinea1
4
10,003
13502Corylus avellana241007962,588
2Cotynus coggyria1
4
10,003
10203Cuscuta europaea T1
4
10,003
5Cyperaceae undiff23967322,380
14001Daphne2
8
20,007
9503Daucus carota
8
33160,052
14503Diphasium alpinum T31350,016
13805Drosera31360,020
14003Dryopteris dilatata1250750,244
14003Dryopteris T
9
38100,033
11703Echium1
4
10,003
600
4
Eryngium1
4
10,003
3Eupatorium cannabinum T62560,020
3Euphorbia1
4
10,003
14701Fagus sylvatica2410017305,624
10503Fallopia2
8
20,007
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Highest occurrence
Schwarzwald m a.s.l.
Group
ConstancyFrequency
n%n%
14203Filipendula1875610,198
10001Frangula alnus1
4
10,003
12301Fraxinus excelsior241002740,891
3Geum T313
4
0,013
13503Heracleum sphondyleum2
8
30,010
5952Hippophaë rhamnoides2
8
20,007
4
Hordeum T1354220,072
7302Humulus/Cannabis1146210,068
14253Huperzia selago1
4
10,003
13003Hypericum perforatum T2
8
20,007
11001Ilex aquifolium2
8
20,007
13003Impatiens1
4
10,003
6
indiff
241002550,829
7202Juglans regia2292
70
0,228
12401Juniperus communis
4
1750,016
1Larix decidua T2292680,221
14903Lotus1
4
10,003
13703Lycopodium clavatum T313110,036
13503Lysimachia vulgaris T2
8
20,007
14703Melampyrum521
7
0,023
11005Menyanthes trifoliata62560,020
600
4
Mercurialis annua
4
1750,016
12003Mercurialis perennis T31330,010
675
4
Myriophyllum spicatum1
4
10,003
2Olea europaea52160,020
720
4
Orlaya grandifora1
4
10,003
14003Oxalis acetosella31350,016
13503Pedicularis palustris T1
4
10,003
3Peucedanum palustre T1
4
10,003
14801Picea abies24100639620,793
13003Pimpinella major T31330,010
11501Pinus sylvestris T24100
7884
25,630
13203Plantago lanceolata23961830,595
14503Plantago maior
4
1760,020
10403Plantago media
4
1750,016
2Platanus orientalis1146260,085
3Poaceae undiff2410021897,116
13003Polygonum aviculare T1
4
10,003
14003Polygonum bistorta1
4
10,003
11003Polygonum persicaria T1
4
10,003
6Polypodiaceae undiff229211603,771
13003Polypodium vulgare1
4
10,003
13401Populus
8
33170,055
3Potentilla T1042140,046
12001Prunus T52150,016
12803Pteridium aquilinum521120,039
11202Quercus2410012354,015
3Ranunculaceae undiff.
7
29110,036
3Ranunculus acris T1875620,202
2Rhus G1
4
10,003
Table 2.
Constancies and percentages of pollen types from surfaces samples (mosses) from the shores of the Nordschwarzwald cirque lakes. Evaluation
(column 2): 1 local arboreals 2 extralocal arboreals 3 local non-arboreals 4 extralocal non-arboreals 5 water and mire plants 6 spores; arrangement in groups
1–4 according to upper limit in Schwarzwald after Oberdorfer (2001). (Continuation).
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Highest occurrence
Schwarzwald m a.s.l.
Group
ConstancyFrequency
n%n%
2Rosa1
4
10,003
10903Rosaceae undiff.1250150,049
3Rubiaceae1354230,075
14001Rubus1250130,042
10503Rumex aquaticus type2
8
20,007
13103Rumex obtusifolius T1
4
20,007
12003Rumex undiff.23961400,455
14501Salix241001570,510
12001Sambucus nigra/racemosa2292550,179
14003Sanguisorba offcinalis1
4
10,003
13505Scheuchzeria palustris313130,042
4Secale cereale
1667370,120
3Senecio T
8
33100,033
3
Silene T
2
8
20,007
720
4
Solanum dulcamara
4
17
4
0,013
13901Sorbus T1250220,072
9605Sparganium T2
8
60,020
14935Sphagnum14584431,440
980
2Taxus baccata625130,042
9501
Tilia
1563260,085
11303Trientalis europaea1
4
10,003
14903Trifolium repens T1
4
10,003
3Trifolium undiff.1
4
10,003
4
Triticum T1458230,075
970
5Typha latifolia T
4
17
4
0,013
13801Ulmus1667310,101
13003Urtica/Parietaria1667860,280
555
4
Utricularia1
4
20,007
14903Vaccinium T18751390,452
10603Valeriana offcinalis T1
4
10,003
3
Varia
1042150,049
3Veronica1
4
20,007
10001Viburnum lantana1
4
10,003
8501Viburnum opulus
4
17
4
0,013
3
Vicia T
1
4
30,010
2
Vitis9
38110,036
4
Xanthium spinosum T1146170,055
4
Zea mays
4
17
4
0,013
Table 2.
Constancies and percentages of pollen types from surfaces samples (mosses) from the shores of the Nordschwarzwald cirque lakes. Evaluation
(column 2): 1 local arboreals 2 extralocal arboreals 3 local non-arboreals 4 extralocal non-arboreals 5 water and mire plants 6 spores; arrangement in groups
1–4 according to upper limit in Schwarzwald after Oberdorfer (2001). (Continuation).
the calculation of percentages, water plants, spores and
Cyperaceae were excluded from the pollen sum. All ages
mentioned in this paper are calibrated.
3. Results and discussion
3.1 General outline of the Holocene vegetation history
of northern Schwarzwald
The studies of Glaswaldsee, Wilder See, Huzenbacher See,
and Herrenwieser See are published (Rösch 2009a; 2009b;
2009/2010; 2012; Rösch, Tserendorj 2011a; 2011b; Rösch
et al.
2009). Mummelsee, Schurmsee und Buhlbachsee
are the topic of a PhD thesis at Göttingen University by
Gegeensuvd Tserendorj. The evaluation of the Ellbachsee
profle is in preparation.
All profles depict the history of vegetation and landscape
from the Late Weichselian to Modern times without gaps,
and for the Subboreal and Subatlantic with very high
time-resolution. Before the increase of
Abies
alba
, the
development in all profles is very uniform in time and space.
(Figure 3). Afterwards there are still similarities between the
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pollen profles, but differences in detail, concerning timing of
events, forest cover and forest composition. Very signifcant
are the differences during prehistory, whereas during the
Medieval and Modern Ages the vegetation history is again
rather uniform. From these differences we can conclude that
the lakes refect the situation of their surroundings, up to a
distance of most probably not more than 1–2 km, without
any major input from longer distances; if there had been
pollen input originating from the Rhein valley, refecting
human impact in the lowlands, then all the lakes would have
shown an identical picture. We can also conclude that the
development of the cultural landscape during the Bronze and
Iron Age happened at a local scale.
According to the increase of terrestrial NAP (yellow areas
in Figure 3) the onset of strong deforestation in the local
environs of the lakes had already occurred in the Bronze
and pre-Roman Iron Age. This frst strong deforestation
phase is separated from the Medieval deforestation by a
reforestation phase of the Migration and Early Medieval
period. The extent and age of these early deforestation
phases are different, as well as the percentages of
Abies
alba
(blue lines in Figure 3). These differences between the
lakes are evidence for the events being local. As already
pointed out, the archaeological evidence is weak, but
there is proof for extensive mining activities in the North
Schwarzwald during the pre-Roman Iron Age (Gassmann
et al.
2006). In the profles, Buhlbachsee, Wilder See and
Mummelsee, situated near the steep western slopes, as well
as at Schurmsee,
Abies
alba
was less frequent. Most frequent
was
Abies
alba
at Glaswaldsee in the south, at Huzenbacher
See, situated farthest to the east, and at Herrenwieser See, the
northernmost lake. But at all lakes, it is, together with
Fagus
sylvatica
, the most frequent tree of the mountain forest, from
its frst increase until the Late Medieval period. During this
time – about fve millennia – the pollen curves of
Picea
abies
remain low, hardly exceeding 1% (red lines in Figure 3).
We can in summary say that the natural forest in northern
Schwarzwald was a forest without
Picea
abies
but dominated
by
Abies
alba
. However, this natural state had already ceased
about 3000 BC due to increasing human impact. Afterwards,
Fagus
sylvatica
became as or even more frequent as
Abies
alba
, but
Picea
abies
was still absent.
3.2 Vegetation changes of the last fve millennia
according to the pollen record of Herrenwieser See
The main trends are visible in all profles, but Herrenwieser
See is a representative pollen profle for Nordschwarzwald,
because out of all the lakes it has the longest lithostratigraphy
and therefore the best time resolution (Figure 4; Rösch 2012).
Abies
alba
appears at Herrenwieser See shortly after
5000 BC, shortly after
Picea
abies
and at the same time as
Fagus
sylvatica
(start of continuous pollen curves). Until
4000 BC, the percentages of all 3 taxa remain below 1%.
From 4000 BC, together with the mid-Holocene
Ulmus
Figure 3.
The pollen profles of the cirque lakes of Nordschwarzwald. Main diagrams: percentages of trees (light green), shrubs (green), dwarf shrubs (blue),
and terrestrial NAP (yellow)), adding up to 100%, and the curves of
Abies
alba
(blue line) and
Picea
abies
(red line), linear time axis.
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Manfred Rösch: Abies alba and Homo sapiens in the Schwarzwald – a Diffcult Story
55
Figure 4.
Pollen diagram of Herrenwieser See, linear time axis.
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56
decline (Peglar, Birks 1993),
Abies
increases and reaches
around 3300 BC 27.5%. After a decline to minimal 5.5%,
accompanied by a
Betula
peak,
Abies
increases again and
obtains around 2800 BC its maximum value of almost 50%.
Only 100 years later,
Abies
decreases again to less than
9%. At the same time
Betula
,
Quercus
and
Fagus
sylvatica
increase. Afterwards,
Abies
recovers and obtains, about 2400
BC, once again 28%. These fuctuations of the
Abies
curve
are no spurious effect of calculation, because the total pollen
infux is more or less constant during the period considered.
Therefore a decrease of the
Abies
curve from 27 to 9%
indicates a real decline in the
Abies
pollen infux.
The following fuctuations of the
Abies
curve are slightly
less. Until 700 BC it has between 10 and 15% and afterwards
until 300 BC between 15 and 20%; afterwards, until the Late
Medieval, it has about 12%. During the Late Medieval and
Modern Ages the values of
Abies
are mostly considerably
below 10%.
The prehistoric declines of
Abies
are accompanied by
single cereal grains (particularly around 2700 and 2300
BC), by an increase of apophytes like
Plantago
lanceolata
(particularly 2600–2300 BC), and of charred particles
(Figure 4, around 2700 and 2400 BC) and followed by
Betula
peaks. There is also a decrease of LOI (Figure 5)
caused by minerogenic material from eroded topsoils in
the catchment area. In general the LOI of Herrenwieser See
gradually increases between 4500 BC and the 18
th
century
AD from 40 to 60%, a consequence of mire development and
raw humus accumulation (Rydberg
et al.
, in print). Sudden
and short decreases of LOI against this general trend at 3200,
2300–2000, 1800, 1400, 800, 600 and 200 BC, and after 800
AD indicate soil erosion.
The decreases of
Abies
are short-term events, taking
place over a few decades. Natural causes like forest fres
or windstorms are rather improbable. The recovery phases
take somewhat longer – over one or two centuries; they may
indicate a natural forest succession after the disturbance has
ceased. However, other reasons cannot be totally ruled out –
neither can human impact.
The four decreases of
Abies
date to 3500 BC, 3000 BC,
2500 BC and 2200 BC and correspond to land-use phases
described by Rösch (2012). In contrast to the Bronze Age
or younger land use, Neolithic land use is not correlated
with a clear increase of NAP, because the Neolithic land-use
systems did not result in permanent open vegetation with a
lot of wind-pollinated grasses and herbs (Kuneš
et al.
2015;
Kalis
et al.
2003; Rösch 1987).
The frst
Abies
decline dates towards the end of the Younger
Neolithic (Michelsberg culture), the second and third into the
Final Neolithic (Corded ware culture), the last into the Earliest
Bronze Age – more precisely into the time of the Bell Beaker
culture (Lüning 1996). So an important forest change from
Abies
to
Fagus
, in some phases to pioneer or coppiced forest
or even
Quercus
, happened not in the Medieval period, and
not in the pre-Roman Iron Age, but already in the fnal two
millennia of the Neolithic. It should also be mentioned here:
the increase of the
Pinus
curve during the frst
Abies
decline,
most probably indicating occupation of the lake shores by
Pinus
; the decrease of
Isoetes
lacustris
and
I.
echinospora
,
starting together with the
Abies
expansion; and the increase
of
Sphagnum
and
Calluna
vulgaris,
indicating paludifcation
and a shift of the lakes’ status from oligotrophic to dystrophic.
There is no evidence of soil acidifcation to hamper the growth
of
Abies
. All decreases of
Abies
, the prehistoric as well as the
later ones, are also phases of LOI decrease, therefore phases of
soil erosion (Figure 5). Why
Abies
became so frequent before
Fagus
, why it decreased afterwards and lost its leading role to
Fagus
, and how it could still remain frequent till modern ages,
needs further discussion. And, as already pointed out, clear
archaeological evidence for pre-Iron age human occupation
of the Schwarzwald is very scarce (
cf.
Valde-Novak, Kienlin
2002). From the Bronze Age onwards, human impact is
Figure 5.
Loss-on-ignition (LOI) curve of Herrenwieser See, linear time
axis; arrows indicate erosion phases.
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57
more clearly visible in the pollen record by an increase of
non-arboreals, indicating different forms of land use with
permanent open land (Kalis
et al.
2013; Rösch
et al.
2014).
In comparison with
Abies
,
Fagus
increases very slowly.
Not until 3000 BC, during the frst
Abies
decline, does
Fagus
exceed 10%. After the third
Abies
decline at 2200 BC,
Fagus
became the most common tree for a long time. During the
pre-Roman Iron Age,
Abies
again became more frequent
than
Fagus
. But not always increasing
Fagus
is correlated
with decreasing
Abies,
and
vice versa
. Other trees,
Betula
,
Pinus
,
Alnus
, are also components of the forest ecosystem
and infuence, with changing pollen input, the curves of the
other trees. These trees can grow within the forest as well as
at the lake shore.
During the period being considered,
Picea
abies
has
always less than 1%. It does not achieve 1% until the Roman
period. Not until the last decades of the Late Medieval
period does its curve slowly exceed 1%. It climbs to 5% in
the early Modern period, at Glaswaldsee, Buhlbachsee and
Huzenbacher See somewhat earlier. In the topmost sediments
of the long core of Herrenwieser See, dating to the late 17
th
or
early 18
th
century AD. it always remains below 10%. At the
top of the two short cores of Herrenwieser See, dating into
the 19
th
century AD,
Picea
increases to 20% (Rösch 2012).
Figure 6.
Pollen spectra of mosses from the shore of Herrenwieser See. a) Percentages of arboreal pollen; b) Percentages of arboreal pollen, arboreals from
the lake shores excluded.
Figure 7.
Actual forest composition
around Herrenwieser See. Data of
Forsteinrichtung, Landesforstverwaltung
Baden-Württemberg.
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58
In the actual pollen spectra, preserved in mosses from the
shore of Herrenwieser See,
Picea
has 33%, about as much
as
Pinus
,
Fagus
7%, and
Abies
only 3% (Figure 6a). With
Betula
,
Corylus
,
Alnus
and two thirds of the
Pinus
as local
components of the lake shores excluded from the pollen
sum,
Picea
has 54%,
Pinus
16%,
Fagus
11%,
Abies
5%,
Quercus
6% and other trees 8% (Figure 6b). This is in good
agreement with the recent forest cover of 60%
Picea
, 15%
Abies
, 10%
Pinus
, 5%
Fagus
and 10% other trees, especially
when we keep in mind that this comparison was done
without considering the differences in pollen production
and distribution (Figure 7). Even in the short core from
Herrenwieser See,
Picea
remains below 20%, indicating a
gap of at least the last several decades. The situation at the
other lakes is very similar: The present dominance of
Picea
is well refected in the pollen rain.
3.3. The ecological conditions triggering the forest
composition
In the third millennium BC the expansion of
Abies
in
Schwarzwald was complete.
Abies
was now the most
frequent tree with 40% or more in the pollen spectrum and
most probably an even stronger participation in the forest
composition. Compared with
Fagus
and
Picea
, and even
more so compared with
Pinus
and
Betula
,
Abies
is badly
represented in the pollen spectrum (Andersen 1970).
This phase of the vegetation history in Schwarzwald was
appropriately called “Tannenzeit” (Lang 1955). It represents
the fnal stage of the natural forest development of the
Holocene, triggered only by natural causes – climate, soil, plant
migration, competition. All later changes took place under
human infuence. These changes can therefore be regarded,
at least partly, as man-made degradation of the forest. Other
trees took advantage of the anthropogenic disturbance, at
frst
Fagus
. It has similar ecological features and competitive
power as
Abies
. The outstanding competitiveness of
Abies
in
Schwarzwald is based on its maximal size and age, but mainly
on its dark shading of other trees and its ability to tolerate
shade in its youth (Ellenberg 1996).
As is well known,
Picea
did not have any signifcance
in Nordschwarzwald until the Modern Ages (Lang 2005).
Why
Picea
, which was present at high elevations in
Südschwarzwald at least since the Subboreal, did not occur
in the Nordschwarzwald in larger quantities before the Late
Medieval period, is unclear. Ludemann (2014) discusses the
early natural occurrence of
Picea
in Nordschwarzwald, but
our data do not confrm this opinion and remove any doubt
whether
Picea
did occur in the region during prehistory.
At least its occurrence in the forest on medium or good
soils before the Medieval period can be excluded. Single
azonal stands at mires, very steep slopes, or at the base
of rock fans, protected from the competition of
Abies
and
Fagus
, may have been possible.
In the southern and central Schwarzwald, the situation for
Picea
was perhaps a little more favourable. Here it did occur
at elevations above 1000 m asl, at the habitats mentioned
above, already during prehistory (Lang 2005; Rösch 2000).
The somewhat higher and earlier increasing percentages of
Picea
at Glaswaldsee (Figure 3) confrm that the history of
Picea
in Schwarzwald must be discussed at the local scale. At
medium-elevation habitats,
Picea
could not take advantage
of its earlier immigration, but was later replaced by
Abies
(Sudhaus 2005).
We can conclude that the natural forest of Nordschwarzwald
would be a forest without
Picea
, dominated by
Abies
and
Fagus
. For the Schwarzwald National Park the question then
arises: Will such a natural forest without
Picea
come back by
itself, and how much time will this take?
Quercus
, today in Schwarzwald very rare, must also be
discussed. Before the increase of
Abies
, the Schwarzwald
forest consisted of
Quercus
petraea
, together with
Corylus
avellana
,
Fraxinus
excelsior
,
Ulmus
,
Tilia
and
Acer
(Figure 4). During the period of dominating
Abies
and
Fagus
,
Quercus
has been represented for more than three
millennia rather constantly at 10%. Assuming 5%
Quercus
pollen as being transported long-distance (Figure 5), that
still leaves 5% of local occurrence. Most probably
Quercus
never did disappear totally from Schwarzwald. In contrast,
during the Late Medieval period,
Quercus
became the most
frequent pollen type with more than 20% (Figure 6 in Rösch
2012), a consequence of the medieval forest management
which supported
Quercus
. From the 16
th
century onwards,
Quercus
has decreased to her present level of 5%. The reason
is not “the Little Ice Age”, but again forest management:
During the period Mercantilism held sway in Europe
(17
th
–18
th
century), the timber stock of Nordschwarzwald
was sold to the Netherlands for ship construction (Scheifele
1996). The Duke of Württemberg and the Margrave of
Baden needed the sale revenue to fnance their budgets.
Initially mostly
Quercus
was exploited, because sailing
ships were constructed with more than 90% oak (
Quercus)
.
However, due to its high density, oak could only be rafted
in combination with coniferous wood. There is historical
evidence from written sources of the occurrence of
Quercus
up to the highest elevations of Nordschwarzwald (Scheifele,
1996). The time of the “Holländertannen” (Dutch frs) came
later, mainly during the 18
th
century.
When the absolutist sovereigns had fnally achieved what
many generations of farmers, charcoal burners and miners
since the Iron Age had not been able to do – to nearly
totally deforest the Nordschwarzwald –
Picea
came as an
emergency measure for the forest administrators. Before the
start of large-scale reforestation in the 19
th
century,
Picea
was already present in the region from the 16
th
century; it
had already invaded disturbed forests (von Hornstein 1951).
Concerning the occurrence of
Picea
in the Modern Ages,
vegetation history and forest history are in good accord
(Hausburg 1968).
3.5. General framework for the future forest
development in Schwarzwald National Park
Under natural conditions
, Abies
is the strongest competitor
among the trees of the mountain forest, at least in Schwarzwald
with a suboceanic, wet, and not-too-cold climate. Under
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59
different climatic and soil conditions, the story may be
different. On the other hand, it is very sensitive against forest
disturbance, especially most forms of human impact. It cannot
recover from rootstock, is sensitive against fre, and cannot
start as a frst colonizer of clearings. Red deer and roe deer
feed on young
Abies
saplings by preference and thus give other
species such as
Picea
or
Juniperus
an advantage. Just how
much damage caused through the browsing of game animals
can infuence today the future of the forest demonstrates a
viewpoint on mixed forests of
Abies
and
Picea
that is held
within the National Park (Figure 8).
Picea
seedlings can grow
undisturbed, whereas
Abies
seedlings suffer strong or even
lethal damage by game animal browsing.
Of the three most important mountain trees,
Picea
suffers
least from browsing. Furthermore, it can act as a pioneer
species in clearings. Thus game animals play a crucial role
in the future of the forest (Senn, Suter 2003). Not only in
Schwarzwald, but in many other forests in Germany, an
attempt at reforestation with deciduous trees or
Abies
is only
possible by fencing off sensitive areas.
Throughout the entire Holocene red deer were present in
Schwarzwald, and since the Bronze Age or even earlier there
has also been browsing by domestic animals. Nevertheless,
Abies
remained together with
Fagus
the main tree in
Schwarzwald until the High Medieval period. It was able
to cope with this and other human impacts, perhaps even
taking advantage from certain ways of forest management
that did not include large clearings. Without the competition
of
Picea
, the browsing had no lasting effect. Obviously,
the damage on
Abies
seedlings made by domestic animals
was less than that caused by game animals (Málek 1971;
1981). On abandoned clearings, a pioneer forest of
Betula
gave
Abies
the chance to come back; perhaps the farmers
kept the wild game density low to protect their felds. This
situation changed when hunting became a privilege of the
nobility and rich. Getting trophies was now more important
than preventing the felds from being damaged. The density
of wild game was artifcially increased substantially to
guarantee the hunters more success and more pleasure.
Abies
was able to deal with this situation too. But when in
the 19
th
century huge clearings were reforested with
Picea
,
its battle was fnally lost.
Abies
could not be used to reforest
the clearings because it is not a pioneer tree growing in open
spaces.
Inside the national park there will be no artifcially-created
clearings in the future, but there will be clearings made by
hurricanes and extensive damage by bark beetle. Therefore,
there will always be some open land where the forest must
start again. It is an open question as to whether, despite the
overstocking of red dear,
Abies
will be able to successfully
compete against
Picea
in this situation. Perhaps this will
be the case when the reforestation, as in the past, will be
initiated by
Betula
instead of
Picea
(Figure 4). To give
Abies
a better chance, the populations of red and roe deer should
be reduced drastically. Because of the national park’s small
size and its present contact to the surrounding landscape this
will be diffcult.
The history of
Abies
in Schwarzwald is not singular. There
are, for example, similarities with that of the Bohemian Forest
(Svobodova
et al.
2001; 2002). In the Southern Alps,
Abies
had increased and become the most common tree already in
the 7
th
millennium BC, but then nearly disappeared in the
4
th
and early 3
rd
millennium BC (Finsinger, Tinner 2006;
Gobet
et al.
2000; Tinner
et al.
1999; van der Knaap
et al.
2005). Climatic change, forest fres, and human impact are
given as reasons for this change (Wick, Möhl 2006; Rösch
et al.
2012). In eastern central Europe,
Abies
arrived later
(Kozáková
et al.
2011); here it reached its maximum during
the Bronze and Iron Age. It then declined in the pollen record
during the High Medieval.
Figure 8.
Young
Abies
alba
damaged by
game animals, Nationalpark Schwarzwald.
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60
There are still open questions. The existence of different
Abies
races, each with different eco-physiological characteristics,
must also be taken into account (Burga, Hussendörfer 2001).
Populations in regions with a warmer climate have perhaps
lower shade requirements and higher drought resistance.
Within a regional population, the range of eco-physiological
behaviour and potential can be wide, allowing the species as
a whole to deal with the changing environmental conditions.
This would explain why
Abies
has expanded in the past in
regions which are thought by geobotanists and forest scientists
to be too warm and dry, for example, into the Hoch- and
Oberrhein valley, and why the Late Medieval reforestation in
lowland areas by the seeding of conifers, initiated by Peter
Stromer in Nürnberg, was not only able to use
Pinus
sylvestris
and
Picea
abies
, but
Abies
alba
as well (Lechner 2005; Wick,
oral announcement; Hasel, Schwartz 2002).
4. Conclusions
High-resolution and radiocarbon-dated pollen profles from
the central cores of small lakes in Nordschwarzwald have been
able to refect the history of landscape, vegetation and human
impact during the last 11 millennia. This paper focuses on the
history of the mountain forest and its main tree components
and on possible reasons for the changes. The reasons for
the shift from mixed oak forest to dominating
Abies
in the
4
th
millennium BC are not clear, but at the same time there
occurred a change in the lake ecology and chemistry, indicated
by a decrease of
Isoetes
and by an increase of mercury
(Rydberg
et al.
, in press). An acidifcation of the surrounding
soil can be deduced by the increase of
Calluna
and Ericaceae.
In the third millennium BC
Abies
decreased and
Fagus
became
more frequent. This is accompanied by
Betula
peaks and some
human impact indicators, of which, with good reason, we
think, that they are local. From the third millennium BC to
the frst millennium AD the relation between
Abies
and
Fagus
remained rather unchanged. A point to mention is the strong
role played by
Quercus
, having an occurrence even at higher
altitudes.
Picea
was present only during the last millennium
and became the most frequent tree when the vastly destroyed
forest was reforested preferentially with
Picea
. Foresters,
ecologists and botanists expect, or at least hope, that inside
the Schwarzwald National Park, without any future human
impact,
Abies
will regain its dominating role and will replace
Picea
. The vegetation history, at least of the last millennium,
and the continuation of disturbances like windstorms, bark
beetle, and the overstocking of game (deer), put some doubt
on this expectation.
Acknowledgements
The palynological investigations in Nordschwarzwald
were supported by the DFG. For assistance in the feld and
laboratory, as well as for discussions, I have to thank Willi
Tanner, Karl-Heinz Feger and his team, Harald Biester,
Helmut Volk, Lucia Wick, Jutta Lechterbeck, Elske Fischer,
Gegeensuvd Tserendorj, Fabian Rösch, Max Markert, Tanja
Märkle, Eva Klimek, Roza Schneider, and Stella Tomasi.
Furthermore, I thank Radka Kozaková and an anonymous
reviewer for very helpful comments.
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